bims-carter Biomed News
on CAR-T Therapies
Issue of 2026–08–02
sixty-two papers selected by
Luca Bolliger, lxBio



  1. Sheng Wu Gong Cheng Xue Bao. 2026 Jul 25. pii: 1000-3061(2026)07-3138-16. [Epub ahead of print]42(7): 3138-3153
      Chimeric antigen receptor T-cell (CAR-T) therapy has demonstrated remarkable clinical efficacy in certain hematologic malignancies. However, its broader clinical application is constrained by the prolonged duration of conventional ex vivo manufacturing. The extended production cycle not only delays treatment and increases costs but may also exacerbate terminal differentiation and functional exhaustion of T cells, thereby reducing their in vivo persistence. To address these bottlenecks, shortening the ex vivo culture duration to preserve the early differentiation phenotype and antitumor activity of T cells has emerged as an important strategy for optimizing CAR-T cell therapy. In this study, a rapid CAR-T cell production process requiring only 24 h was established. Through systematical optimization of T-cell activation conditions and the viral transduction time window, efficient CAR gene delivery and cell preparation were achieved within 24 h. The rapidly manufactured CAR-T cells exhibited an early differentiation phenotype and enhanced proliferative potential. In vitro functional assays demonstrated potent tumor-killing activity of the CAR-T cells. In a xenograft mouse model, the cells showed antitumor efficacy and in vivo persistence comparable to those produced with the conventional manufacturing process. These results indicate that the 24 h rapid production strategy is feasible and provides a promising technical approach to shorten patient waiting time, reduce production costs, and generate functionally improved CAR-T cell products for clinical translation.
    Keywords:  CAR-T cell; antitumor activity; clinical translation; critical quality attribute (CQA); rapid production
    DOI:  https://doi.org/10.13345/j.cjb.260138
  2. Pharmaceuticals (Basel). 2026 Jun 25. pii: 991. [Epub ahead of print]19(7):
      Allogeneic T cell therapies have emerged as a promising strategy to overcome the logistical and manufacturing limitations of autologous approaches, enabling scalable, off-the-shelf cancer immunotherapy. While early clinical efforts have focused predominantly on αβ T cell-based platforms, including CAR- and TCR-engineered approaches, a growing spectrum of alternative cell types, such as γδ T cells, invariant natural killer T cells, mucosal-associated invariant T cells, and induced pluripotent stem cell-derived effectors, is expanding the design landscape of allogeneic therapies. However, clinical translation remains constrained by immune rejection, limited persistence, lymphodepletion-associated toxicity, manufacturing variability, and impaired efficacy in solid tumors. To address these barriers, engineering strategies have increasingly integrated T cell receptor disruption, human leukocyte antigen modulation, cytokine support, checkpoint editing, and synthetic circuit design. This review provides an oncology-focused, cross-platform framework for evaluating diverse allogeneic T cell and T cell-like platforms according to clinical maturity, safety, manufacturability, persistence, and tumor-targeting capacity. We further discuss how platform-specific biological properties and clinical evidence can be integrated with modular engineering strategies to optimize antitumor performance. These insights support a shift from platform-centric development toward a design-driven paradigm for next-generation allogeneic cellular immunotherapies with improved efficacy, safety, and scalability.
    Keywords:  allogeneic T cell therapy; cell therapy manufacturing; multiplexed genome editing; non-conventional T cells; tumor immunotherapy
    DOI:  https://doi.org/10.3390/ph19070991
  3. Hum Vaccin Immunother. 2026 Dec;22(1): 2708435
      Cellular therapies representa promising area of immunotherapy for advanced cancers,therapies including T cell receptor (TCR) therapies, chimeric antigen receptor (CAR) T cell therapies, tumor-infiltrating lymphocyte (TIL) therapies, and natural killer (NK) cell therapies.Sarcomas pose unique challenges due to their molecular complexity and immunosuppressive tumor microenvironment (TME). TCRtherapiesargeting antigens likeNY-ESO-1, MAGE-A4, and PRAME have shown efficacy, highlighted by the FDA's accelerated approval of afamitresgene autoleucel targeting MAGE-A4 for synovial sarcoma.CAR-T cell therapies targeting HER2, GD2, and B7-H3, along with TIL, and NK cell therapies are also under investigation.However, many are in early stages of clinical development, and their effectiveness may vary by sarcoma subtype. Overcoming challenges such as immunosuppressive TME, antigen escape, lack of T-cell persistence, and off-target toxicities is crucial to improving outcomes for sarcoma patients. This review summarizes the evolution of cellular therapies,ongoing research, challenges, and future directions in this field.
    Keywords:  CAR-T cell therapy; Cellular therapy; T cell receptor therapy; sarcoma; tumor-infiltrating lymphocyte therapy
    DOI:  https://doi.org/10.1080/21645515.2026.2708435
  4. Mol Ther Oncol. 2026 Sep 17. 34(3): 201287
      Acute myeloid leukemia (AML) is the second most common leukemia in children. Although survival rates have improved over several decades, for patients with high-risk or chemotherapy-refractory AML, hematopoietic stem cell transplantation (HSCT) remains the only curative therapy. HSCT provides immune-mediated control of residual leukemia through the graft-versus-leukemia effect, underscoring the importance of allogeneic immune responses in achieving durable remission for children with AML. Chimeric antigen receptor (CAR) T cells are genetically engineered T lymphocytes that express synthetic receptors combining antigen recognition with T cell activation and costimulatory signaling domains. By recognizing tumor antigens independently of MHC, CAR T cells can mediate potent cytotoxicity. CD19-directed CAR T cells have transformed outcomes for pediatric patients with relapsed or refractory B cell acute lymphoblastic leukemia but translating CAR T cell therapy to AML has proven challenging. This review summarizes clinical experiences to date with AML-directed CAR T cells, highlighting pediatric data. We also review barriers to successful translation of AML CAR T cell therapy that have been identified in basic and translational studies. Finally, we discuss emerging strategies to improve efficacy, including advanced CAR designs, optimized antigen and patient selection, and rational combination approaches.
    Keywords:  acute myeloid leukemia; cell therapy; chimeric antigen receptor; pediatrics
    DOI:  https://doi.org/10.1016/j.omton.2026.201287
  5. J Immunol Res. 2026 ;2026(1): e9452254
      The chimeric antigen receptor (CAR) T cell therapy targeting cluster of differentiation 19 (CD19)-positive malignancies has shown considerable efficacy in clinical settings. However, the potential genotoxicity of viral-based CAR-T therapy, their considerable manufacturing cycle and high costs, prompts questions about its safety and leads to limitations in clinical application. Aiming to explore a safe, efficient, and low-cost mRNA-based CAR-T therapy, we characterize a nonviral, mRNA-based approach utilizing a current good manufacturing practice (cGMP)-compatible electroporation (EP) platform to generate anti-CD19, anti-CD22, and tandem anti-CD19/CD22 CAR-T products with a turn-around time of less than 48 h. The protocol yields a more than 90% cellular viability with a CAR expression of exceeding 60% within the 24 h of transfection. The mRNA-based CAR-T products have a significantly enhanced T cell activation profile with CD69 upregulation, production of tumor necrosis factor-alpha (TNF-α), interleukin-2 (IL-2), and Granzyme B, and higher Ki67 expression level. Robust in vitro tumor neutralization by the mRNA-based CAR-T was observed compared to control. Interestingly, we have observed that the short-term cell cryopreservation after EP resulted in a 50% reduction of cellular expansion. However, the cryopreservation and thaw did not have an observed negative impact on the in vitro tumor neutralization. Lastly, we have evaluated the metabolic activity of the mRNA-based CAR-T products, which has a clearly inducible and significant increase in basal respiration (by 60%) and a 2-fold spare respiratory capacity (SRC) upon exposure with the antigen positive target cells. We believe this approach holds promise as a viable alternative that addresses the limitations of current CAR-T therapies, offering a potential solution for future nonviral CAR-T clinical application.
    Keywords:  cell therapy; chimeric antigen receptor; nonviral gene delivery
    DOI:  https://doi.org/10.1155/jimr/9452254
  6. Front Immunol. 2026 ;17 1837609
      Acute myeloid leukemia (AML) remains a difficult disease to treat, especially in patients with relapsed or refractory disease. While chimeric antigen receptor T cell (CAR-T) therapy has transformed the treatment landscape of several B-cell malignancies, its clinical efficacy in AML has been substantially more limited. This limited efficacy reflects not only challenges in CAR design, but also the complex biological and immunological barriers inherent to AML. Insufficient target specificity, pronounced leukemic heterogeneity, and an immunosuppressive bone marrow microenvironment collectively impair CAR-T cell recognition, persistence, and effector function, thereby restricting both therapeutic efficacy and safety. In this review, we discuss these major barriers and summarize emerging engineering strategies developed to address them, including approaches to improve targeting precision, reinforce CAR-T cell functional fitness, and remodel the suppressive immune niche. Together, these insights may help clarify the key barriers to effective CAR-T therapy in AML and inform future strategies for its optimization.
    Keywords:  CAR-T cell therapy; acute myeloid leukemia; bone marrow microenvironment; immunosuppression; leukemic heterogeneity; target specificity
    DOI:  https://doi.org/10.3389/fimmu.2026.1837609
  7. Transplant Cell Ther. 2026 Jul 27. pii: S2666-6367(26)00590-7. [Epub ahead of print]
      CAR-based cellular therapy is emerging as a time-limited strategy for severe autoimmune disease, but its clinical value depends on more than early response. We conducted a structured narrative review with a targeted update of PubMed/MEDLINE and ClinicalTrials.gov through July 11, 2026, with study-level extraction and explicit handling of overlapping cohorts. Autologous CD19 CAR-T has the most mature evidence, particularly in systemic lupus erythematosus and other systemic rheumatic diseases, while one randomized phase 2b trial has evaluated transient mRNA BCMA-directed CAR-T in myasthenia gravis. Early studies also support disease-specific development in systemic sclerosis, idiopathic inflammatory myopathy, rheumatoid arthritis, autoimmune cytopenias, and selected neurologic disorders. However, cohorts remain small and heterogeneous, and severe cytokine release syndrome, neurotoxicity, hematotoxicity, infection, viral reactivation, hypogammaglobulinemia, and prolonged organ dysfunction have been reported. Immune reset should therefore be treated as a testable multidomain state: durable disease control after the acute treatment phase, withdrawal of conventional immunosuppression, evolution or recovery of the targeted immune compartment without immediate pathogenic recurrence, and preservation of clinically acceptable immune competence. It is not synonymous with cure, continued aplasia, complete autoantibody eradication, or reversal of fixed organ damage. Future development requires disease-specific comparative trials, biomarker-guided platform selection, standardized clinical and immune-reconstitution endpoints, transparent reporting of manufacturing attrition and cohort overlap, experienced multidisciplinary delivery, and long-term registries capturing infection, fertility, neurologic outcomes, secondary malignancy, relapse, retreatment, and patient-centered value. Until these data mature, autoimmune CAR therapy should remain investigational and restricted to highly selected patients in prospective programs.
    Keywords:  CAR-based cellular therapy; autoimmune disease; immune reconstitution; immune reset; safety; systemic lupus erythematosus
    DOI:  https://doi.org/10.1016/j.jtct.2026.07.028
  8. Front Immunol. 2026 ;17 1897225
      Chimeric antigen receptor (CAR)-T cell therapies targeting CD19 have demonstrated remarkable clinical efficacy in B-cell malignancies. However, substantial differences exist in therapeutic outcomes, partly due to differences in CAR design and surface expression. Current methods for CAR detection, including flow cytometry, do not allow direct quantification of receptor density. Here, we establish a linker-targeted direct stochastic optical reconstruction microscopy (dSTORM) approach for quantitative assessment of CAR surface expression across structurally diverse CD19 CAR-T cell products. By targeting conserved scFv linker regions, including (G4S)3 and Whitlow linkers, we enable antigen-independent detection using commercially available antibodies. We generated primary human T cells expressing constructs resembling approved CD19 CAR-T cell products and compared CAR detection by flow cytometry and dSTORM. While flow cytometry enables detection, dSTORM demonstrated superior sensitivity, allowing reliable visualization of CAR expression levels insufficient for flow cytometry. Direct CAR detection via linker-targeting antibodies revealed construct-dependent differences in CAR surface density, with a (G4S)3-containing construct exhibiting higher receptor densities compared to two Whitlow-based designs. dSTORM resolved these differences more reliably at low expression levels, where flow cytometry yielded more CAR-negative events, suggesting that transfection marker staining and flow-based analyses may not fully capture CAR surface expression. Validation in clinically relevant CAR products underscores the robustness and versatility of this toolbox for CAR-specific staining across constructs. Overall, linker-targeted dSTORM represents a highly sensitive and broadly applicable platform for quantification of CAR surface expression, offering new opportunities to understand how CAR design influences receptor density, spatial organization, and therapeutic function.
