bims-imesem Biomed News
on Immunemetabolism
Issue of 2026–08–02
six papers selected by
Akshara Kulkarni, University of Cambridge



  1. bioRxiv. 2026 Jul 24. pii: 2026.07.23.740149. [Epub ahead of print]
      Orthoflaviviruses depend on host metabolic resources to replicate, but how distinct cell types in the central nervous system (CNS) alter their metabolism in response to infection remains incompletely understood. Here, we examined whether the NAD+-dependent deacetylase SIRT1 is engaged during Zika virus (ZIKV) and West Nile virus (WNV) infection and whether its activity influences infection outcomes. SIRT1 activity increased in astrocytes isolated from infected mouse brains and in infected primary human astrocytes, but not in neurons or CNS myeloid cells. In astrocytes, infection induced transcriptomic, metabolomic, and functional changes consistent with SIRT1 activation, enhanced NAD+ salvage, and enhanced oxidative metabolism. Pharmacologic inhibition of SIRT1 or NAD+ salvage reduced ZIKV replication in astrocytes, whereas SIRT1 activation or supplementation with an NAD+ precursor increased replication. In mice, SIRT1 inhibition or nicotinamide (NAM) treatment reduced viral burden and mortality following ZIKV and WNV infection, while SIRT1 activation worsened disease. Together, these findings identify NAD+/SIRT1 as key regulators of cellular metabolism in infected astrocytes and support a role for this pathway in promoting orthoflavivirus replication and pathogenesis.
    DOI:  https://doi.org/10.64898/2026.07.23.740149
  2. J Biochem Mol Toxicol. 2026 Aug;40(8): e71032
      Mitochondrial dynamics, regulated by fission and fusion, are frequently altered in cancers, influencing cell survival and metabolism. The sesquiterpene β-elemene exhibits anti-tumor activity, but its effect on mitochondrial dynamics in cervical cancer is unknown. This study investigated whether β-elemene exerts its anti-tumor effects by disrupting mitochondrial homeostasis. We found that β-elemene treatment dose-dependently reduced viability and increased lactate dehydrogenase release in HT-3 and Caski cervical cancer cells. In HT-3 cells, β-elemene induced mitochondrial oxidative stress, impaired respiratory function, and triggered extensive mitochondrial fragmentation. Mechanistically, β-elemene promoted phosphorylation of dynamin-related protein 1 (Drp1) at Ser616 and its translocation to mitochondria. Furthermore, β-elemene enhanced the interaction between cyclin-dependent kinase 1 (CDK1) and cyclin B1. Genetic silencing of CDK1 abrogated β-elemene-induced Drp1 activation, mitochondrial fragmentation, and bioenergetic deficits. Collectively, these data identify a novel pathway through which β-elemene drives CDK1-dependent Drp1 activation, leading to excessive mitochondrial fission and dysfunction in cervical cancer cells.
    Keywords:  CDK1/Cyclin B1; Drp1; cervical cancer; mitochondrial fission; β‐elemene
    DOI:  https://doi.org/10.1002/jbt.71032
  3. Virol Sin. 2026 Jul 27. pii: S1995-820X(26)00121-5. [Epub ahead of print]
      The ubiquitin-proteasome system (UPS) plays a central role in antiviral defense but is also frequently hijacked by viruses to facilitate their replication. Here, we demonstrate that the host deubiquitinase OTUB2 stabilizes the viral replication factor NSP8 of severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) through a dual-track mechanism. OTUB2 directly removes polyubiquitin chains from NSP8 to prevent its degradation. In parallel, OTUB2 stabilizes the viral papain-like protease (PLpro), which further promotes NSP8 stability through deubiquitination. Together, these effects preserve the functional integrity of the viral replication-transcription complex. Mechanistically, OTUB2-mediated stabilization of NSP8 potentiates NSP8-dependent suppression of type I interferon signaling, thereby promoting viral replication and immune evasion. Importantly, inhibition of OTUB2 disrupts OTUB2-mediated stabilization of NSP8 and PLpro, resulting in a marked reduction in viral replication and disease severity in cell culture systems and a hamster infection model. Collectively, our findings reveal a previously unrecognized mechanism by which SARS-CoV-2 utilizes the host deubiquitination system to stabilize its replication machinery and identify OTUB2 as a potential target for host-directed antiviral intervention.
