DOI: 10.1126/sciadv.aed5600 ISSN: 2375-2548

Skeletal muscle H3K18 lactylation inhibits hepatic gluconeogenesis through IL-6 mediated interorgan communication

Yu Wang, Feijie Wang, Yujie Sun, Yao Gu, Lamei Xue, Mingcong Fan, Haifeng Qian, Yucheng Wang, Hao Ying, Jun Du, Liang Chen, Li Wang, Yan Li

The mechanisms underlying the dynamic interplay between skeletal muscle and systemic glucose homeostasis in type 2 diabetes remain elusive. Increased lactate level has long been noticed in diabetes, however, whether the elevated lactate is a cause or consequence of impaired glucose metabolism is unclear. Here, we found that elevated circulating lactate levels originated from skeletal muscle with high expression of lactate dehydrogenase A ( Ldha ), and both metrics correlated strongly with hyperglycemia in both hyperglycemic mouse models and human subjects. Paradoxically, ablation of Ldha in skeletal muscle (LDHA mKO) disrupted whole-body glucose homeostasis, primarily via augmented hepatic gluconeogenesis. Mechanistically, lactate deficiency in muscle epigenetically activated NF-κB signaling through H3K18 lactylation (H3K18la)-mediated transcriptional control of IκBα, which then promoted the transcription of IL-6, thereby reshaping hepatic gluconeogenesis. Lastly, we showed that loss of Ldha in skeletal muscle enhanced hepatic gluconeogenesis and aggravated hyperglycemia in high-fat high-sucrose diet-fed mice. Collectively, our study provides evidence that in glucose intoxication contexts, skeletal muscle-derived lactate acts as the signal to provide negative feedback for hepatic gluconeogenesis, which induces skeletal muscle H3K18la acting as a negative regulator of IL-6 to sustain suppression of hepatic gluconeogenesis, while dysregulation of this network contributes to unrestrained gluconeogenesis in diabetes.

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