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April 19, 2026Chemistry & Biodiversity0 citations

A Study on the Mechanism of Action of Hyperoside in Treating Type 2 Diabetes: Integrating Metabolomics, Network Pharmacology, Molecular Docking, and Experimental Validation

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YZYueqi ZhaoYYYue YangYLYing Li

Key Points

  • To investigate how hyperoside treats type 2 diabetes by exploring its underlying mechanisms and targets.
  • Created type 2 diabetes mouse models using a high-fat/high-sugar diet and streptozotocin injection
  • Measured body weight, blood glucose, and biochemical indicators
  • Utilized metabolomics, network pharmacology, and molecular docking to identify therapeutic targets
  • Conducted pharmacodynamic studies to affirm hypoglycemic effects
  • Screened 161 core targets and verified binding affinities via molecular docking.
  • Identified 15 biomarkers related to diabetes through metabolomics
  • Confirmed hyperoside's hypoglycemic and symptom-improving effects
  • Highlighted specific metabolic pathways, such as bile acid biosynthesis and glycerophospholipid metabolism
  • Found key targets like SRC, PTPN11, and EGFR through network pharmacology

Abstract

ABSTRACT Type 2 diabetes mellitus (T2DM), a chronic metabolic disorder caused by genetic and environmental factors, is characterized by insulin resistance and impaired pancreatic β‐cell function. Hyperoside, a natural flavonol glycoside, exerts anti‐T2DM effects, but its mechanism remains unclear. This study established T2DM mouse models via a high‐fat/high‐sugar diet and streptozotocin injection, detecting body weight, blood glucose, and biochemical indicators. Combined metabolomics, network pharmacology, in‐vitro experiments, and molecular docking were used to explore its therapeutic targets and mechanisms. Pharmacodynamic studies confirmed hyperoside's hypoglycemic and symptom‐improving effects. Nontargeted metabolomics identified 15 diabetes‐related biomarkers, revealing hyperoside may regulate primary bile acid biosynthesis and glycerophospholipid metabolism via specific targets. Network pharmacology screened 161 core targets, with SRC, PTPN11, and EGFR as key ones via KEGG enrichment analysis. Molecular docking verified hyperoside's favorable binding affinity to these targets. In conclusion, hyperoside has a good therapeutic effect on T2DM, possibly by regulating the above metabolic pathways.

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Cite This Study

Zhao et al. (2026) studied this question.

synapsesocial.com/papers/69e473bd010ef96374d8f891https://doi.org/10.1002/cbdv.71188
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