    Keywords:  CAR-T cell therapy; anti-CD19; chimeric antigen receptor; dSTORM; microscopy
    DOI:  https://doi.org/10.3389/fimmu.2026.1897225
  9. Biotechnol Bioeng. 2026 Jul 26.
      Autologous cell therapy (AuCT) manufacturing networks must balance two competing objectives: reducing cost and improving patient access to time-sensitive therapy. This study compares three AuCT manufacturing network designs: a centralized network with a single manufacturing facility, a coordinated point-of-care (POC) network in which POCs can coordinate and transship specimens and consumables when needed, and an independent POC network in which each POC operates separately. Minimizing the time from specimen harvest to therapy infusion is used as an operational proxy for patient benefit. The analysis considers reagent replenishment, specimen and reagent transshipment, patient deterioration while waiting for therapy manufacturing to begin or during the therapy manufacturing process, and bioreactor capacity planning under a high patient service-level requirement. Using data based on a commercial-style AuCT network with one manufacturing site, 20 geographically distributed POCs, and two consumable suppliers, the results show that the coordinated POC network can achieve total cost close to that of the centralized network while maintaining turnaround time close to that of the independent POC network. These findings provide decision-support insight for commercialization and industrialization of AuCT manufacturing by quantifying when coordinated distributed manufacturing may offer a practical compromise between the economic efficiency of centralized production and the responsiveness of local manufacturing.
    Keywords:  Markov decision processes; agent‐based simulation; autologous cell therapy; cell manufacturing; point‐of‐care; supply chain
    DOI:  https://doi.org/10.1002/bit.70316
  10. Front Immunol. 2026 ;17 1846426
      Chimeric antigen receptor (CAR) T-cell therapy has transformed the treatment of relapsed or refractory large B-cell lymphoma, with overall response rates in real-world practice broadly comparable to those in pivotal clinical trials. However, progression-free survival is consistently shorter in real-world cohorts, suggesting that baseline disease characteristics may influence long-term outcomes more than initial treatment sensitivity. This review examines the role of baseline Fluorodeoxyglucose positron emission tomography/computed tomography (FDG PET/CT) features as predictors of response and survival after CAR T-cell therapy in lymphoma. We synthesize the evidence on established imaging predictors, including total metabolic tumor volume, extranodal disease distribution and site-specific organ involvement, and bulky disease, and discuss emerging biomarkers such as body composition metrics. Despite a growing body of evidence linking these imaging features to outcomes, clinical adoption has been limited by heterogeneous measurement methodologies, inconsistent definitions, and a lack of prospective validation. We propose practical considerations for structured baseline imaging assessment, including a reporting checklist designed to ensure systematic documentation of the imaging features with demonstrated or emerging prognostic relevance. By moving beyond descriptive staging toward structured, predictive baseline imaging evaluation, radiologists and lymphoma clinicians may improve pretreatment risk stratification and facilitate more informed therapeutic decision-making in the expanding landscape of CAR T-cell therapy.
    Keywords:  CAR T-cell therapy; PET/CT; baseline imaging; extranodal disease; large B-cell lymphoma; response prediction; structured reporting; total metabolic tumor volume
    DOI:  https://doi.org/10.3389/fimmu.2026.1846426
  11. Int Immunopharmacol. 2026 Jul 29. pii: S1567-5769(26)01039-8. [Epub ahead of print]187 117193
      Chimeric antigen receptor (CAR)-T cell therapy targeting CD19 has demonstrated notable clinical efficacy in the treatment of B-cell acute lymphoblastic leukemia (B-ALL), but its wider clinical applicability is constrained by long manufacturing processes, substantial costs, and severe adverse events. A potentially safer and more accessible alternative is provided by CAR-Natural killer (CAR-NK) cell therapy. Currently, most CAR-NK cells are generated using viral transduction, which is labor-intensive and associated with risks of genomic integration. Electroporation of CAR-encoding mRNA provides a non-integrating alternative but results in only transient CAR expression. Circular RNA (circRNA), owing to its enhanced stability and prolonged protein expression capacity, has recently emerged as a promising alternative to linear mRNA. To overcome the limitations of transient mRNA expression, we generated circRNA using a Group II intron-mediated cyclization system incorporating a newly selected Coccidioides immitis-derived Group II intron. The newly established Coccidioides immitis-derived Group II intron circularization system efficiently generated circRNA and supported more durable EGFP expression than linear mRNA in both HEK293T and NK92 cells. Using this system, we successfully developed a circRNA-based CD19-targeted CAR-NK platform. CircRNA-engineered CD19-targeted CAR-NK92 cells maintained more durable CAR expression and showed stronger antitumor activity at later time points. In mouse models of B-ALL, circRNA-engineered CAR-NK92 cells demonstrated better tumor control and extended survival compared with their linear mRNA-engineered counterparts. These results support the potential of circRNA-based CAR-NK therapy as an effective approach for enhancing the safety and efficacy of cancer immunotherapy.
    Keywords:  B-cell acute lymphoblastic leukemia; CD19; Chimeric antigen receptor; Circular RNA; Natural killer cells; cancer immunotherapy
    DOI:  https://doi.org/10.1016/j.intimp.2026.117193
  12. Front Bioeng Biotechnol. 2026 ;14 1875958
      
    Keywords:  ATMP; PAT (process analytical technologies); bioreactor; cell assays; cell manufacturing; cell therapy; process development
    DOI:  https://doi.org/10.3389/fbioe.2026.1875958
  13. Biomaterials. 2026 Jul 27. pii: S0142-9612(26)00516-8. [Epub ahead of print]336 124492
      Chimeric antigen receptor (CAR) immune cell therapy has revolutionized the treatment of hematologic malignancies, yet conventional ex vivo manufacturing remains costly, complex, and logistically demanding. Emerging in vivo engineering strategies, especially those based on nonviral nanoparticles (NPs), offer a transformative alternative by enabling direct programming of immune cells within the body. Recent advances in NPs-mediated delivery of CAR constructs, including mRNA, circular RNA (circRNA), self-amplifying RNA (saRNA), DNA and gene editing tools, have demonstrated promising potential for achieving transient, tunable and repeatable expression with reduced genotoxicity. Immune cell targeting has been achieved by multiple targeting strategies for T cells, NK cells and macrophages, allowing precise control of CAR expression and functional activation in disease-relevant contexts. For T cells specifically, antibody-functionalized NPs categorized by antibody types including CD3, CD4, CD5, CD7 and CD8, demonstrate differential engagement of T cell subsets and influence their activation profiles across various therapeutic contexts. This review highlights key advances in the development of immune cell targeting NPs, discusses evolving CAR architectures and quality control considerations, and outlines future directions for integrating in vivo CAR platforms into broader immunotherapeutic landscapes. Nonviral NPs are poised to redefine CAR therapy by enabling scalable, off-the-shelf immune interventions for cancer, autoimmune, and fibrotic diseases.
    Keywords:  Antibody-conjugated nanoparticles; Immune cell targeting; In vivo CAR delivery; Nanoparticles; Nonviral delivery
    DOI:  https://doi.org/10.1016/j.biomaterials.2026.124492
  14. Int J Technol Assess Health Care. 2026 Jul 31. 42(1): e66
      Real-world evidence (RWE) is reshaping how health technology assessment (HTA) bodies evaluate therapies, yet a critical gap persists: while transportability methods enable researchers to adapt treatment effect estimates from RWE studies in another jurisdiction to local contexts, the field remains unclear on when these analyses impact decision-making. This article synthesizes insights from HTA bodies, health technology developers (HTDs), and methodologists to clarify what is missing from today's transportability conversation. We find that methodological progress has outpaced guidance on its utility; HTDs risk investing in transportability analyses without clear evidence that they reduce key uncertainties or affect recommendations. We identify three fundamental gaps: the absence of objective thresholds for determining whether transportability assumptions are adequately met; limited guidance on when quantitative transportability is needed versus qualitative assessment; and variation in HTA bodies' evaluation and application of transported evidence. These gaps create a critical impasse where HTDs must decide whether to invest in such analyses, while HTA bodies lack standardized frameworks for their assessment. We argue that transportability cannot transition from academic exercise to a decision-making tool without explicit early dialogue between stakeholders, transparent reporting standards, and capacity building within HTA bodies. We present actionable recommendations to build HTA expertise, create a case study repository, and define contexts where transported RWE demonstrably impacts patient access. As evidence dossiers increasingly rely on nonlocal data, addressing these strategic and operational gaps becomes essential to help patients.
    Keywords:  comparative effectiveness research; decision-making; external validity; health technology assessment; real-world evidence; transportability
    DOI:  https://doi.org/10.1017/S0266462326103924
  15. Cells. 2026 Jul 09. pii: 1243. [Epub ahead of print]15(14):
      Natural killer (NK) cells are key mediators of antitumor immunity; however, NK cell dysfunction in epithelial ovarian cancer should be considered not as a uniform defect, but rather as compartment-specific states that differ across the blood, ascites, primary tumor, and metastatic sites according to their local cellular interactions, soluble factors, and metabolic constraints. Peripheral blood provides an accessible systemic reference and may support immune monitoring. However, it does not fully reflect NK cell states in local or distant disease compartments. In ascites, cytokine-responsive and partially recoverable NK cell populations coexist with soluble, biochemical, and metabolic suppressive signals. In primary tumors, NK cells often acquire tissue-adapted suppressive phenotypes, characterized by altered activating receptors, increased inhibitory checkpoints, and reduced cytotoxic effector function. In metastatic lesions, NK cells appear to share suppressive phenotypes with primary tumors, although these phenotypes may be reinforced within metastatic niches through coordinated inhibitory receptor-ligand interactions. The above compartment-specific states imply that NK cell-targeted therapy for ovarian cancer should not rely on a unilateral strategy. Instead, therapeutic design may need to be multifaceted but coordinated, combining cytokine-based activation, adoptive NK cell transfer, checkpoint blockade, local delivery, and antigen-directed chimeric antigen receptor NK cell approaches according to the dominant biology of each compartment. Paired multi-compartment profiling and longitudinal functional assessment will be essential for biomarker development and compartment-guided treatment design.
    Keywords:  NK cell dysfunction; NK cell therapy; ascites; compartment-specific immunity; epithelial ovarian cancer; immune suppression; natural killer cells; tumor microenvironment
    DOI:  https://doi.org/10.3390/cells15141243
  16. Hepatol Commun. 2026 Aug 01. pii: e00982. [Epub ahead of print]10(8):
       BACKGROUND: Chimeric antigen receptor T-cell (CAR-T) therapy has achieved remarkable success in hematologic malignancies, yet demonstrates limited efficacy in solid tumors, including hepatic cancers. T-cell exhaustion and insufficient persistence represent major obstacles. We hypothesized that optimizing both manufacturing processes and CAR structural design could reduce exhaustion and enhance therapeutic outcomes in immunocompetent mouse models of primary and metastatic liver malignancies.
    METHODS: We systematically compared antibody-based versus bead-based activation methods, evaluating their effects on T-cell exhaustion phenotypes. Retroviral vector (RVV) production was optimized for murine T-cell transduction, assessing vector stability and T-cell phenotypes. Different cytokine conditions were tested for their impact on T-cell expansion, memory phenotypes, and anti-tumor efficacy using GPC3-targeted CAR-T cells in hepatocellular carcinoma models. Through structural prediction and electrostatic field simulation, we identified that high positive charge patches (PCP) in the EpCAM-targeting G8.8 scFv caused CAR clustering and tonic signaling. We generated charge-optimized variants and evaluated their therapeutic efficacy in an immunocompetent colorectal cancer liver metastasis model.
    RESULTS: Antibody activation showed superior homogeneity and expansion despite initially higher exhaustion markers, which equilibrated by day 10 without affecting viability. RVV harvested at 72 hours post-transfection yielded optimal titers. RVV remained stable through freeze-thaw cycles. IL-7 supplementation to IL-2 significantly enhanced memory phenotypes, reduced exhaustion, and improved tumor control in GPC3-CAR-T therapy. Electrostatic optimization of G8.8 scFv substantially reduced tonic signaling, decreased T-cell exhaustion, and enhanced anti-tumor efficacy in the MC38-EpCAM model.
    CONCLUSIONS: Systematic optimization of manufacturing conditions and structure-based charge engineering of CAR constructs synergistically enhance therapeutic efficacy against liver malignancies, providing a translatable framework for improving solid tumor CAR-T therapy.
    Keywords:  adoptive cell therapy; positively charged patches (PCPs); protein aggregation; syngeneic model; tonic signaling
    DOI:  https://doi.org/10.1097/HC9.0000000000000982
  17. J Vis Exp. 2026 Jul 10.
      Profiling CAR T cells presents challenges due to their heterogeneity, complex immune responses, and limited sample availability. Multiplex assays enable functional assessment by allowing the simultaneous detection of a broad range of effector molecules, including cytokines, chemokines, and cytotoxic mediators. Here, we describe a bead-based multiplex assay compatible with flow cytometry for the analysis of effector molecule secretion by human chimeric antigen receptor (CAR)-T cells. CAR T cell supernatants are incubated with a mixture of capture beads comprising multiple fluorescence-coded populations coupled to analyte-specific antibodies. These beads bind soluble targets in the sample, forming bead-analyte complexes that are subsequently detected using labeled detection antibodies. The assay includes a panel of immune mediators such as interferon (IFN)-γ, interleukin (IL)-2, tumor necrosis factor (TNF)-α, IL-6, IL-10, granulocyte-macrophage colony-stimulating factor (GM-CSF), and Granzyme B. The use of predefined standards allows quantitative measurement of multiple analytes from a single sample. Data acquisition and analysis can be performed using automated gating approaches provided by instrument-associated or web-based software tools, facilitating data processing. In conclusion, the presented multiplex assay enables multiparametric analysis of CAR T cell functionality and can be applied in contexts such as research, quality control testing, mechanistic studies, and functional characterization.
