Related Experiment Video
Updated: Apr 2, 2026

Osmotic Minipump Implantation for Increasing Glucose Concentration in Mouse Cerebrospinal Fluid
Published on: April 7, 2023
Astrocytic GSTM2-STAT3 interaction ameliorates the diabetes associated cognitive dysfunction via targeting
Wenqiang Liu1, Yufei Wang2, Yunshuang Zhao2
1Department of Physiology and Pathophysiology, School of Basic Medical Sciences, Xi'an Jiaotong University Health Science Center, Xi'an, Shaanxi, 710061, PR China; Department of Anatomy, School of Basic Medicine, Jinzhou Medical University, Jinzhou, 121001, PR China; Liaoning Key Laboratory of Diabetic Cognitive and Perceptive Dysfunction, Jinzhou Medical University, Jinzhou, 121001, PR China.
Abstract:
Diabetes associated cognitive dysfunction (DACD) present a substantial challenge to the management of diabetic patient. The pathogenesis of DACD is intricately associated with mitochondrial defects and oxidative stress. However, the exact molecular pathways implicated have not been comprehensively elucidated. This study aimed to characterize the mechanisms by which dysregulation of glutathione S transferase mu2 (GSTM2) contributes to the pathogenesis of DACD. Astrocytic GSTM2 expression is markedly downregulated in DACD mice hippocampus employed proteomic sequencing. Hippocampal astrocytes specific GSTM2 overexpression alleviated cognitive dysfunction accompanied by inhibiting mitochondrial defects and oxidative stress in db/db mice. Conversely, astrocytic GSTM2 deficiency aggravated these dysfunctions. Immunoprecipitation-mass spectrometry and surface plasmon resonance were utilized to identify the GSTM2 - interacting proteins. The GSTM2 directly interacted with STAT3 and suppressed the phosphorylation of STAT3, thereby downregulating Drp1 signals and ultimately exerting a protective effect against mitochondrial defects and oxidative stress. Pharmacological intervention of STAT3 dysregulated mitochondrial function which influence the protective benefits conferred by GSTM2. Finally, we found that Icariin, which was explored by molecular docking and virtual screening from large-scale compound libraries, could activate the GSTM2/STAT3 pathway to improve cognitive impairment in DACD mice. Conclusively, the down regulation of GSTM2 impairs mitochondrial function and oxidative stress via the STAT3-Drp1 signaling pathway, further exacerbating DACD pathology. This discovery indicates that GSTM2 may serve as a promising and novel therapeutic target for the prevention and treatment of DACD.
Insights
Glutathione S transferase mu2 (GSTM2) downregulation worsens cognitive decline in diabetes by impairing mitochondrial function via the STAT3-Drp1 pathway. Restoring GSTM2 shows therapeutic potential for diabetes-associated cognitive dysfunction.
Area of Science:
- Neuroscience
- Biochemistry
- Endocrinology
Background:
- Diabetes-associated cognitive dysfunction (DACD) poses a significant clinical challenge.
- Mitochondrial dysfunction and oxidative stress are key contributors to DACD pathogenesis.
- The precise molecular mechanisms underlying DACD remain incompletely understood.
Purpose of the Study:
- To investigate the role of glutathione S transferase mu2 (GSTM2) in DACD pathogenesis.
- To elucidate the molecular pathways through which GSTM2 influences cognitive function in diabetes.
- To identify potential therapeutic targets for DACD.
Main Methods:
- Proteomic sequencing to analyze GSTM2 expression in DACD mouse models.
- Genetic manipulation (overexpression and deficiency) of astrocytic GSTM2.
- Immunoprecipitation-mass spectrometry and surface plasmon resonance to identify GSTM2 interacting proteins.
- Molecular docking and virtual screening to identify potential therapeutic compounds.
Main Results:
- Astrocytic GSTM2 expression was significantly downregulated in DACD mice.
- GSTM2 overexpression ameliorated cognitive deficits, mitochondrial dysfunction, and oxidative stress in diabetic mice.
- GSTM2 directly interacts with STAT3, suppressing its phosphorylation and downregulating Drp1 signaling.
- Icariin activated the GSTM2/STAT3 pathway, improving cognitive impairment in DACD mice.
Conclusions:
- Downregulation of GSTM2 exacerbates DACD by impairing mitochondrial function and increasing oxidative stress through the STAT3-Drp1 signaling pathway.
- GSTM2 acts as a crucial protective factor against DACD.
- GSTM2 represents a potential novel therapeutic target for DACD treatment.

