Hyperglycemia‐induced Sirt3 downregulation increases microglial aerobic glycolysis and inflammation in diabetic neuropathic pain pathogenesis

Author:

Li Yongchang1,Kong Erliang12,Ding Ruifeng1,Chu Ruitong1,Lu Jinfang1,Deng Mengqiu1,Hua Tong1,Yang Mei1,Wang Haowei1,Chen Dashuang1,Song Honghao1,Wei Huawei1,Zhang Ping3,Han Chaofeng45,Yuan Hongbin1ORCID

Affiliation:

1. Department of Anesthesiology, Shanghai Changzheng Hospital Second Affiliated Hospital of Naval Medical University Shanghai China

2. Department of Anesthesiology The 988th Hospital of Joint Logistic Support Force of Chinese People's Liberation Army Zhengzhou Henan China

3. Department of Neurology, Naval Medical Center of PLA Naval Medical University Shanghai China

4. Department of Histology and Embryology, Shanghai Key Laboratory of Cell Engineering Naval Medical University Shanghai China

5. National Key Laboratory of Immunity & Inflammation Naval Medical University Shanghai China

Abstract

AbstractBackgroundHyperglycemia‐induced neuroinflammation significantly contributes to diabetic neuropathic pain (DNP), but the underlying mechanisms remain unclear.ObjectiveTo investigate the role of Sirt3, a mitochondrial deacetylase, in hyperglycemia‐induced neuroinflammation and DNP and to explore potential therapeutic interventions.Method and ResultsHere, we found that Sirt3 was downregulated in spinal dorsal horn (SDH) of diabetic mice by RNA‐sequencing, which was further confirmed at the mRNA and protein level. Sirt3 deficiency exacerbated hyperglycemia‐induced neuroinflammation and DNP by enhancing microglial aerobic glycolysis in vivo and in vitro. Overexpression of Sirt3 in microglia alleviated inflammation by reducing aerobic glycolysis. Mechanistically, high‐glucose stimulation activated Akt, which phosphorylates and inactivates FoxO1. The inactivation of FoxO1 diminished the transcription of Sirt3. Besides that, we also found that hyperglycemia induced Sirt3 degradation via the mitophagy‐lysosomal pathway. Blocking Akt activation by GSK69093 or metformin rescued the degradation of Sirt3 protein and transcription inhibition of Sirt3 mRNA, which substantially diminished hyperglycemia‐induced inflammation. Metformin in vivo treatment alleviated neuroinflammation and diabetic neuropathic pain by rescuing hyperglycemia‐induced Sirt3 downregulation.ConclusionHyperglycemia induces metabolic reprogramming and inflammatory activation in microglia through the regulation of Sirt3 transcription and degradation. This novel mechanism identifies Sirt3 as a potential drug target for treating DNP.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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