Cordycepin Modulates Microglial M2 Polarization Coupled with Mitochondrial Metabolic Reprogramming by Targeting HKII and PDK2

Author:

Zhong Xin1ORCID,Gong Shiqiang12,Meng Linghui3,Yao Weifan12,Du Ke1,Jiao Linchi1,Ma Guowei1,Liang Jingwei1,Wei Binbin1,Jin Xin1,Tong Junhui1,Dong Jianru1,Liu Mengyu1,Gao Menglin1,Jia Huachao1,Jiang Wenjuan4,Yu Zhihua5,Wang Yanzhe4,Sun Xiaohong6,Wei Minjie12,Liu Mingyan1ORCID

Affiliation:

1. School of Pharmacy China Medical University Shenyang Liaoning 110122 China

2. Liaoning Medical Diagnosis and Treatment Center Shenyang Liaoning 11067 China

3. He University Shenyang Liaoning 110163 China

4. The First Affiliated Hospital of China Medical University Shenyang Liaoning 110002 China

5. The Fourth Affiliated Hospital of China Medical University Shenyang Liaoning 110165 China

6. Science Experiment Center China Medical University Shenyang Liaoning 110122 China

Abstract

AbstractThe microenvironment mediated by the microglia (MG) M1/M2 phenotypic switch plays a decisive role in the neuronal fate and cognitive function of Alzheimer's disease (AD). However, the impact of metabolic reprogramming on microglial polarization and its underlying mechanism remains elusive. This study reveals that cordycepin improved cognitive function and memory in APP/PS1 mice, as well as attenuated neuronal damage by triggering MG‐M2 polarization and metabolic reprogramming characterized by increased OXPHOS and glycolysis, rather than directly protecting neurons. Simultaneously, cordycepin partially alleviates mitochondrial damage in microglia induced by inhibitors of OXPHOS and glycolysis, further promoting MG‐M2 transformation and increasing neuronal survival. Through confirmation of cordycepin distribution in the microglial mitochondria via mitochondrial isolation followed by HPLC‐MS/MS techniques, HKII and PDK2 are further identified as potential targets of cordycepin. By investigating the effects of HKII and PDK2 inhibitors, the mechanism through which cordycepin targeted HKII to elevate ECAR levels in the glycolysis pathway while targeting PDK2 to enhance OCR levels in PDH‐mediated OXPHOS pathway, thereby inducing MG‐M2 polarization, promoting neuronal survival and exerting an anti‐AD role is elucidated.

Funder

Major Basic Research Project of the Natural Science Foundation of the Jiangsu Higher Education Institutions

Key Research and Development Program of Liaoning Province

Doctoral Start-up Foundation of Liaoning Province

National Natural Science Foundation of China

Publisher

Wiley

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