    Keywords:  NSP8; OTUB2; PLpro; Severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2); deubiquitination
    DOI:  https://doi.org/10.1016/j.virs.2026.07.008
  4. bioRxiv. 2026 Jul 16. pii: 2026.07.11.737940. [Epub ahead of print]
      In polymicrobial infections, how the host recognizes and responds to pathogens influences which species will persist to cause chronic infections. The human respiratory tract is a common anatomical site for viral-bacterial co-infections, where primary viral infections predispose to secondary bacterial infections, leading to increased morbidity and mortality. Additionally, co-infections are disproportionately prevalent in people with chronic lung diseases, such as chronic obstructive pulmonary disease and cystic fibrosis. We previously reported that primary viral infections and antiviral interferon (IFN) signaling stimulate Pseudomonas aeruginosa (PA) biofilm formation on airway epithelial cells (AECs). IFN signaling induces aerobic glycolysis in AECs and generates lactate as a cellular byproduct. Given that innate immune systems play an integral role in co-infection dynamics, we investigated the role of host-secreted metabolites (i.e. lactate) on innate immune cell activity during respiratory co-infections. We found that exposure to the apical secretions from IFNβ-treated AECs significantly compromised macrophage antibacterial activity, with the soluble metabolite lactate playing an important role. Macrophages used monocarboxylate transporters and G-protein receptors to transport and/or sense lactate, respectively, and this exposure to lactate diminished their bacterial-killing activity in a time-exposure dependent manner. Lactate exposure particularly reprogrammed macrophage cellular metabolism towards an anti-inflammatory state by increasing oxidative phosphorylation and fatty acid oxidation. Collectively, these findings provide insight into metabolites as complex regulators of trans-kingdom interactions and epithelial-macrophage crosstalk during respiratory co-infections.
    DOI:  https://doi.org/10.64898/2026.07.11.737940
  5. bioRxiv. 2026 Jul 26. pii: 2026.07.24.740668. [Epub ahead of print]
      To date, twenty-seven pathogenic human viruses require host-catalyzed de novo fatty acid biosynthesis for replication. This pathway is driven by fatty acid synthase (FASN), which produces palmitate. Palmitate is a precursor for various functions during viral infection, including lipid droplet formation for assembly, beta-oxidation for ATP generation, and post-translational modification of proteins. Whether Mayaro virus (MAYV), an emerging alphavirus that causes debilitating arthritogenic disease, required FASN for infection was unknown. Using genetic and pharmacological approaches in a human cell line and primary cell model, we found that MAYV requires FASN-dependent palmitate synthesis for virion production. To determine how palmitate contributes to infection, we pharmacologically inhibited pathways downstream of FASN and found that only 2-bromopalmitate (2-BP), a protein palmitoylation inhibitor, led to a 94% reduction in MAYV infection. S-palmitoylation is a post-translational modification in which palmitate is attached to sulfur atoms in cysteine residues. In chikungunya virus, a related alphavirus, FASN-dependent palmitoylation of nonstructural protein 1 (nsP1) is essential for membrane association and replication. Consequently, we hypothesized that MAYV nsP1 is palmitoylated in a FASN-dependent manner. Using an alkyne acetate analog, Alk-4, metabolized by FASN into alkyne palmitate, we observed specific labeling of wild-type nsP1 at conserved cysteine residues (C417-419), but not of a cysteine-to-alanine triple mutant. Treatment with TVB-2640 or 2-BP abrogated Alk-4 labeling of wild-type nsP1 during active infection, reinforcing that MAYV protein palmitoylation is a FASN-dependent process. Our findings reveal a conserved mechanism of FASN-dependent protein palmitoylation in alphaviruses and highlight FASN as a potential anti-viral target.
