bims-obesme Biomed News
on Obesity metabolism
Issue of 2026–07–12
nine papers selected by
Xiong Weng, University of Edinburgh



  1. Cell Rep. 2026 Jul 04. pii: S2211-1247(26)00681-9. [Epub ahead of print]45(7): 117603
      Brown adipose tissue (BAT) regulates whole-body energy balance through uncoupling protein 1 (UCP1)-dependent thermogenesis and secretion of metabolic factors. Recent studies suggest UCP1-independent mechanisms contribute to energy balance, with UCP1 being conditionally dispensable. However, how adaptation to UCP1 deficiency is regulated remains unclear. Our single-nucleus RNA sequencing of BAT from cold-exposed Ucp1 knockout mice reveals a distinct brown adipocyte subpopulation (U2). U2 adipocytes exhibit a secretory profile enriched in batokines like growth differentiation factor 15 (GDF15), suggesting a shift toward an endocrine role. Functional analyses reveal that GDF15-GFRAL signaling is required to sustain energy expenditure in adipose tissue (AT). The Ucp1/Gfral knockout increased food intake to compensate for decreased energy expenditure in AT. Additionally, a conserved UCP1-GDF15 regulatory axis in human AT is observed. These findings identify a regulatory brown adipocyte subpopulation emerging in response to UCP1 deficiency, representing a compensatory mechanism for maintaining energy homeostasis in mammals.
    Keywords:  CP: metabolism; GDF15; GFRAL; Ucp1 knockout mice; adipose tissue; cold exposure; energy expenditure; single-nucleus RNA sequencing
    DOI:  https://doi.org/10.1016/j.celrep.2026.117603
  2. Cell Death Dis. 2026 Jul 08.
      Adipogenesis, a crucial physiological process, serves to safely sequester lipids, thereby preventing lipotoxicity in peripheral organs and preserving metabolic health during obesity. While insulin signaling plays a pivotal role in adipogenesis, regulating factors, especially the braking mechanism governing this process, warrant further investigation. Our study identified proteasome-dependent degradation of the insulin receptor (IR) during the early stages of adipogenesis as a critical event for the mitotic clonal expansion phase of the adipocyte differentiation program. A series of studies confirmed that the ubiquitinated modification of IR is regulated by E3 ligase FBXO2, and this is based on IR phosphorylation. We further elucidated that the FBD domain of FBXO2 is indispensable for its function in catalyzing p-IR ubiquitination. Gain or loss of function of Fbxo2 inhibited or promoted SVF or 3T3L1 cells proliferation and adipogenesis both in vitro and in vivo, which regulated adipose hyperplasia and plasticity of adipose tissue. Moreover, FBXO2 played an important role in regulating the metabolic health of mice when subjected to caloric excess. Collectively, our findings unveil FBXO2 as a negative regulator of adipogenesis by impairing the insulin signaling pathway.
    DOI:  https://doi.org/10.1038/s41419-026-09096-z
  3. Nat Commun. 2026 Jul 08. pii: 5680. [Epub ahead of print]17(1):
      Obesity is a major risk factor for type 2 diabetes, a disease affecting approximately 10% of the global population. Obesity is a heterogeneous condition, with different components exerting distinct, and sometimes opposing, effects on type 2 diabetes risk. Here, we aim to identify molecular mechanisms through which distinct components of obesity influence risk for type 2 diabetes by integrating multi-omics data. We identify SNPs associated with body mass index in males and females and cluster them based on their Mendelian randomisation estimates on type 2 diabetes risk. This analysis reveals four SNP clusters with distinct effects on type 2 diabetes ranging from strongly harmful to protective. We perform cluster-specific two-sample Mendelian randomisation analyses across over 3000 molecular traits to delineate metabolic, lipid, endocrine and glycaemic pathways mediating the harmful and protective effects of distinct obesity components on type 2 diabetes risk.
    DOI:  https://doi.org/10.1038/s41467-026-74675-9
  4. Cell Metab. 2026 Jul 07. pii: S1550-4131(26)00238-X. [Epub ahead of print]
      Obesity-related type 2 diabetes (T2D) is currently defined by insulin resistance and impaired insulin secretion. Sulfonylureas, thiazolinediones, and insulin are effective at lowering glycemia yet have not consistently translated into improved long-term outcomes. In contrast, recent interventions often produce metabolic benefits that exceed expectations based on glucose lowering alone. These contrasting observations suggest that our understanding of T2D pathophysiology is incomplete. We propose that, in obesity-related prediabetes and early T2D, insulin resistance, attenuated glucose-stimulated insulin secretion, modest hyperglycemia, and glucosuria represent beneficial functional changes in response to nutrient excess. These allostatic adaptive responses limit glucose flux into metabolically vulnerable tissues and reduce nutrient stress (nutri-stress). From this perspective, T2D is not simply a failure of glucose regulation but a coordinated systemic allostatic response to chronic energy excess aimed at preserving metabolic homeostasis. Therapeutic success may depend not only on lowering glycemia but also on how interventions alter tissue-specific glucose handling and metabolic stress.