    DOI:  https://doi.org/10.3791/70344
  18. Leukemia. 2026 Jul 29.
      Chimeric antigen receptor T cell (CART) therapy has revolutionized the treatment of B cell hematological malignancies, and has lead to several FDA-approved CART products beginning in 2017. However, while CART cell therapy has improved outcomes and survival, many patients eventually relapse after treatment. Research into the reasons for patient relapse following CART cell therapy has identified multiple mechanisms of resistance. These primarily include antigen loss, poor CART cell expansion or exhaustion, and tumor- or tumor-microenvironment (TME)-mediated immunosuppression of CART cells. While methods to study and engineer CART cells to circumvent antigenic loss or to prevent exhaustion are being investigated, the development of standalone or combination CART cell therapies that target both cancer cells and immunosuppressive components of the TME are less studied. In this review, we focus on the impact of the TME on CART cell efficacy in hematological malignancies and discuss promising basic and clinical approaches that may enable CART cells to overcome TME-mediated dysfunction.
    DOI:  https://doi.org/10.1038/s41375-026-03085-z
  19. iScience. 2026 Aug 21. 29(8): 116847
      CD19-directed chimeric antigen receptor (CAR)-engineered T cells have transformed cellular therapy for hematologic malignancies but have also raised concerns about secondary malignancies. A spatial profiling method was used to analyze the tumor microenvironment and define native and CAR T cell association with a pleomorphic sarcoma arising 12 months post-CAR T therapy for B cell lymphoma. Although CAR T sequences were absent in the secondary tumor, our approach enabled profiling of the stroma, tumor, and infiltrating T cells. Spatial analysis incorporated proteomics via serial antibody staining and transcriptomics using RNA hybridization on an automated MACSima imaging cyclic staining (MICS) system, which allows for in situ detection of CAR T cells. We report here the prevalence of CAR-positive T cells in patient-derived tissue sections, observed metabolic and proliferative shifts in the tumor and its microenvironment, and immune checkpoint analysis. These findings provide insights into post-CAR T secondary cancers and highlight tools that may guide future targeted therapies.
    Keywords:  CAR-T cell; immunotherapy; secondary malignancy; spatial profiling
    DOI:  https://doi.org/10.1016/j.isci.2026.116847
  20. Appl Health Econ Health Policy. 2026 Jul 25.
      Cross-country collaboration has been proposed as a policy solution to improve patient access to medicines. Since patient access to medicines at affordable costs has also become an issue for high-income countries, some European countries responded in 2015 by establishing the Beneluxa Initiative to work together in pharmaceutical policy. As of 2025, the Initiative comprised five countries (Austria, Belgium, Ireland, Luxembourg, and the Netherlands) and had ten years of experience in several joint collaborative activities, including horizon scanning, health technology assessment, reimbursement negotiations, and strategic exchange on policy developments. During its first decade, the Beneluxa Initiative conducted 15 joint health technology assessments and four joint negotiations. Insights gained through these collaborative processes have contributed to the refinement of methodological approaches and the exploration of new avenues, such as the establishment of the International Horizon Scanning Initiative with participation of additional countries. Although public attention often centres on joint negotiations, they represent only one dimension of the Initiative's work. The Beneluxa Initiative adopts a comprehensive product life-cycle approach, seeking to identify medicines with potentially high budget impact in early development stages, thereby allowing for timely preparation of collaborative assessments and negotiations. While differences in the legal and organisational national frameworks pose challenges and collaboration requires sufficient time resources, the Beneluxa experience demonstrated that collaboration in pharmaceutical policy across countries is possible and useful. Learnings can also be transferred to the global health policy community.
    DOI:  https://doi.org/10.1007/s40258-026-01057-z
  21. J Clin Pharmacol. 2026 Aug;66(8): e70250
      Rare‑disease drug development is constrained by small and heterogeneous patient populations, limited natural‑history data, and the impracticality of large, randomized trials. Despite increasing regulatory acceptance of totality-of-evidence and mechanism-based development pathways, generating reliable, decision-ready evidence under these constraints remains challenging. This review describes how clinical pharmacology contributes within an evidence‑integration and decision‑support framework through quantitative, model‑informed approaches to address this gap. By integrating nonclinical data, pharmacokinetics, pharmacodynamics, biomarkers, natural‑history information, and clinical efficacy and safety outcomes, and through close collaboration with clinical, statistical, and translational experts, clinical pharmacology supports interpretation of treatment effects and quantitative characterization of uncertainty when conventional evidence is limited. In practice, these approaches inform key development decisions, including dose selection, innovative trial designs, extrapolation and bridging across populations, use of external controls, and evaluation of biomarkers and surrogate endpoints. Importantly, such practices help align regulatory expectations with patient needs, particularly in pediatric and ultra‑rare settings, by enabling appropriate dosing, reduced trial and patient burden, and quantitative assessment of benefit/risk. Examples from rare‑disease programs illustrate how integrated quantitative evidence has supported regulatory decisions, including label expansion and accelerated approval when data may be sparse, heterogeneous, or evolving. Looking ahead, emerging technologies such as artificial intelligence, digital biomarkers, and individualized approaches are expected to further advance rare‑disease drug development. With this evolving landscape, clinical pharmacology is expected to continue playing an important role in evaluating mechanistic plausibility, ensuring analytic rigor, and translating small datasets into meaningful evidence to inform development and regulatory decisions in rare diseases.
    Keywords:  benefit‐risk; clinical pharmacology; external controls; extrapolation; model‐informed drug development (MIDD); rare diseases
    DOI:  https://doi.org/10.1002/jcph.70250
  22. JMIR Cardio. 2026 Jul 31. 10 e92930
       Unlabelled: Synthetic data offer significant potential for cardiology research by enabling data sharing, preserving privacy, and supporting machine learning model development. By generating artificial patient records that reflect real-world distributions, synthetic data can accelerate clinical research, improve model performance for rare cardiovascular conditions, and facilitate transnational collaborations that would otherwise be restricted by data-sharing barriers. Despite these advantages, the increasing use of synthetic data raises important ethical, regulatory, and methodological concerns that remain insufficiently addressed. Key challenges include assessing the validity and generalizability of synthetic datasets, understanding their limitations in representing complex and heterogeneous patient populations, and preventing the amplification of existing biases in cardiovascular care. Current regulatory frameworks, including the General Data Protection Regulation (GDPR) and Health Insurance Portability and Accountability Act (HIPAA), do not fully address emerging risks such as reidentification and data leakage, and there is no harmonized guidance to govern the use of synthetic data as stand-alone evidence for medical device evaluation or therapeutic research. In this viewpoint, we argue that responsible integration of synthetic data in cardiology requires, first, clear differentiation between synthetic data as a privacy-preserving distributional substitute and synthetic data as a counterfactual simulation tool, and, second, fit-for-purpose governance frameworks that pair rigorous utility and fidelity testing with explicit, adversary-aware privacy evaluation before synthetic cohorts are accepted as evidence in research or product evaluation. A prerequisite for that governance is conceptual clarity about what synthetic data are being used for. Synthetic data in health care serve 2 fundamentally distinct roles that carry entirely different validity requirements, failure modes, and regulatory implications, yet they are routinely conflated. The first role is as a privacy-preserving distributional substitute: the goal is statistical fidelity to the real data distribution, so that analyses of the synthetic dataset yield results equivalent to those of the original. The second role is as a tool for counterfactual simulation: the goal is to generate data that could not have been observed, such as rare conditions, hypothetical interventions, or extrapolations to new populations. These 2 roles are methodologically distinct. A dataset that accurately reflects real-world distributions may be inadequate for extrapolating findings to underrepresented subgroups. Conversely, a simulator optimized for novel scenario generation may systematically diverge from real-world distributions. This distinction informs every subsequent discussion of validity, bias, and regulation in this viewpoint and our proposed 4 concrete actions for the cardiology research community, including mandatory 3-layer (fidelity, utility, and privacy) validation, systematic subgroup reporting, explicit intended-use scoping, and domain-specific acceptability thresholds for synthetic data-based evidence.
    Keywords:  cardiology; health care; machine learning; medical research; synthetic data; virtual patients
    DOI:  https://doi.org/10.2196/92930
  23. Eur Radiol Exp. 2026 Jul 31. pii: 111. [Epub ahead of print]10(1):
       OBJECTIVE: Artificial intelligence (AI) shows promise for improving cancer management, but clinical adoption is limited by the absence of standardized validation tools. As an important step toward bridging the AI chasm, the European CHAIMELEON project addresses this gap by developing a platform for in silico validation of AI models in oncology, aligned with the EUCAIM project.
    MATERIALS AND METHODS: We designed a web-based platform using Kubernetes microservices architecture, integrating imaging, clinical, and AI components. The backend combines a REST API, an ORTHANC-PACS, and a Keycloak/OAuth2 security layer. The frontend includes a customized OHIF DICOM viewer for oncological case review. Clinicians evaluated cases across three sequential stages: (1) Standard clinical assessment, (2) Assessment with AI predictions, and (3) Final review against clinical endpoint ground truth. The platform also collects clinicians' perceptions of AI utility, trust, workflow integration, and usability through a Likert-scale questionnaire.
    RESULTS: The platform provided efficient access to multimodal data for five cancer types. Clinicians completed structured validations, and survey responses indicated favorable perceptions: 93% found the platform intuitive, over 80% would recommend it, and agreement on AI utility exceeded 40% across most endpoints, indicating a positive reception of the AI as a supportive "second reader" tool that prompts clinical re-evaluation rather than simple consensus. Workflow impact was rated positively, underlining the potential to support clinical decision-making.
    CONCLUSION: This platform offers a reproducible, scalable, and user-friendly environment for clinical validation of AI models in oncology. Its modular architecture allows integration of additional AI models and is designed to ensure sustainability and interoperability, fostering evidence-based AI adoption in European radiology practice.
    TRIAL REGISTRATION: ClinicalTrials.gov, NCT06950996.
    KEY POINTS: How can the medical community standardize the in silico clinical validation of oncology AI models to safely bridge the gap before real-world deployment? We successfully implemented a web-based microservices platform, demonstrating high clinical usability and defining human-AI trust dynamics across five distinct cancer types. This standardized validation framework directly enhances diagnostic confidence and interdisciplinary medical collaboration, bridging technical performance with clinical trust to ensure that innovative artificial intelligence technologies safely optimize daily treatment decisions and ultimately maximize therapeutic success and safety for oncology patients.
    Keywords:  Artificial intelligence; Diagnostic imaging; Medical oncology; Software; Validation studies as topic
    DOI:  https://doi.org/10.1186/s41747-026-00770-7
  24. Clin Transl Oncol. 2026 Jul 27.
      The gut microbiome is increasingly recognized as a modulator of tumor-immune interactions and has been associated with cancer development, progression, and therapeutic response, while direct causal evidence remains strongest in mechanistic and interventional models. Microbial composition and metabolites, including SCFAs, bile acids, inosine, and tryptophan-derived products, may shape host immunity by influencing the tumor microenvironment (TME) and systemic immune responses, although the strength of evidence varies by model system and clinical context. These microbial signals have been linked to changes in T cells, B cells, NK cells, and MDSCs, with mechanistic studies supporting effects on cytokine networks, immune checkpoint signaling, inflammation, and antitumor immunity. Emerging translational evidence indicates that specific microbial signatures may serve as predictive biomarkers for immunotherapy efficacy, resistance, and treatment-related toxicity. In parallel, microbiome-targeted strategies, including FMT, probiotics, prebiotics, dietary modulation, and engineered microbial therapeutics, are being investigated as adjunctive approaches to improve cancer therapy, but their clinical efficacy remains incompletely validated. Understanding microbiome-immune crosstalk may therefore support precision oncology by identifying tractable microbial targets for improving therapeutic outcomes, overcoming immune-mediated treatment resistance, and guiding patient stratification across diverse cancer types and settings in clinical oncology practice.
    Keywords:  Bile acids; Cancer immunology; Dysbiosis; Fecal microbiota transplantation; Gut microbiome; Immune checkpoint blockade; Immunotherapy response; Inosine; Microbial metabolites; Microbiome–immune crosstalk; Precision oncology; Short-chain fatty acids; Tumor microenvironment; Tumor progression
    DOI:  https://doi.org/10.1007/s12094-026-04500-8
  25. Dtsch Med Wochenschr. 2026 Jul;151(15): 835-842
       Abstract: Cellular and immunological cancer therapies have substantially changed the treatment landscape of malignant diseases. In particular, chimeric antigen receptor (CAR) T-cell therapy and immune checkpoint inhibitors (CPI) have enabled durable responses in previously refractory malignancies. However, these treatment strategies are associated with distinct immune-mediated toxicities that differ considerably from the toxicity profiles observed with conventional cytotoxic chemotherapy. Hematologic complications represent an important subgroup of these adverse events. Hematologic immune-related adverse events (irAEs) under CPI therapy are rare but may be associated with considerable morbidity and mortality. In contrast, hematologic toxicities are common after CAR T-cell therapy and are summarized under the term ICAHT (immune effector cell-associated hematotoxicity). These cytopenias may present early after therapy due to lymphodepleting conditioning or later as prolonged or biphasic cytopenias associated with inflammatory bone marrow suppression. In addition, severe hyperinflammatory syndromes such as immune effector cell-associated hemophagocytic syndrome (IEC-HS) may occur and require rapid recognition and treatment. A structured diagnostic approach is essential to differentiate therapy-related cytopenias from disease progression, bone marrow infiltration, or secondary hematologic malignancies. Management strategies depend on the severity of the cytopenia and include supportive measures, immunomodulatory therapies, and in selected cases targeted anti-cytokine treatments. Early recognition and interdisciplinary management are crucial to reduce morbidity and improve patient outcomes.
