BRSK2 in pancreatic β cells promotes hyperinsulinemia-coupled insulin resistance and its genetic variants are associated with human type 2 diabetes

Author:

Xu Rufeng1,Wang Kaiyuan1,Yao Zhengjian1,Zhang Yan1,Jin Li23,Pang Jing1,Zhou Yuncai1,Wang Kai1,Liu Dechen1,Zhang Yaqin1,Sun Peng1,Wang Fuqiang4,Chang Xiaoai1,Liu Tengli5,Wang Shusen5,Zhang Yalin6,Lin Shuyong6,Hu Cheng23,Zhu Yunxia1,Han Xiao1

Affiliation:

1. Key Laboratory of Human Functional Genomics of Jiangsu Province, Nanjing Medical University , Nanjing 211166 , China

2. Institute for Metabolic Disease, Fengxian Central Hospital Affiliated to Southern Medical University , Shanghai 201499 , China

3. Shanghai Diabetes Institute, Shanghai Key Laboratory of Diabetes Mellitus, Shanghai Clinical Center for Diabetes, Shanghai Sixth People's Hospital Affiliated to Shanghai Jiao Tong University School of Medicine , Shanghai 200233 , China

4. Analysis Center, Nanjing Medical University , Nanjing 210029 , China

5. Organ Transplant Center, Tianjin First Central Hospital, Nankai University , Tianjin 300192 , China

6. State Key Laboratory for Cellular Stress Biology, School of Life Sciences, Xiamen University , Xiamen 361102 , China

Abstract

Abstract Brain-specific serine/threonine-protein kinase 2 (BRSK2) plays critical roles in insulin secretion and β-cell biology. However, whether BRSK2 is associated with human type 2 diabetes mellitus (T2DM) has not been determined. Here, we report that BRSK2 genetic variants are closely related to worsening glucose metabolism due to hyperinsulinemia and insulin resistance in the Chinese population. BRSK2 protein levels are significantly elevated in β cells from T2DM patients and high-fat diet (HFD)-fed mice due to enhanced protein stability. Mice with inducible β-cell-specific Brsk2 knockout (βKO) exhibit normal metabolism with a high potential for insulin secretion under chow-diet conditions. Moreover, βKO mice are protected from HFD-induced hyperinsulinemia, obesity, insulin resistance, and glucose intolerance. Conversely, gain-of-function BRSK2 in mature β cells reversibly triggers hyperglycemia due to β-cell hypersecretion-coupled insulin resistance. Mechanistically, BRSK2 senses lipid signals and induces basal insulin secretion in a kinase-dependent manner. The enhanced basal insulin secretion drives insulin resistance and β-cell exhaustion and thus the onset of T2DM in mice fed an HFD or with gain-of-function BRSK2 in β cells. These findings reveal that BRSK2 links hyperinsulinemia to systematic insulin resistance via interplay between β cells and insulin-sensitive tissues in the populations carrying human genetic variants or under nutrient-overload conditions.

Funder

National Natural Science Foundation of China

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Genetics,Molecular Biology,General Medicine

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