    DOI:  https://doi.org/10.1016/j.cmet.2026.06.012
  5. Nucleic Acids Res. 2026 Jul 03. pii: gkag661. [Epub ahead of print]54(13):
      Epigenetic clocks based on DNA methylation (DNAm) accurately predict age, but their biological underpinnings remain unclear. One primary mechanism by which DNAm might influence gene regulation is by modulating transcription factor binding activity. This study investigates the regulatory potential of predictive CpGs in established epigenetic clocks. Our analysis reveals that generally most CpGs used by epigenetic clocks do not overlap known transcription factor binding sites (TFBS), indicating that clock accuracy is not primarily driven by changes in TF binding dynamics. However, analysis of CpGs within TFBSs identifies key transcription factors potentially involved in aging, including ZBED1, NFE2, and CEBPB, which are enriched for age-associated CpGs, while RELA, IKZF1, and STAT3 significantly protected against methylation changes. Leveraging TFBS-associated and age-correlated CpGs, combined with noise-stabilizing feature engineering steps, we developed an alternative TFMethyl Clock model that provides competitive predictions of chronological age. Age-predictive CpGs selected by our model enrich for target genes involved in interleukin-1β production and fatty-acid metabolism, while being enriched at TFBSs of NR2C2. Furthermore, approximately three-fourths of these target genes exhibit significant age-related changes, suggesting deeper insights into possible methylation-driven aging processes. Our findings demonstrate that incorporating regulatory information into epigenetic clocks may provide mechanistic insights into the aging process while improving the interpretability and predictive power.
    DOI:  https://doi.org/10.1093/nar/gkag661
  6. Mol Metab. 2026 Jul 10. pii: S2212-8778(26)00099-2. [Epub ahead of print] 102415
      Inorganic pyrophosphate (PPi) is a key inhibitor of ectopic calcification, yet transcriptional regulation of genes controlling its systemic production and degradation (ABCC6, ALPL, ANKH, and ENPP1) remains poorly understood. We hypothesized that PPi homeostasis is regulated by an evolutionarily conserved transcription factor (TF) network. Promoter motif analysis combined with ATAC-seq revealed conserved enrichment of TF binding sites, including FOXA1, HNF4A, and SREBF1, across mouse and human orthologues. Bulk and single-cell RNA-seq together with RT-qPCR analyses in wild-type and Abcc6-/- mice showed hepatocytes as major cell type expressing the most relevant genes maintaining PPi homeostasis. Further inference analysis identifies a conserved transcriptional program that regulates systemic PPi balance across mice and humans. Functionally, mice showed an age-dependent inverse correlation between plasma PPi and serum alkaline phosphatase (AP) activity, strongest during early life. Abcc6-/- mice displayed persistently reduced but gradually increasing PPi levels and altered Pi/PPi ratios during aging. In humans, plasma PPi correlated inversely with AP activity and positively with Pi in both controls and ABCC6-deficient pseudoxanthoma elasticum patients. Together, these findings support a conserved TF-associated regulatory program linking PPi homeostasis gene expression with circulating mineralization-related factors across physiological and pathological states.
    Keywords:  ectopic mineralization; inorganic pyrophosphate; pseudoxanthoma elasticum; serum alkaline phosphatase activity; transcription factors
    DOI:  https://doi.org/10.1016/j.molmet.2026.102415
  7. Elife. 2026 07 07. pii: RP109762. [Epub ahead of print]15
      The histone variant H2A.Z and DNA methylation are enriched at mutually exclusive genomic segments, though its mechanistic bases remain unclear. Here, we examine DNA methylation's influence on the intrinsic stability of the H2A.Z nucleosome and chaperone-mediated H2A.Z deposition. Cryo-EM and endonuclease analyses suggest that DNA methylation subtly increases the openness and accessibility of the H2A.Z nucleosome on satellite II-derived DNA sequences. In transcriptionally silent Xenopus egg extracts, H2A.Z preferentially associates with unmethylated DNA though a substantial proportion of H2A.Z is recruited to methylated DNA. Preferential H2A.Z deposition to unmethylated DNA depends on the SRCAP complex, whose DNA binding is suppressed by methylation, while an SRCAP-independent and DNA methylation-insensitive mechanism for H2A.Z deposition also exists. Altogether, we propose that SRCAP drives the biased association of H2A.Z to unmethylated DNA, while additional mechanisms, potentially taking advantage of the subtle DNA methylation-induced physical effects, further assist the exclusion of H2A.Z from methylated DNA.
    Keywords:  DNA methylation; H2A.Z; SRCAP; Xenopus egg extract; chromosomes; cryo-EM; gene expression; histone chaperone; nucleosome; xenopus
    DOI:  https://doi.org/10.7554/eLife.109762
  8. Nat Med. 2026 Jul 09.
      There are extensive ongoing efforts to slow or even reverse human aging, such as with epigenetic cellular reprogramming, thymus rejuvenation or senolytics. In parallel, new and diverse metrics-known as biological clocks-have been discovered and shown to track the pace of aging in an individual and their organs, tissues and cells. These clocks have multiple potential use cases, including identifying people at high risk of disease, serving as a foundation for prevention or early detection, and determining whether lifestyle factors or an intervention can modulate the aging process. This review provides a critical appraisal of the progress that is being made with biological clocks and how they might ultimately help understand pathobiology, reduce the burden of disease and extend healthspan.
    DOI:  https://doi.org/10.1038/s41591-026-04495-3
  9. Cell Metab. 2026 Jul 07. pii: S1550-4131(26)00235-4. [Epub ahead of print]38(7): 1255-1257
      Fibroblast growth factor 21 (FGF21) is a stress-induced endocrine hormone that regulates metabolism. Grandl et al. show that FGF21, through its receptor β-klotho (KLB), enhances sulfide signaling and hydrogen sulfide production, strengthening the unfolded protein response and integrated stress response to promote stress resilience, metabolic adaptation, and potentially healthy aging.
    DOI:  https://doi.org/10.1016/j.cmet.2026.06.009