    DOI:  https://doi.org/10.1055/a-2697-1845
  26. Ther Innov Regul Sci. 2026 Jul 29.
       BACKGROUND: For slowly progressive ultra-rare diseases, hard clinical endpoints such as mortality or sustained functional decline are often impractical within feasible trial timeframes. Surrogate biomarkers, including fluid and imaging analytes, offer a pathway to accelerate drug development. Achieving cross-jurisdictional regulatory acceptance for these surrogates remains a profound scientific and policy challenge.
    METHODS: We conducted a narrative synthesis incorporating regulatory guidance documents from the FDA, EMA, and NMPA, alongside PubMed-indexed literature on surrogate endpoint validation, orphan drug approval, and biomarker qualification programs published up to early 2026.
    RESULTS: The FDA's Accelerated Approval pathway and the EMA's Conditional Marketing Authorization represent the primary regulatory vehicles for surrogate-based approvals. A four-tier validation model is proposed, incorporating mechanistic plausibility, epidemiological association, quantitative surrogacy statistics, and confirmatory post-approval requirements. Case studies from neurology (spinal muscular atrophy) and metabolic disorders (lysosomal storage diseases) illustrate the context-of-use dependency of these surrogates. Cross-jurisdictional divergence in evidentiary standards and the absence of a dedicated ICH guideline for rare disease surrogate endpoints constitute major structural gaps.
    CONCLUSIONS: A globally harmonized evidentiary framework for surrogate endpoint qualification in ultra-rare diseases is urgently needed. Validating this framework in the ultra-rare space could serve as a stepping stone for broader rare disease drug development. Bayesian adaptive designs, international consortium registries, and real-world evidence frameworks are key enabling strategies for addressing the inherent sample-size constraints of this research.
    Keywords:  Accelerated approval; Biomarker; Health policy; Regulatory science; Surrogate endpoint; Ultra-rare disease
    DOI:  https://doi.org/10.1007/s43441-026-01026-7
  27. Health Aff Sch. 2026 Jul;4(7): qxag183
       Introduction: The United States and China are among the largest hubs for oncology drug development and commercialization. We conducted a comprehensive characterization of how the 2 largest oncology drug markets are evolving relative to one another, with implications for regulators, sponsors, clinicians, and patients.
    Methods: Using publicly available drug databases from the US Food and Drug Administration (FDA) and the National Medical Products Administration (NMPA), we collected information on novel oncology approvals in the United States and China from 2020 to 2025.
    Results: From 2020 to 2025, the FDA approved 87 oncology drugs, whereas the NMPA approved 94; most (87% FDA and 65% NMPA) were approved through expedited mechanisms. From 2023 to 2025, the NMPA's approval volume increased and exceeded that of the FDA. Overall, the FDA reviewed drugs a median of 182 days faster, approved them a median of 164 days earlier, and had more global first-in-class approvals.
    Conclusion: As regulatory capacity expands globally, cross-national comparisons help identify approaches that are working well and inform continued innovation and regulatory modernization in the United States to ensure timely patient access to innovative oncology therapies.
    Keywords:  National Medical Products Administration; Oncology drug approvals; U.S. Food and Drug Administration; expedited regulatory pathways; regulatory science
    DOI:  https://doi.org/10.1093/haschl/qxag183
  28. Cancers (Basel). 2026 Jul 16. pii: 2289. [Epub ahead of print]18(14):
      Background/Objectives: Population aging has increased the incidence of non-Hodgkin lymphoma in older adults, who often receive suboptimal treatment. Geriatric assessment is a key tool to evaluate frailty and guide therapeutic decisions. CAR T-cell therapy is effective but associated with significant toxicities, including cytokine release syndrome (CRS) and immune effector cell-associated neurotoxicity syndrome (ICANS), which may be more severe in older patients. This study evaluated the role of geriatric assessments in patients aged 70 years and older referred for CAR T-cell therapy, focusing on patient profiles, treatment-related toxicities and clinical outcomes. Methods: This retrospective descriptive study included all patients aged 70 years and older for whom CAR T-cell therapy was considered at our institution between 15 December 2022 and 31 January 2026. Data were collected through medical record review. Descriptive and exploratory statistical analyses were performed. Results: A total of 43 patients aged 70 years or older with a diagnosis of refractory non-Hodgkin lymphoma underwent geriatric assessment prior to CAR T-cell therapy (median age: 73 years; 58% male). Most patients lived at home (98%), often with a cohabiting partner (65%). Polypharmacy (72%), mobility impairment (19%) and cognitive impairment (49%) were prevalent among our study population. Among the evaluated patients, CAR T-cell therapy was recommended in 35 cases, of whom 27 subsequently received treatment. In total, 85% developed CRS and 59% developed ICANS. ICANS occurred slightly more frequently in patients with pre-existing neurocognitive impairment (7 out of 11, 64%), compared with 9 out of 16 (56%) among those without cognitive impairment. The median length of hospitalization was 16 days. Mean overall survival post CAR T-cell therapy reached 324 days as of 31 January 2026 (median 277 days). Patients who were not recommended for CAR T-cell therapy exhibited a markedly higher burden of frailty compared with those who were and most of these vulnerabilities had not been identified before the geriatric evaluation. Conclusions: This study highlights the importance of oncogeriatric assessment in the context of CAR T-cell therapy to personalize treatment strategies according to patients' frailty profiles. It may help optimize the care plan, potentially identifying patients most likely to benefit from therapy, while minimizing treatment-related toxicities. It also helps estimate the risk of treatment-related toxicities and facilitates the identification of previously unrecognized vulnerabilities.
    Keywords:  CAR T-cell therapy; cytokine release syndrome; frailty; geriatric assessment; immune effector cell-associated neurotoxicity syndrome; lymphoma; older adults
    DOI:  https://doi.org/10.3390/cancers18142289
  29. Nat Commun. 2026 Jul 29. pii: 7589. [Epub ahead of print]17(1):
      Chimeric antigen receptor (CAR) T-cell therapies are typically administered at high doses to maximize durable clinical responses. However, manufacturing constraints can limit the production of sufficient cells to achieve the intended dose. Although some patients experience durable responses after receiving lower CAR-T cell doses, the mechanisms underlying efficacy at these limited cell numbers remain poorly understood. To address this, we performed deep phenotyping of anti-CD19 CAR-T cell products and their corresponding leukapheresis starting materials from a phase I/II dose-escalation trial. We also report the primary and secondary clinical outcomes of the diffuse large B-cell lymphoma, follicular lymphoma, and mantle cell lymphoma cohorts of the HD-CAR-1 basket trial (NCT03676504; EudraCT 2016-004808-60). Patients responding to low-dose CAR-T therapy showed dose-dependent enrichment of functional effector and effector memory-like CAR-T cells. The absolute number of these cells emerged as a robust biomarker of therapeutic response, valid across dose levels and CAR-T targets. Effective low-dose products were associated with high T-cell numbers and T-cell-supportive myeloid states in leukapheresis materials, whereas regulatory myeloid states promoted dysfunctional CAR-T cells and treatment failure. Our study provides insights into the phenotype, mechanisms, and biomarkers of CAR-T cells that drive therapeutic responses at low doses, with medical and socioeconomic implications.
    DOI:  https://doi.org/10.1038/s41467-026-76068-4
  30. Br J Clin Pharmacol. 2026 Jul 28. e70716
      Regulatory harmonization has become an increasingly important and accepted approach to streamline regulatory review processes and expedite access to safe, effective and high-quality medicines globally. This review explores the evolution and current status of regulatory harmonization, convergence and reliance initiatives. It traces progress from early European Economic Community efforts to the establishment and expansion of the International Council for Harmonization of Technical Requirements for Pharmaceuticals for Human Use (ICH). Global frameworks from the World Health Organization (WHO), the International Coalition of Medicines Regulatory Authorities (ICMRA) and the International Pharmaceutical Regulators Programme (IPRP) have further shaped this landscape. Regional initiatives illustrate diverse strategies for embedding harmonization principles into national systems, including the Association of Southeast Asian Nations (ASEAN) Joint Assessment procedure, the Pan American Network for Drug Regulatory Harmonization (PANDRH), the African Medicines Agency (AMA) and the EU's Joint Clinical Assessment. Collaborative models such as the Access Consortium and Project Orbis demonstrate how reliance and work-sharing can expedite approvals and strengthen regulatory capacity. New approaches, such as leveraging real-world evidence (RWE) and regulating advanced therapies like cell and gene therapies, highlight the need for adaptive, collaborative frameworks. Despite challenges including legal complexity, resource constraints and varying levels of regulatory maturity across jurisdictions, harmonization can enhance regulatory systems and support consistent benefit-risk assessments. Ongoing alignment and convergence remain essential to maintaining agile and responsive regulatory systems amid evolving global health priorities and increasing product complexity.
    Keywords:  convergence; harmonization; regulatory; reliance
    DOI:  https://doi.org/10.1002/bcp.70716
  31. Expert Rev Med Devices. 2026 Jul 28. 1-12
       BACKGROUND: This research aims to assess the current impact of the medical and in-vitro diagnostic devices regulations (MDR/IVDR) on the device industry in the EU, under the lens of postimplementation and the amending regulation, and in advance of the final transition to the IVDR/MDR in the future.
    RESEARCH DESIGN AND METHODS: A quantitative survey was administered to a diverse cohort of medical device enterprises, ranging from micro to large organizations.
    RESULTS: The survey indicates that the MDR/IVDR has harmed innovation, leading many manufacturers to seek initial device approval and launch elsewhere before in Europe. There is evidence that some manufacturers have rationalized their existing product portfolios and removed devices from the market as they stated they would in previous industry surveys. The MDR/IVDR has been shown to negatively impact manufacturers, with increased costs related to notified body (NB) fees, maintaining and updating documentation, recertification fees, and hiring additional staff.
    CONCLUSION: This study provides a current status of the effects of MDR/IVDR on manufacturers and finds that despite amending regulations and other interventions taken by the EU to mitigate regulatory burden, ensure product availability, and address stakeholder concerns, the EU is no longer the market of choice for new products.
    Keywords:  IVDR; MDR; clinical evaluation; innovation; large enterprises (LE); micro-enterprises (ME); small and medium enterprises (SME)
    DOI:  https://doi.org/10.1080/17434440.2026.2710398
  32. Pharmacol Res Perspect. 2026 Aug;14(4): e70302
      Hematological malignancies remain one of the leading causes of morbidity and mortality despite advances in targeted therapies, immunotherapy, and stem cell transplantation. Emerging evidence indicates that treatment efficacy and toxicity depend not only on the choice of therapy but also on its timing relative to the patient's internal circadian rhythm. The circadian clock orchestrates fundamental processes in hematopoiesis and immunity, such as stem-cell proliferation, leukocyte trafficking, DNA repair, and drug metabolism, while its disruption promotes malignant transformation, therapeutic resistance, and systemic toxicity. This narrative review synthesizes current understanding of circadian regulation in hematopoietic and immune systems, the mechanistic and preclinical foundations of chronotherapy in blood cancers, and the limited but growing body of clinical evidence linking treatment timing with outcome in leukemia, lymphoma, and transplantation. The review also examines practical challenges, including inter-individual variability, disease-induced circadian disruption, and hospital workflow constraints, while highlighting emerging technologies, such as transcriptomic clocks, wearable biosensors, and AI-driven scheduling algorithms, that are poised to enable personalized, time-aware therapy. By integrating temporal precision into existing therapeutic frameworks, chronotherapy may represent a promising investigational dimension of precision medicine in hematological oncology. However, its clinical value remains to be defined through prospective studies that incorporate validated circadian biomarkers, predefined timing windows, and clinically meaningful efficacy and toxicity endpoints.
