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Updated: Nov 11, 2025

Deacetylation Assays to Unravel the Interplay between Sirtuins SIRT2 and Specific Protein-substrates
Published on: February 27, 2016
SIRT2 ablation inhibits glucose-stimulated insulin secretion through decreasing glycolytic flux
Feiye Zhou1, Linlin Zhang1, Kecheng Zhu1
1Department of Endocrine and Metabolic Diseases/ Shanghai institute of Endocrine and Metabolic Diseases, Ruijin Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai 200025, China.
Abstract:
Rationale: Sirtuins are NAD+-dependent protein deacylases known to have protective effects against age-related diseases such as diabetes, cancer, and neurodegenerative disease. SIRT2 is the only primarily cytoplasmic isoform and its overall role in glucose homeostasis remains uncertain. Methods: SIRT2-knockout (KO) rats were constructed to evaluate the role of SIRT2 in glucose homeostasis. The effect of SIRT2 on β-cell function was detected by investigating the morphology, insulin secretion, and metabolomic state of islets. The deacetylation and stabilization of GKRP in β-cells by SIRT2 were determined by western blot, adenoviral infection, and immunoprecipitation. Results: SIRT2-KO rats exhibited impaired glucose tolerance and glucose-stimulated insulin secretion (GSIS), without change in insulin sensitivity. SIRT2 deficiency or inhibition by AGK2 decreased GSIS in isolated rat islets, with lowered oxygen consumption rate. Adenovirus-mediated overexpression of SIRT2 enhanced insulin secretion from rat islets. Metabolomics analysis revealed a decrease in metabolites of glycolysis and tricarboxylic acid cycle in SIRT2-KO islets compared with control islets. Our study further demonstrated that glucokinase regulatory protein (GKRP), an endogenous inhibitor of glucokinase (GCK), was expressed in rat islets. SIRT2 overexpression deacetylated GKRP in INS-1 β-cells. SIRT2 knockout or inhibition elevated GKRP protein stability in islet β-cells, leading to an increase in the interaction of GKRP and GCK. On the contrary, SIRT2 inhibition promoted the protein degradation of ALDOA, a glycolytic enzyme. Conclusions: SIRT2 ablation inhibits GSIS through blocking GKRP protein degradation and promoting ALDOA protein degradation, resulting in a decrease in glycolytic flux.
Insights
SIRT2 deficiency impairs glucose tolerance and insulin secretion by affecting key proteins involved in glycolysis and insulin regulation in pancreatic beta cells.
Area of Science:
- Biochemistry
- Endocrinology
- Metabolism
Background:
- Sirtuins (NAD+-dependent deacetylases) are implicated in age-related diseases.
- SIRT2, a cytoplasmic sirtuin, has an unclear role in glucose homeostasis.
- Understanding SIRT2's function is crucial for metabolic disease research.
Purpose of the Study:
- To investigate the role of SIRT2 in glucose homeostasis and pancreatic beta-cell function.
- To elucidate the molecular mechanisms by which SIRT2 influences insulin secretion.
Main Methods:
- Generation of SIRT2-knockout (KO) rats.
- Assessment of glucose tolerance and insulin sensitivity.
- Analysis of islet morphology, insulin secretion, and metabolomics.
- Investigation of GKRP and ALDOA protein regulation via western blot, immunoprecipitation, and adenoviral methods.
Main Results:
- SIRT2-KO rats showed impaired glucose tolerance and glucose-stimulated insulin secretion (GSIS).
- SIRT2 deficiency reduced GSIS and oxygen consumption in isolated islets.
- SIRT2 overexpression enhanced insulin secretion.
- SIRT2 regulates GSIS by modulating GKRP and ALDOA protein stability, impacting glycolytic flux.
Conclusions:
- SIRT2 ablation inhibits GSIS by disrupting GKRP and ALDOA protein turnover.
- This leads to reduced glycolytic flux in pancreatic beta cells.
- SIRT2 plays a critical role in maintaining normal glucose homeostasis.
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