1
Return

An epigenetic switch in β-cells links mitochondrial stress to inflammatory fate via HMGB1 acetylation

delete2026-08-08
delete0
PRE
AI
Y
Yao Cheng
L
Luyao Wang
X
Xue Bai
朱国旗 cover
朱国旗 (Guoqi Zhu)
Y
Ying Xu
B
Bin Wang
Q
Qiying Yi
G
Guangneng Liao
J
Jinglan Huang *
D
Dan Wang *
S
Sirong He *
DOI:10.1038/s41418-026-01839-xdelete
deleteOriginal
deleteOriginal request for help
deleteShare
deleteSave
Abstract

Abstract

En 中文
Pancreatic β-cell failure in diabetes is driven by chronic inflammation, yet how metabolic stress determines pro-inflammatory cell fate remains unclear. Here, we report that sublethal oxidative stress activates a β-cell-enriched epigenetic switch that licenses intrinsic inflammation. We identify a β-cell-enriched vulnerability wherein oxidative stress disrupts mitochondrial NAD⁺/acetyl-CoA flux, skewing the nuclear equilibrium between the deacetylase SIRT1 and acetyltransferases p300/CBP. This metabolic-epigenetic imbalance induces hyperacetylation of the alarmin HMGB1 at K96/K128—a modification remarkably prominent in β-cells compared to macrophages or hepatocytes. This site-specific acetylation acts as a molecular gate for HMGB1 nucleocytoplasmic translocation, triggering TLR/RAGE-mediated inflammation. Simultaneously, we discover that oxidative stress co-opts the mechanosensitive Hippo pathway, which sequesters YAP to transcriptionally repress SIRT1, thereby forming a functionally integrated signalling axis that exacerbates HMGB1 acetylation. Therapeutically, reconstruction of mitochondrial retrograde signalling via NAD⁺ supplementation (e.g., NMN) or dual inhibition of mitochondrial ROS and Hippo signalling restored acetylation homeostasis and suppressed HMGB1-driven inflammation. Notably, this combinatorial targeting demonstrates greater efficacy than either intervention alone (~73% reduction in inflammatory markers) in mitigating β-cell failure across murine and porcine models. Further validation in non-human primates was specifically implemented to address the unique translational gap of rodent models and available human single-cell datasets: by leveraging human-like islet anatomy and systemic physiological microenvironment, we verified the pharmacodynamic robustness and in vivo feasibility of this strategy in a clinically recapitulative large-animal setting, rather than merely confirming cross-species molecular concordance. Our work unveils a stress-responsive signalling network in which metabolic and mechanical cues are integrated at the epigenetic level to control the inflammatory fate of β-cells, providing a new mechanistic framework for diabetic pathogenesis and a rationale for combinatorial therapeutic intervention.

Journal

Cell Death and Differentiation cover
Cell Death and Differentiation
IF:
15.4
Papers:
5.6K
Citations:
3.3W

Organization

C
Chongqing Medical University
Scholars:
5.9K
Papers: 1.5K
Citations: 2.8W
U
university of missouri
Scholars:
1.1K
Papers: 524
Citations: 0
S
sichuan university
Scholars:
11.5W
Papers: 7.6W
Citations: 100
Cited Papers

Cited Papers

Citing Papers

Citing Papers