    Keywords:  chronopharmacology; chronotherapy; circadian rhythms; digital health; hematological malignancies; precision medicine; treatment timing
    DOI:  https://doi.org/10.1002/prp2.70302
  33. Curr Issues Mol Biol. 2026 Jun 30. pii: 679. [Epub ahead of print]48(7):
      Efficient and reproducible lentiviral vector production and T-cell transduction remain important technical challenges in CAR-T (Chimeric Antigen Receptor T-cell) cell manufacturing. In this study, we optimized HEK293T transfection and primary T-cell transduction parameters for lentiviral CAR constructs targeting BCMA (B-cell maturation antigen) and GPRC5D (G-protein coupled receptor family C group 5 member D). Lipofectamine 3000 and TurboFectin 8.0 were compared across different seeding densities and reagent-to-DNA ratios, with vector yields quantified by qPCR (Quantitative Polymerase Chain Reaction) and p24 ELISA (Enzyme-linked Immunosorbent Assay). Lipofectamine 3000 consistently generated higher viral titers and transduction efficiencies, as reflected by a greater proportion of GFP-positive (Green Fluorescent Protein) cells than TurboFectin 8.0, reaching peak titers of 9.65 × 108 copies/mL for the anti-GPRC5D and 5.33 × 108 copies/mL for the anti-BCMA vectors. Under optimized conditions, transduction efficiencies reached 43.8% GFP+ cells for BCMA-CAR and approximately 13-14% GFP-positive transduced cells for the GPRC5D construct within the tested TU/mL range. Co-transduction experiments yielded approximately 62-66% GFP+ cells with detectable BCMA-binding and presumptive GPRC5D-CAR-expressing subpopulations identified based on GFP reporter expression. Immunophenotypic analysis demonstrated a relatively stable CD4/CD8 distribution (~65/35), enrichment of effector memory CD8+ cells, and expression of activation-associated markers. Collectively, these findings describe an optimized lentiviral transfection and transduction workflow that may support the further development of dual-targeting BCMA/GPRC5D CAR-T manufacturing strategies in research and early translational settings.
    Keywords:  BCMA; CAR-T manufacturing; GPRC5D; T-cell engineering; cell therapy; co-transduction; lentiviral vector production; multiple myeloma
    DOI:  https://doi.org/10.3390/cimb48070679
  34. Int J Mol Sci. 2026 Jul 15. pii: 6298. [Epub ahead of print]27(14):
      Extracellular vesicles (EVs), particularly small EVs or exosomes, are promising cell-free therapeutics with superior biocompatibility and intrinsic targeting for synthetic nanoparticles. However, conventional bulk preparation methods suffer from low yield, poor reproducibility, and structural instability. Microfluidic technologies resolve these issues by enabling precise, automated, and low-shear fluidic manipulation. This mini-review highlights recent advances in microfluidic-engineered exosomes for cancer immunotherapy and infectious diseases. We evaluate critical microfluidic strategies for isolation, surface engineering, and cargo loading, contrasting platforms like ExoArc, acoustofluidics, cellular nanoporation, and electroporation. Particular emphasis is placed on complex modalities, including immune cell-derived exosomes (IEX), neo-antigen presentation, chimeric antigen receptor (CAR)-derived exosomes, and targeted siRNA delivery networks. Crucially, we analyze the technological disconnect between analytical microfluidic scales and massive therapeutic manufacturing volumes, addressing how physical forces risk damaging conformationally sensitive surface proteins (e.g., CAR scFv). Finally, we outline future perspectives, including high-throughput 3D-multiplexed networks, stimulus-responsive scarless elution, and integrated "sample-to-therapy" circuits. Guided by the MISEV2023 guidelines, this review frames the path toward standardized, clinical-scale engineering of multi-functional, cell-free immunotherapies.
    Keywords:  cancer immunotherapy; clinical translation; exosomes; infectious disease vaccines; microfluidic engineering
    DOI:  https://doi.org/10.3390/ijms27146298
  35. Front Immunol. 2026 ;17 1882156
      Multiple myeloma remains largely incurable despite advances in proteasome inhibitors and monoclonal antibodies. Chimeric antigen receptor (CAR)-T-cell therapy targeting B-cell maturation antigen (BCMA) has achieved deep responses in relapsed/refractory multiple myeloma; however, its clinical utility is constrained by cytokine release syndrome (CRS). CRS is a multicellular hyperinflammatory process driven by CAR-T-derived cytokines, monocyte/macrophage activation, and amplification of the IL-1β-IL-6 axis, leading to endothelial dysfunction and metabolic reprogramming. While IL-6 blockade is the standard of care, severe CRS often persists due to redundant upstream inflammatory signalling. This mini-review evaluates the emerging roles of IL-37 and IL-38, anti-inflammatory members of the IL-1 superfamily, as endogenous regulators of CAR-T-associated hyperinflammation. IL-37 functions primarily as a systemic mediator that suppresses NF-κB/MAPK signalling, inflammasome activity, and endothelial injury. In contrast, IL-38 acts as a tissue-resident regulator that restrains early innate immune priming and modulates macrophage-dendritic cell interactions within the bone marrow microenvironment. We propose a phase-dependent regulatory axis wherein IL-38 limits inflammatory initiation while IL-37 suppresses systemic amplification during peak CRS. These pathways represent promising immunoregulatory checkpoints with translational potential as biomarkers and therapeutic targets. Leveraging these cytokines through recombinant proteins or "armoured" CAR-T-cells equipped with inducible regulatory circuits may improve the safety and efficacy of cellular immunotherapies in multiple myeloma.
    Keywords:  IL-37; IL-38; car-t; cytokine release syndrome; multiple myeloma
    DOI:  https://doi.org/10.3389/fimmu.2026.1882156
  36. J Family Reprod Health. 2026 Mar;20(1): 1-9
       Objective: Cancer is one of the most complex genomic diseases that can gain abilities to resist different therapies. These capabilities, known as the hallmark of cancer, allow specific and personalised therapies such as immunotherapy.
    Materials and methods: This review paper discusses how different immunotherapies, such as immune checkpoint blockade, chimeric antigen receptor (CAR) T-cell, and Oncolytic viral therapy, which are currently being used and researched to overcome cancer cell capabilities by using the patient's immune system.
    Results: Immune checkpoint blockade therapy is used to block immune inhibitory pathways using anti-PD-1 receptor and anti-CTLA-4 receptor antibodies, which make lymphocytes more responsive towards cancer cells. Then, it is discussed how CAR T-cells are designed to make cancer antigens more easily identified by T-cells for a more specific immune response. Furthermore, it is shown that oncolytic viruses directly destroy cancer cells and, indirectly, make them more vulnerable to the immune system.
    Conclusion: It is proposed that oncolytic viral therapy is a bridge between Immune checkpoint and CAR T-cell therapies for a more effective and more specific immune response towards cancer.
    Keywords:  Cancer; Immune Checkpoint Blockade; Immunotherapy; Viral Therapy
    DOI:  https://doi.org/10.18502/jfrh.v20i1.22014
  37. J Manag Care Spec Pharm. 2026 Aug;32(8): 1018-1028
       BACKGROUND: Family caregiving plays a central role in the US health care system, with substantial economic, health, and policy implications. In 2024, the estimated economic value of unpaid caregiving exceeded $1 trillion, with tens of millions of individuals providing care nationwide. However, caregiver impacts are inconsistently measured and rarely incorporated into clinical evidence, economic evaluations, and health technology assessments, limiting their use in coverage, formulary, and policy contexts. As a result, health care decision-making may not fully capture the broader benefits, costs, and tradeoffs of interventions that shift care responsibilities to families. Heterogeneity in measurement approaches and lack of consensus on which caregiver impacts are most relevant further constrain comparability and downstream application of available evidence.
    OBJECTIVE: To identify evidence gaps and priorities for caregiver impact data collection aligned with caregiver, health technology assessment, and policy stakeholders to support consistent, relevant evidence generation for value assessment and health care decision-making in the US.
    METHODS: We conducted a targeted literature review of US-focused studies that assessed caregiver impact using validated or adapted measurement tools, including peer-reviewed or gray literature reporting caregiver outcomes or measurement gaps. Findings informed a 6-hour, in-person, multistakeholder workshop with 11 participants representing academic research, patient and caregiver perspectives, and advocacy organizations. Participants reviewed and prioritized caregiver impact elements through an iterative ranking exercise and completed a structured voting exercise to identify priorities for advancing caregiving data collection and use.
    RESULTS: The targeted literature review identified substantial heterogeneity in caregiver impact measurement, including variation in elements assessed, instruments used, timing, and reporting practices, with limited assessment across the patient journey. Ten caregiver impact elements were identified and subsequently refined to 8 prioritized elements through stakeholder consensus. Financial strain, physical health, and emotional strain emerged as the highest-priority elements. In the voting exercise, participants prioritized economic focus (eg, budget impact, cost consequences, and resource use), standardized metrics, and longitudinal or trajectory-based assessment as key opportunities to improve the usability of caregiver evidence.
    CONCLUSIONS: Caregiver impacts remain underrepresented in US evidence frameworks owing to inconsistent measurement and lack of alignment on the most salient outcomes. Findings from this study highlight pragmatic, stakeholder-informed priorities to strengthen caregiver data collection and reporting. Adopting standardized core elements, validated instruments, and assessment over time can improve the visibility and integration of caregiver impacts across research, policy, and health care delivery.
    DOI:  https://doi.org/10.18553/jmcp.2026.32.8.1018
  38. JAMA Netw Open. 2026 Jul 01. 9(7): e2625814
       Importance: Federally sponsored cancer clinical trials (FS-CCTs) address research questions often overlooked by industry (eg, pharmaceutical or biotechnology companies), such as treatment combinations, rare cancers, within-class comparisons, and de-escalation strategies. However, drug costs in these trials have not been comprehensively quantified. Federal agencies typically support trial infrastructure but not drugs, necessitating cosponsorship or in-kind donations from pharmaceutical companies. These arrangements often involve complex contractual processes that may delay trial initiation. Quantifying drug-related costs is important for informing policy and optimizing federal support for cancer research.
    Objective: To estimate the direct purchase costs of drugs in FS-CCTs and examine cost patterns across sponsor types and therapeutic classes.
    Design, Setting, and Participants: This systematic review included a search of the ClinicalTrials.gov registry using a structured query to identify all US-based cancer treatment trials initiated between January 1, 2017, and December 31, 2023, that involved pharmaceutical or biological interventions and received federal sponsorship. Analyses were conducted between June 1 and September 20, 2025.
    Exposure: Drug or biological interventions in FS-CCTs.
    Main Outcomes and Measures: Wholesale acquisition cost-based trial-level total and per-patient drug costs. Between-group comparisons used Mann-Whitney and Kruskal-Wallis tests for 2- and multiple-group comparisons, respectively.
    Results: A total of 1378 US FS-CCTs with 140 066 participants were included in the analysis. The estimated median trial-level drug costs were $7.58 million (IQR, $2.11-$19.88 million), with substantially higher median costs for phase 3 trials ($58.92 million [IQR, $12.25-$127.17 million]) vs early phase trials ($6.90 million [IQR, $2.01-$17.70 million]) (P < .001) and for immunotherapies ($9.25 million [IQR, $3.12-$23.22 million]), targeted therapies ($6.60 million [IQR, $2.22-$18.06 million]), and combined immunotherapy and targeted therapy ($15.08 million [IQR, $6.30-$34.83 million]) compared with chemotherapy ($0.43 million [IQR, $0.11-$2.87 million]) (P < .001). Experimental agents accounted for approximately 80% of total drug costs. The median per-patient drug costs were higher in trials that were solely federally funded ($196 764 [IQR, $83 516-$414 514]) vs cosponsored trials ($149 879 [IQR, $35 329-$390 142]) (P < .001). Among 221 comparative phases 2 to 3 trials, the median experimental arm costs ($12.91 million [IQR, $3.37-$46.96 million]) were 5-fold higher than in control arms ($2.05 million [IQR, $0.16-$11.31 million]).
    Conclusions and Relevance: In this systematic review of FS-CCTs, drug costs were substantial, particularly in late-stage trials and those examining immunotherapies and targeted agents. High costs routinely required federally sponsored groups to seek industry support, which may have limited independence and constrained new treatment discovery. Policy innovations are needed to reduce trial drug cost burden and enable FS-CCT researchers to conduct scientifically and clinically relevant trials.
    DOI:  https://doi.org/10.1001/jamanetworkopen.2026.25814
  39. J Transl Med. 2026 Jul 23. pii: 971. [Epub ahead of print]24(1):
      Breast cancer (BC) remains the leading cause of cancer-related mortality and a major contributor to disease burden among women worldwide. Although PD‑1/PD‑L1‑targeting immune checkpoint inhibitors have become a standard treatment for certain triple‑negative breast cancer subgroups, their use across the broader BC population is limited by intrinsic resistance, an immunosuppressive tumor microenvironment (TME), and treatment‑related adverse effects. The present review offers a comprehensive synthesis of the immunotherapeutic paradigm in BC, spanning ICIs, adoptive cellular therapies (CAR-T, CAR-NK, CAR-M, TIL, TCR-T, and CIK cells), and emerging immune modulators. We critically evaluate pivotal clinical trials, discuss cross-cutting challenges-including biomarker development, therapy resistance, and the practical limitations of cellular products-and highlight rational combinatorial strategies. By contrasting the translational readiness of diverse modalities and outlining a framework for personalized therapy, this review aims to inform future research and clinical practice in harnessing immunity against BC.