    Importance: Mayaro virus (MAYV) is a neglected, mosquito-borne tropical virus that causes debilitating pathologies, such as chronic joint pain that can last from months to years. Currently, MAYV transmissions are endemic in sylvatic and peri-urban regions in Central and South America and the Caribbean. However, MAYV has been detected in urban-adapted mosquitos like Aedes aegypti ( Ae. aegypti ) and is a concern for potential global spread. Consequently, investigating the mechanisms of MAYV infection is critical to uncover opportunities for antiviral drug development. In this study, we report that MAYV infection requires host fatty acid synthase (FASN) derived palmitate for palmitoylation of the viral non-structural protein 1 (nsP1). In addition, we report that inhibiting FASN with the clinically advanced small molecule TVB-2640 significantly reduced MAYV infection and nsP1 palmitoylation. This study highlights FASN as an essential host factor for MAYV replication and establishes it as a promising therapeutic target for MAYV and related alphaviruses.
    DOI:  https://doi.org/10.64898/2026.07.24.740668
  6. mBio. 2026 Jul 27. e0149126
      The innate immune response to pathogens often involves metabolic reprogramming, such as disruption of the Krebs cycle, leading to the accumulation of various metabolites that can further influence innate cell responses during infection. Of these, the immunomodulatory metabolite itaconate has been shown to positively or negatively influence lung immune responses, depending on the pathogen. In the current study, we found that mice deficient in aconitate decarboxylase (Acod1-/- mice), the enzyme that produces itaconate from cis-aconitate, cleared the opportunistic mold Aspergillus fumigatus from the lung more effectively than wild-type (WT) control mice. Augmented fungal clearance in Acod1-/- mice correlated with increased type 17 responses, which themselves correlated with higher IL-1β, PGE2, and γδ T cell levels. Intriguingly, we show that alveolar macrophages and neutrophils from naïve Acod1-/- mice kill A. fumigatus more efficiently. Conversely, the addition of exogenous itaconate to alveolar macrophages and neutrophils from naïve WT mice reduced their antifungal capacity. Mechanistically, alveolar macrophages, but not neutrophils, from naïve Acod1-/- mice demonstrated enhanced ROS production when stimulated with A. fumigatus. We further show that mice with macrophage-specific, but not neutrophil-specific, Acod1 deficiency cleared A. fumigatus more effectively. Itaconate deficiency also protected against fungus-induced mortality during corticosteroid-mediated immunosuppression. Finally, itaconate reduced the antifungal activity of human monocyte-derived macrophages. Collectively, these data identify an immune regulatory role for itaconate during A. fumigatus fungal pneumonia and potentially identify a new therapeutic target for enhancing protection against A. fumigatus.IMPORTANCEFungal infections by invasive molds such as Aspergillus fumigatus are leading causes of morbidity and mortality in immunocompromised individuals, such as patients with hematologic malignancies, and recipients of hematopoietic stem cell transplant (HCT), solid organ transplant (SOT), and cellular therapies. A major shift in the increased incidence of these infections is a result of a rapidly expanding global immunocompromised population due to targeted immunotherapies and biologics for the treatment of cancer, combination therapies, cellular therapies, and bispecific and trispecific antibody therapies. The advancement in these immunomodulatory/immunosuppressive therapies is outpacing our understanding of mechanisms that lead to the development of infections such as invasive aspergillosis. Therefore, the continuing evolution of our understanding of protective and immunoregulatory responses would be expected to reveal new mechanisms that govern susceptibility to fungal pneumonia. To this end, in the current report, we show that the TCA cycle intermediate itaconate hinders lung clearance of A. fumigatus via regulating multiple immune mechanisms. Overall, our study uncovers a new mechanism of immune regulation during fungal pneumonia.
    Keywords:  fungal; innate immunity; lung defense
    DOI:  https://doi.org/10.1128/mbio.01491-26