    Keywords:  CAR-based therapies; Cell therapy; Immune checkpoint inhibitor; Intratumoral lymphocytes; TCR-based therapies; Tumor microenvironment
    DOI:  https://doi.org/10.1186/s12967-026-08658-1
  40. Int J Pharm. 2026 Jul 28. pii: S0378-5173(26)00697-6. [Epub ahead of print] 127249
      Drug manufacturing process models have been successfully applied to process development and control in regulatory submissions in at least 15 FDA-approved applications from 8 companies between 2012-2025. These submissions span drug substance and drug product manufacturing in approved NDAs, BLAs (including biosimilars), originals, and supplements. Eleven model-supported applications include continuous manufacturing which requires an understanding of material residence time distribution (RTD) through a process. Models in approved submissions have been applied to design space establishment and real-time process control. Multiple models have often been used in a single process control strategy. FDA has encountered mechanistic (e.g., mass balance), empirical (e.g., NIR/Raman chemometric), and hybrid process models (e.g., RTD). The amount of information about a process model in a regulatory submission has generally been commensurate with its determined risk or impact level. Models in approved FDA applications cover risk levels of high (e.g., release decisions, parametric control), medium (e.g., in-process controls, non-conforming material diversions), and low (e.g., design space definition, investigations/monitoring). FDA's modeling experts are often consulted when evaluating an applicant's modeling and control strategy to support an application decision, which at times has included building in-house FDA models calibrated using submitted experimental data. Excluding three submissions with issues unrelated to modeling (e.g., clinical matters), drug submissions using process models were approved prior to their goal date by an average of 20.3 days, including several under accelerated review. Sharing FDA's regulatory experience can advance global understanding of drug manufacturing process model implementation to foster transparency and further innovation and policy development.
    Keywords:  Process Analytical Technology (PAT); Process control; Process design; Process models; Regulation
    DOI:  https://doi.org/10.1016/j.ijpharm.2026.127249
  41. Dtsch Med Wochenschr. 2026 Jul;151(15): 797-801
       Abstract: Cancer immunotherapy represents a paradigm shift in oncology. Immunotherapeutic approaches are approved in a growing number of clinical indications, spanning acute leukemias to cervical cancer. Response rates vary substantially, both within and across diseases and range from limited responses to cures. At the same time, the underlying drugs are diversifying and so are their modes of action. Immunotherapies now also transcend the boundaries of oncology and are under active investigation in, amongst other diseases, autoimmunity. Here, early clinical trials are suggesting relevant efficacy. In this context, a thorough understanding of these principles underlying currently approved immunotherapies, is more important than ever, to guide clinicians in their patient management and care. The present work gives an overview of the modes of actions of current cancer immunotherapies and gives a resume of current problems and challenges.
    DOI:  https://doi.org/10.1055/a-2679-5033
  42. Biomedicines. 2026 Jul 11. pii: 1556. [Epub ahead of print]14(7):
      Immunotherapies, including chimeric antigen receptor (CAR) T cells, bispecific T-cell engagers (BiTEs), and antibody-drug conjugates (ADCs), have revolutionized the treatment landscape for multiple myeloma (MM). Despite robust initial response rates, achieving durable remissions remains challenging due to frequent relapses driven by complex therapeutic resistance mechanisms. In this review, we comprehensively examine intrinsic tumor resistance, such as innate and acquired antigen escape mediated by genomic alterations, structural variations, and epigenetic silencing. Furthermore, we highlight the critical role of the highly permissive bone marrow microenvironment in blunting the efficacy of modern therapies. Cellular compartments, including mesenchymal stromal cells, osteoclasts, and expanded immunosuppressive immune populations, actively foster tumor survival, promote metabolic competition, and T-cell exhaustion. We also review the unique clinical toxicities associated with T-cell-redirecting modalities, including cytokine release syndrome (CRS) and immune effector cell-associated neurotoxicity syndrome (ICANS). Ultimately, deciphering the complex interplay between malignant plasma cells and their surrounding microenvironment is essential for optimizing treatment sequencing, preventing effector cell exhaustion, and designing next-generation therapeutic strategies to secure long-term, durable responses for patients.
    Keywords:  antibody–drug conjugates (ADCs); bispecific antibodies (BiTEs); chimeric antigen receptor T-cell (CAR-T) therapy; multiple myeloma; resistance; toxicity; tumor microenvironment
    DOI:  https://doi.org/10.3390/biomedicines14071556
  43. Front Immunol. 2026 ;17 1864891
       Background: Tertiary lymphoid structures (TLSs) are increasingly regarded as important local immune niches in chronic inflammation and autoimmunity. However, a focused bibliometric overview of TLS research in autoimmune diseases is still lacking.
    Methods: Publications on TLSs in autoimmune diseases published between 2006 and 2025 were retrieved from the Web of Science Core Collection and Scopus databases. After screening and deduplication, the eligible records were analyzed using Bibliometrix/Biblioshiny, VOSviewer, and CiteSpace to assess publication trends, collaboration patterns, co-citation networks, keyword clustering, and thematic evolution.
    Results: A total of 479 publications were included. Annual output showed an overall upward trend, indicating sustained interest in this field. The United States occupied a central position in the international collaboration network, while several European countries also made important contributions. Rheumatoid arthritis, Sjögren's syndrome, systemic lupus erythematosus/lupus nephritis, and myasthenia gravis emerged as the major disease contexts of TLS research. The field evolved from early attention to lymphoid neogenesis, chemokine-mediated tissue organization, and ectopic germinal center-like responses toward local B-cell hyperactivity, disease-specific immune microenvironments, and clinical heterogeneity. Recent frontiers include T follicular helper/peripheral helper T-cell axes, stromal remodeling, fibroblast-associated immune organization, disease subsets, and single-cell/spatial omics approaches.
    Conclusion: TLS research in autoimmune diseases has evolved from structural recognition toward functional interpretation, disease stratification, and translational exploration. Further studies integrating mechanistic investigation with clinical stratification are needed to clarify the translational relevance of TLSs in precision medicine.
    Keywords:  B cells; autoimmune diseases; bibliometric analysis; chemokine networks; immune microenvironment; tertiary lymphoid structures
    DOI:  https://doi.org/10.3389/fimmu.2026.1864891
  44. Front Immunol. 2026 ;17 1852790
      Systemic pro-inflammatory cytokine therapies (e.g., IL-2) represented early milestones in immunotherapy, but their use is hampered by low response rates and severe off-target toxicity. In contrast, immunocytokines deliver cytokines directly to tumors, reducing systemic toxicity and enhancing efficacy. Spatial-omics provides deep insights into the tumor microenvironment (TME), enabling identification of druggable targets and accelerating development of novel antibody platforms and cytokine payloads. However, variability in patient sample quality affects data integrity, and platform differences require distinct preprocessing workflows. Spatio-temporal data demand spatial clustering to define disease-relevant niches, yet a lack of consensus about what constitutes a niche complicates interpretation and reproducibility. To overcome these challenges, effort needs to be made to improve sample collection and processing, and to reconcile the diversity of platforms with their technical limitations in niche identification. By combining knowledge of key TME cell types and marker expression with cytokines identified from autoimmune datasets, innovative immunocytokines can be designed to improve targeting, effectiveness, and patient outcomes.
    Keywords:  cytokine; immuno; omics; spatial; transcriptomic
    DOI:  https://doi.org/10.3389/fimmu.2026.1852790
  45. Biomedicines. 2026 Jul 20. pii: 1630. [Epub ahead of print]14(7):
      Background: Host immune responses can be broadly divided into innate and adaptive immunity. Numerous adaptive immune responses have been identified, including TH1, TH2, TH3, TH9, TH17, and TH22 immunity. Within innate immunity, Vγ9-chain γδ T cells are among the most extensively studied immune-cell populations. Knowledge Gap: However, the precise functional classification of these innate and adaptive immunological pathways in responses to different types of pathogens remains incompletely understood. Purpose of the Review: This review proposes an integrated framework for the detailed functional classification of host innate and adaptive immunological pathways. Proposed Framework: Within innate immunity, γδ T cells can be categorized into several functional groups. The clonal anergy and tolerance pathway is associated with Vγ2-chain γδ T cells. The host innate immunological pathway against viruses is associated with Vγ8-chain γδ T cells, whereas the pathway against intracellular microorganisms is associated with Vγ9-chain γδ T cells. The pathway against extracellular microorganisms is associated with Vγ4-chain γδ T cells, the pathway against helminths with Vγ5-chain γδ T cells, and the pathway against insects with Vγ3-chain γδ T cells. Within adaptive immunity, five eradicable immune reactions and four tolerable immune reactions are described. Among the tolerable immune reactions, TH3 is associated with interleukin-35-producing CD4 T cells, whereas TH4 is associated with interleukin-32-producing CD4 T cells. Significance: A more precise functional classification of innate and adaptive immunological pathways may provide a useful conceptual basis for combating infections and hypersensitivity disorders.
    Keywords:  adaptive immunity; innate immunity; interleukin-32; interleukin-35; γδ T cells
    DOI:  https://doi.org/10.3390/biomedicines14071630
  46. Glob Reg Health Technol Assess. 2026 Jan-Dec;13:13 201-210
       Introduction: Health Technology Assessment (HTA) supports evidence-based decision-making, but integrating economic evaluation within Multi-Criteria Decision Analysis (MCDA) remains challenging in hospital-level HTA. This study developed and preliminarily applied an integrated decision-support framework combining MCDA, economic evaluation, and contextualized evidence assessment to support adoption recommendations.
    Methods: A pragmatic digital framework integrated MCDA with Budget Impact Analysis (BIA) and Cost-Consequence Analysis (CCA) within a rule-based decision matrix. The economic module estimated cost per patient, incremental cost, budget impact, cost-consequence outputs, and, when appropriate, a supportive soft ICER. Evidence was assessed through structured critical appraisal, Summary of Findings tables, and outcome relevance, using a GRADE-informed approach mapped onto the predefined 0-1-3-5-7-9 MCDA evidence scale. Operational robustness was assessed through Failure Mode and Effects Analysis (FMEA) and self-audit controls.
    Results: In a case study comparing disposable and reusable continence care systems, the disposable option showed a lower MCDA score than the current standard (2.60 vs 4.80; ΔMCDA = -2.20) and a higher cost per patient (€1.00 vs €0.65; incremental cost €0.35). Although the 3-year budget impact was €2,634 and remained within the institutional affordability threshold, the technology was classified as dominated because it generated lower value at a higher cost. The final recommendation was not favorable for routine adoption.
    Conclusion: The framework supports transparent integration of MCDA and economic evaluation in hospital-level HTA and helps distinguish affordability from overall value. The case study suggests that technologies should not be adopted solely because their budget impact is acceptable when the value-risk profile is unfavorable. Further validation across technologies and settings is required.
    Keywords:  Budget Impact Analysis; Decision support; Health Technology Assessment; Hospital-based HTA; Medical devices; Multi-Criteria Decision Analysis
    DOI:  https://doi.org/10.33393/grhta.2026.3811
  47. J Pers Med. 2026 Jun 25. pii: 343. [Epub ahead of print]16(7):
      CD19-directed chimeric antigen receptor (CAR) T-cell therapy has fundamentally transformed the treatment landscape for relapsed and refractory B-cell malignancies, yet antigen escape remains a persistent therapeutic challenge that limits long-term remission durability. While antigen loss is typically considered a somatic event acquired during tumor evolution under therapeutic selective pressure, germline CD19 polymorphisms could theoretically influence CAR-binding kinetics, alter epitope presentation, and modulate therapeutic outcomes in ways that remain largely not characterized. Unfortunately, Middle Eastern populations are underrepresented in pharmacogenomic databases and CAR-T clinical trials, creating a knowledge gap that may perpetuate global health disparities in access to precision immunotherapy. We analyzed publicly available whole-exome sequencing data from 1196 individuals of Arab origin to comprehensively characterize CD19 variants with potential relevance to CAR T-cell immunotherapy. The L174V (rs2904880) variant stood out, and showed the Valine/Valine (V/V) genotype frequency was 65.3%, corresponding to a V174 allelic frequency of 76.6%, while the minor allele, L174, has a frequency of 23.4%. The missense mutation (c.520C > G) responsible for this variant results in a leucine-to-valine (L174V) substitution at position 174 of the CD19 protein, relative to the reference genome. The cohort genotypes (CC, CG, and GG) exhibited a significant deviation from Hardy-Weinberg equilibrium (p < 0.00001). While this deviation is consistent with the high consanguinity rates (25-60%) amongst Arab populations, it remains not fully explained, and may be attributed to population structure, relatedness, or technical factors. We further emphasize that our computational analysis cannot establish any direct clinical or functional impact due to this variant, and therefore we refrain from suggesting any specific actions at the current time. In light of these findings, we hypothesize that the distinctive genetic architecture of consanguineous populations should not be viewed as a confounding variable. Instead, it presents a unique opportunity to investigate the clinical relevance of germline variation in the context of precision oncology, particularly at therapy-relevant loci, pending functional validation.
    Keywords:  CAR T-cell therapy; CD19; Middle East; antigen escape; consanguinity; founder effect; health disparities; pharmacogenomics; population genetics; precision medicine
    DOI:  https://doi.org/10.3390/jpm16070343
  48. Front Pharmacol. 2026 ;17 1815118
       Background: Pharmacometric PK/PD models remain central to dose selection for first-in-human studies, therapeutic drug monitoring, and animal-to-human extrapolation of exposure-response relationships, but modern datasets, including digital biomarkers from continuous monitoring, omics, and imaging, challenge traditional modeling assumptions. Hybrid mechanistic-machine learning (ML) approaches offer a structured way to combine causal pharmacological frameworks with data-driven flexibility.
    Methods: This review surveys the emerging landscape of hybrid mechanistic-ML PK/PD modeling with a focus on digital biomarker integration. We examine model architectures, covariate discovery methods, cross-species scaling strategies, and validation practices relevant to preclinical-to-clinical extrapolation. Literature was identified through PubMed, Scopus, and Web of Science using search terms combining pharmacokinetics, pharmacodynamics, machine learning, hybrid modeling, digital biomarkers, and cross-species pharmacology. Studies published between 2015 and 2025 were prioritized, with inclusion of foundational earlier work where necessary.
    Results: Hybrid approaches improve individual clearance estimation, covariate discovery, and cross-species PK scaling in defined settings, particularly when dense time-series data are available and the mechanistic model is structurally sound but parametrically under-identified. Integration of multimodal datasets introduces practical challenges around missingness, device drift, and data leakage that require explicit mitigation. Application examples span rodents, dogs, non-human primates, and minipigs, where continuous digital measures strengthen exposure-response inference.
    Discussion: The credibility of hybrid models depends on validation rigor, interpretability, and regulatory alignment rather than on algorithmic novelty. When mechanistic models fit well and sample sizes are small, adding an ML layer risks overfitting without measurable gain. Models that are prospectively tested, transparently documented, and fitted to a defined context of use will be more influential than those that are merely complex. We outline reporting and audit practices to support robustness, reproducibility, and regulatory review.
    Keywords:  digital biomarkers; hybrid modeling; machine learning; mechanistic modeling; pharmacodynamics; pharmacokinetics; preclinical-to-clinical extrapolation; regulatory science
    DOI:  https://doi.org/10.3389/fphar.2026.1815118
  49. Z Rheumatol. 2026 Jul 29.
      Cellular forms of treatment mark a paradigm shift in the treatment of autoimmune diseases. While conventional and targeted antirheumatic treatment controls disease activity mostly by continued immunomodulation, innovative cellular approaches, especially chimeric antigen receptor (CAR) T‑cells targeting CD19, target a deep elimination of disease-relevant immune cell compartments with subsequent immunological reconstitution. This concept of an immune reset is particularly attractive for those diseases in which autoreactive B‑cells, plasmablasts, autoantibodies and misdirected lymphocyte networks are pathogenetically central. In addition, T‑cell engagers or bispecific T‑cell engagers (TCE) are now becoming of interest, which as off the shelf strategies without cellular production also enable a deep B‑cell or plasma cell depletion via T cell-mediated cytotoxicity. The most impressive clinical data so far are available for systemic lupus erythematosus (SLE), likewise accumulating indications for the efficacy in systemic sclerosis (SSc) and idiopathic inflammatory myositis (IIM). The concept is highly plausible for rheumatoid arthritis (RA) and antineutrophil cytoplasmic antibody (ANCA)-associated vasculitis (AAV) but is clinically still in an early developmental stage. Initial clinical experiences are available for TCE, especially for refractory RA and for severe connective tissue diseases, including SSc and antisynthetase syndrome. The evidence for other rheumatological indications is so far much more limited. This article discusses the biological principles, production and mechanisms of action, the revolutionary potential of these strategies, current evidence in selected rheumatological indications and open questions on safety, patient selection and future perspectives.
    Keywords:  Autoimmunity; Immune reset; Rheumatoid arthritis; Systemic lupus erythematosus; Systemic sclerosis
    DOI:  https://doi.org/10.1007/s00393-026-01846-w
  50. Neuro Oncol. 2026 Jul 25. pii: noag171. [Epub ahead of print]
       BACKGROUND: High-grade central nervous system (CNS) tumors carry a poor prognosis with limited curative options if first-line therapy fails. B7-H3 is expressed in many of these tumors, and chimeric antigen receptor (CAR) T cell therapy is an emerging immunotherapeutic strategy.
    METHODS: BrainChild-03 (NCT04185038) is a single-center, dose-escalation phase 1 study of repeated intracerebroventricular (ICV) B7-H3 CAR T cells in children and young adults with recurrent/refractory CNS tumors (Arms A, B) and diffuse intrinsic pontine glioma (DIPG, Arm C). Here, we report results from Arm B, in which patients with refractory/relapsed CNS tumors or pre- or post-progression non-pontine diffuse midline glioma (DMG) received repeated ICV infusions. Primary objectives were feasibility and safety/tolerability; secondary objectives included CAR T cell detection, disease response, and survival.
    RESULTS: Of 36 enrolled patients (atypical teratoid rhabdoid tumor n = 5, DMG n = 8, embryonal tumor with multilayer rosettes n = 2, ependymoma n = 4, high-grade glioma n = 6, medulloblastoma n = 8, pineoblastoma n = 3), manufacturing was successful for 35 patients, 26 of whom received therapy. Median age was 10 years (range 1-26). Dose escalation from 1 × 107 to 10 × 107 CAR T cells/dose identified this dose as the maximally tolerated dose regimen, with no dose-limiting toxicities observed. Across 181 total doses (median 7/patient), common adverse events included headache (n = 26), fever (n = 15), and nausea (n = 14). Median survival from first infusion was 11.5 months, ranging from 3.2 months (pineoblastoma, HGG) to 21.4 months (ependymoma); two patients achieved a partial response.
    CONCLUSIONS: Repeated ICV B7-H3 CAR T cell dosing is feasible and tolerable across a spectrum of pediatric CNS tumors, supporting continued investigation in future trials.
    Keywords:  B7-H3; B7-H3 CAR T cells; CD276; H3 K27-altered (DMG); atypical teratoid rhabdoid tumor (ATRT); chimeric antigen receptor (CAR) T cells; diffuse midline glioma; ependymoma; high grade glioma (HGG); medulloblastoma
    DOI:  https://doi.org/10.1093/neuonc/noag171
  51. Int J Mol Sci. 2026 Jul 18. pii: 6407. [Epub ahead of print]27(14):
      Chimeric antigen receptor (CAR) therapies are emerging as promising strategies, particularly for metastatic castration-resistant prostate cancer (PCa), as they can act independently of the androgen receptor axis. Adapter CAR-T cell platforms, such as the RevCAR system, offer precise therapeutic control and tumor targeting via small, rapidly eliminated tumor-specific adapters. To enable more convenient late-stage RevCAR-T therapy in PCa patients, allowing for discontinuous reverse target module (RevTM) infusion, we developed novel, larger IgG4-based RevTMs targeting prostate stem cell antigen (PSCA) and benchmarked them against previously described smaller adapter formats. Within the RevCAR system, PSCA-IgG4 RevTMs effectively mediated PCa killing at low effector-to-target ratios and low RevTM concentrations in a strictly antigen-dependent manner. Oncolytic activity was accompanied by a rapid and pronounced release of proinflammatory cytokines across a broad RevTM concentration range, which is particularly advantageous for immunologically cold PCa. Finally, anti-tumor activity was confirmed in a short-term mouse model. Preliminary PET studies further indicate slow blood elimination and tumor-specific accumulation of novel IgG4-RevTMs. Together, these data position PSCA-IgG4 RevTMs as promising candidates for stepwise RevCAR-T treatment in PCa, in which short-lived scFv-RevTMs are initially used to ensure a rapid safety switch, followed by larger IgG4-RevTMs once the risk profile is known.
    Keywords:  CAR-T cells; PSCA; RevCAR; immunotherapy; prostate cancer
    DOI:  https://doi.org/10.3390/ijms27146407
  52. Front Oncol. 2026 ;16 1874408
       Objective: Gastric cancer (GC) causes massive cancer-related deaths worldwide. T cell-mediated immunity plays a vital role in anti-tumor responses, immune surveillance and immunotherapy efficacy for GC. Although numerous relevant studies have been published, no standardized multi-database bibliometric analysis has illustrated the overall development trajectory, cooperation patterns and research theme evolution of this field from 2006 to 2025. This bibliometric study aimed to quantify publication trends, collaborative networks and research hotspots of GC-related T cell immunity over the past two decades.
    Methods: Literature restricted to reviews with T cell immune regulation in GC published from 2006 to 2025 was retrieved from the Web of Science Core Collection (WoSCC), PubMed, Scopus. CiteSpace, VOSviewer were applied for bibliometric and visual analysis, encompassing publication trends, core authors, institutions, countries, journals, keywords, and research hotspots.
    Results: In total, 2,476 eligible publications were enrolled. Annual publications trended upward and surged after 2017, reaching 337 papers in 2025. Collaboration analysis showed China led global publication and citation outputs across the 20 years, while high bibliometric metrics only reflect regional research scale rather than superior research quality or clinical translation capacity. Fudan University, Frontiers in Immunology, Suk Ki Tae and Giovanni Targher were the most productive institution, journal, author and most co-cited author, respectively. Keywords including immune infiltration, tumor immune microenvironment, drug resistance and chemotherapy have gained rising popularity recently. Dynamic keyword shifts were closely linked to emerging single-cell sequencing technology and immune checkpoint inhibitor clinical trials. Importantly, keyword co-occurrence and clustering only show literature thematic patterns, not direct biological mechanisms or causal tumor immunology relationships.
    Discussion: This bibliometric study systematically and objectively summarizes the research status of T cells in GC, offering valuable insights and guidance for subsequent studies.
    Conclusions: GC-related T cell immunity research has grown rapidly from 2006 to 2025, focusing mainly on tumor microenvironment regulation and immunotherapy. This work clarifies the field's research status and evolutionary trends, guiding future relevant investigations. Unlike previous single-database bibliometric analyses, this study adopts three mainstream databases, standardized data processing procedures, and providing novel supplementary insights for current evidence.
    Keywords:  Citespace; T cell; VOSviewer; bibliometric analysis; gastric cancer
    DOI:  https://doi.org/10.3389/fonc.2026.1874408
  53. Abdom Radiol (NY). 2026 Jul 29.
      Artificial intelligence (AI) is rapidly integrating into clinical radiology. As primary diagnosticians, radiologists increasingly interpret AI-generated analyses and are expected to oversee the monitoring and governance of deployed AI systems. Although AI literacy among radiologists is improving, several technical aspects of AI remain insufficiently accessible. One such concept is uncertainty quantification (UQ), which estimates the reliability of AI predictions and can signal when outputs should be interpreted with caution. This review introduces key UQ concepts relevant to radiology, distinguishing between aleatoric uncertainty and epistemic uncertainty arising from data variability and knowledge gaps. We summarize commonly used UQ approaches in current research and practice. Furthermore, through a narrative review of selected recent AI imaging studies, we illustrate how UQ methods are applied in practice and highlight methodological trends, findings, and limitations. Although UQ has the potential to improve the safety and interpretability of AI-assisted screening, challenges remain, including calibration, threshold selection, computational cost, and the need for prospective clinical validation.
    Keywords:  Artificial intelligence; Deep learning; Medical imaging; Uncertainty quantification
    DOI:  https://doi.org/10.1007/s00261-026-05714-8
  54. Cardiooncology. 2026 Jul 30. pii: 103. [Epub ahead of print]12(1):
       BACKGROUND: Chimeric antigen receptor (CAR) T-cell therapy has substantially improved outcomes in refractory hematologic malignancies but may cause cardiovascular complications, particularly in the context of cytokine release syndrome (CRS). Real-world data on incidence, severity, and prognostic relevance of cancer therapy-related cardiovascular toxicity (CTR-CVT) defined by the 2022 ESC cardio-oncology guidelines remain in the context of CAR-T cell therapy limited.
    METHODS: This retrospective single-center study includes 104 patients treated with CAR T-cells between 09/2019 and 02/2024 for acute lymphoblastic leukemia, non-Hodgkin lymphoma and multiple myeloma. The primary endpoint was new-onset CTR-CVT during hospital stay, defined as cancer therapy-related cardiac dysfunction (CTRCD), arrhythmia, myocardial infarction, cardiogenic shock, or cardiovascular death. Clinical characteristics, biomarkers, echocardiographic parameters, CRS/ICANS severity, and survival outcomes were analyzed.
    RESULTS: Fifty-two patients (50%) met criteria for CTR-CVT, predominantly due to asymptomatic biomarker elevation. CTRCD occurred in 48.1%, whereas clinically significant events were rare: three patients developed symptomatic CTRCD, one experienced cardiogenic shock, and no myocardial infarctions or cardiovascular deaths were observed. Cardiovascular events occurred early and were associated with higher-grade CRS and ICANS, as well as elevated inflammatory markers. Reduced baseline left ventricular ejection fraction, elevated systolic pulmonary artery pressure, impaired performance status, and beta-blocker use were associated with increased CTR-CVT risk. Survival was numerically lower in patients with CTR-CVT but did not reach statistical significance.
    CONCLUSION: Although half of patients fulfilled ESC criteria for CTR-CVT, clinically relevant cardiac events after CAR T-cell therapy were uncommon. These findings suggest potential overclassification driven by biomarker elevations and underscore the importance of emphasizing clinical relevance when assessing cardiotoxicity in CAR T-cell recipients.
    Keywords:  CAR T-cell therapy; Cancer therapy-related cardiac dysfunction (CTRCD); Cancer treatment related cardiovascular toxicity (CTR-CVT)
    DOI:  https://doi.org/10.1186/s40959-026-00544-5
  55. Cancers (Basel). 2026 Jul 17. pii: 2311. [Epub ahead of print]18(14):
       BACKGROUND/OBJECTIVES: T-cell-redirecting immunotherapies, including chimeric antigen receptor T-cell (CAR-T) therapy and bispecific antibodies (BsAbs), have transformed the treatment of relapsed/refractory multiple myeloma (RRMM). However, pivotal registration trials routinely excluded patients with significant renal impairment (RI), creating a critical evidence gap in a population where kidney disease affects 20-50% of patients at diagnosis. Direct comparisons of outcomes across the estimated glomerular filtration rate (eGFR) spectrum for both modalities are lacking.
    METHODS: We conducted a retrospective cohort study using the TriNetX Global Collaborative Network, a federated electronic health record research platform. Adult patients with RRMM treated with CAR-T therapy (idecabtagene vicleucel or ciltacabtagene autoleucel) or BsAbs (teclistamab, elranatamab, or talquetamab) were stratified by baseline renal function: severe RI (eGFR <30 mL/min/1.73 m2), moderate RI (eGFR 30-60 mL/min/1.73 m2), and preserved renal function (eGFR >60 mL/min/1.73 m2). Propensity score matching (PSM) (1:1), adjusted for key clinical and demographic covariates, was performed for each comparison within each therapy type. Long-term outcomes (all-cause mortality and time to next treatment [TTNT]) were assessed at 1, 2, and 3 years. Overall survival (OS) was additionally evaluated using Kaplan-Meier analysis. Short-term safety outcomes were assessed at 1, 3, and 6 months.
    RESULTS: A total of 2716 CAR-T and 3376 BsAb recipients were identified. After matching, 281 pairs (severe RI vs. preserved) and 878 pairs (moderate RI vs. preserved) were analyzed in the CAR-T cohort; 645 and 1158 pairs, respectively, were analyzed in the BsAb cohort. Neither severe nor moderate RI was significantly associated with increased mortality or shorter TTNT after either CAR-T or BsAb therapy. However, patients with RI experienced significantly higher rates of anemia, thrombocytopenia, and acute kidney injury (AKI) across both modalities. Cytokine release syndrome (CRS), immune effector cell-associated neurotoxicity syndrome (ICANS), and neutropenia rates were comparable across renal strata. In the BsAb cohort, infections were transiently elevated at 1 month in the severe RI group (RR 1.29; 95% CI 1.06-1.58; p = 0.011) but equilibrated by 3 months.
    CONCLUSIONS: In this retrospective analysis, renal impairment was not associated with inferior survival outcomes following CAR-T therapy or BsAb treatment in RRMM, suggesting that RI alone should not preclude the use of these agents. However, RI conferred increased hematologic toxicity and AKI risk, warranting enhanced supportive care and monitoring. These findings support broadening access to T-cell-redirecting immunotherapies for patients with RI with appropriate surveillance, though prospective validation is needed.
    Keywords:  CAR-T cell therapy; TriNetX; acute kidney injury; bispecific antibodies; chronic kidney disease; multiple myeloma; overall survival; propensity score matching; renal impairment; time to next treatment
    DOI:  https://doi.org/10.3390/cancers18142311
  56. bioRxiv. 2026 Jul 16. pii: 2026.07.15.738803. [Epub ahead of print]
       Background: Chimeric Antigen Receptor (CAR) T cell therapy targeting B-cell maturation antigen (BCMA) has demonstrated impressive clinical efficacy in relapsed/refractory multiple myeloma (MM). Nonetheless, disease relapse limits durable response for most patients. Trogocytosis of target antigen by effector cells has emerged as a potential contributor to reduced surface antigen density, CAR T cell dysfunction, and fratricide. Although γ-secretase inhibitors (GSI) significantly increase cell surface BCMA density and decrease soluble BCMA (sBCMA), their effects on BCMA trogocytosis and the resulting impact on CAR T-cell function remain incompletely understood.
    Methods: We investigated the effects of GSI on BCMA-directed CAR T cell function and trogocytosis using in vitro co-culture systems with MM cell lines across a spectrum of BCMA expression. We validated findings using confocal microscopy and cytotoxicity assays. Trogocytosis and fratricide were assessed in time-resolved functional studies. Phenotypic and functional differences between trogocytosis-positive (CAR T Trogo+) and trogocytosis-negative (CAR T) cells were evaluated using multiparametric flow cytometry, proteomic profiling, single-cell RNA sequencing (scRNA-seq), T-cell receptor (TCR) sequencing, and in vitro rechallenge assays. We also interrogated clinical samples from two Phase I trials ( NCT03338972 and NCT03502577 ) which employed the identical CAR T cell construct with or without GSI respectively, to evaluate the relationship between trogocytosis, CAR T cell persistence, and treatment outcome.
    Results: GSI driven increases in BCMA density on MM cell lines enhanced CAR T cell cytotoxicity but concomitantly increased trogocytosis, particularly in high-antigen-density cell lines-(H929+GSI vs H929; 30 min (P<0.0001), 1 h (P<0.0001), 2 h (P<0.0001), 6 h (P<0.0001), and 24 h (P<0.0001) and in CD4⁺ CAR T cells (K562mCherry+GSI, CD4 vs CD8 CAR T cells;10 min (P=0.01), 2 h (P=0.01), and 6 h (P=0.004). Following BCMA acquisition, CAR T cells (CAR T Trogo⁺) exhibited reduced proliferative capacity, diminished cytotoxic function (CAR T Trogo+ vs CAR T; (P=0.01), and an increase in markers of exhaustion/activation (CD4+ CAR T Trogo+ vs CD4 CAR T and CD8+ CAR T Trogo+ vs CAR T; PD-1+LAG-3+, PD-1+TIM-3+, and TOX+TIM-3 co-expression, (P=0.007, P<0.0001, P=0.006 and P=0.004, P=0.03, P=0.006). In fratricide assays, CAR T Trogo⁺ cells were susceptible to killing by naïve CAR T cells. Single cell RNA-seq supports the phenotypic findings revealing transcriptional features of heightened activation and accelerated exhaustion in CAR T Trogo+ cells. Clinical phase I trial data confirm BCMA trogocytosis in patient samples.
    Conclusions: Our findings highlight the paradoxical effects of increased BCMA density on BCMA CAR T cell therapy: enhancement of initial tumor targeting and promotion of trogocytosis-associated dysfunction. Trogocytosis may contribute to antigen modulation, CAR T cell exhaustion, and fratricide, potentially muting the therapeutic benefits of enhanced antigen density. To optimize GSI and mitigate trogocytosis-associated resistance mechanism, future clinical trial designs should incorporate early time-point sampling, a sample size providing sufficient statistical power to determine an impact on CAR T cell persistence and treatment response, and mechanistic assessments.
    DOI:  https://doi.org/10.64898/2026.07.15.738803
  57. Chem Sci. 2026 Jul 29.
      Chimeric antigen receptor T-cell (CAR-T) therapy has revolutionized the treatment of refractory B-cell malignancies, yet severe cytokine release syndrome (CRS) and unpredictable long-term outcomes remain major clinical challenges. Here, we developed a rapid, scalable, 96-well plate-based strategy for the high-throughput preparation of lanthanide-encoded classifier beads. This approach substantially increases production throughput, from several types per day to 96 types within 8 hours, enabling sensitive multiplexed cytokine profiling by mass cytometry. By applying this platform to 136 longitudinal plasma samples from 32 patients with diffuse large B-cell lymphoma receiving CD19-directed CAR-T therapy, we achieved fg mL-1-level sensitivity and broad dynamic ranges across 14 key cytokines. Longitudinal profiling revealed distinct cytokine dynamics between patients with low- and high-grade CRS. Baseline TGF-β1 showed a significant univariate association with subsequent high-grade CRS (p = 0.001) and inferior event-free survival (p = 0.02). These findings demonstrate the utility of a scalable bead-based platform for high-resolution immune monitoring in CAR-T therapy and identify baseline TGF-β1 as a candidate exploratory biomarker associated with CRS severity and clinical outcome. This approach provides a practical tool for sensitive and high-throughput cytokine profiling and deeper understanding of immune responses in immunotherapy.
    DOI:  https://doi.org/10.1039/d6sc03656b
  58. Jt Comm J Qual Patient Saf. 2026 Jul 03. pii: S1553-7250(26)00164-9. [Epub ahead of print]
       BACKGROUND: Access to healthcare and timely patient scheduling are essential for early diagnosis, effective treatment, enhanced operational efficiency, and patient satisfaction in healthcare systems.
    METHODS: This study examined five access initiatives at a tertiary oncological center: redesigned scheduling algorithms, expedited appointment-offering protocols (same-day/next-day [SD/ND] scheduling), optimization of four-hour patient contact workflows, developing a patient-facing access tracking tool (My Referral Status), and a workforce redesign that empowered access leaders with data analytics, process improvement skills, and career advancement strategies. The authors analyzed new patient referrals from January 2023 to December 2024, focusing on three domains: appointment scheduling, operational performance, and patient experience.
    RESULTS: Median time to appointment creation decreased from five to two calendar days. The four-hour patient contact rate increased by nearly 40 percentage points, reaching 90%. Press Ganey scheduler courtesy scores exceeded the 97th percentile nationally (an improvement from the 41st percentile). SD/ND scheduling improved from 38% to 62% across all patient cohorts and from 48% to 74% within the target population. Use of the My Referral Status tool contributed to a 5% increase in Press Ganey Top Box communication scores. Workforce stability improved substantially, with turnover declining from approximately 30% to below 5%, vacancy rates falling below 5%, and engagement scores increasing across multiple institutional survey domains.
    CONCLUSION: Coordinated, data-driven access strategies reduced structural barriers, improved scheduling timeliness, enhanced transparency, and strengthened workforce stability. This integrated model provides a replicable framework for healthcare systems seeking to expand access, improve patient experience, and support sustainable oncology operations.
    DOI:  https://doi.org/10.1016/j.jcjq.2026.06.011
  59. Mol Ther Adv. 2026 Sep 10. 34(3): 201803
      Given challenges with access, manufacturability, and the requirement for lymphodepletion with autologous chimeric antigen receptor (CAR)-T cell therapy, a promising alternative is in vivo-mediated gene delivery using redirected viral vectors to generate tumor-antigen-specific CAR-T cells. While data supporting in vivo CAR-T cells in patients are emerging, limited studies have described the pharmacokinetics (PK) and pharmacodynamics (PD) of this approach. Here, we evaluated the PK/PD of a novel CD8-targeted lentiviral vector called "fusosome," delivering a CD19-directed CAR transgene in xenograft mouse models. In NSG mice without target cells, the fusosome vector genomes cleared rapidly from plasma (90 minutes to 2 hours) and were detectable in tested tissues for up to 1 week. We observed prolonged persistence of viral particles in peripheral blood mononuclear cell (PBMC)-engrafted mice, with vector detection peaking within 10-40 min post-administration, depending on the tissue type. CAR transgene was detectable in various lymphoid organs after 7 days post-vector dosing. Dose-dependent tumor control and specific CAR-T cell generation were observed in tumor-bearing PBMC-engrafted mice. Overall, the PK/PD of fusosome and efficacy in the tumor model supports its potential as an in vivo gene delivery approach to treat patients with B cell lymphomas.
    Keywords:  CAR-T; cancer; clearance; gene therapy; in vivo; lentivirus; mouse model; pharmacodynamics; pharmacokinetics; viral vector
    DOI:  https://doi.org/10.1016/j.omta.2026.201803
  60. bioRxiv. 2026 Jul 23. pii: 2026.07.22.739359. [Epub ahead of print]
      Cluster of differentiation 47 (CD47) blockade promotes tumor cell phagocytosis; however, transitioning this initial innate immune event into durable anti-cancer adaptive immunity and tumor control remains a critical challenge. To address this translational gap, we have engineered aCD47 - CpG, a novel immune-stimulating antibody conjugate (ISAC) coupling a CD47-blocking antibody (aCD47) to a Toll-like receptor 9 agonist, unmethylated CpG, to enable synchronized deployment of co-stimulatory signals during tumor engulfment. This ISAC, aCD47-CpG, but not the parent aCD47, reprograms macrophages toward an anti-tumor M1-like phenotype, enhances antigen cross-presentation, and promotes robust CD8 + T cell priming. We found that systemically administered aCD47-CpG drove macrophage-dependent tumor suppression in a human lymphoma xenograft model. In parallel, the treatment in immunocompetent syngeneic models of lymphoma and highly immunosuppressive triple-negative breast cancer resulted in profound tumor regression, metastasis inhibition, and durable anti-cancer immune memory. These effects were accompanied by remodeling of the immunosuppressive tumor microenvironment toward an immune-permissive state, characterized by M2-to-M1 macrophage repolarization, intratumoral infiltration of cytotoxic and memory T cells, and depletion of regulatory T cells. This spatiotemporally coordinated immunotherapy platform offers a promising strategy to bridge innate and adaptive immunity, thereby advancing the translational potential of CD47-targeted cancer therapies.
    DOI:  https://doi.org/10.64898/2026.07.22.739359