Exploring the molecular mechanism of danshensu targeting PANoptosis therapy for stroke based on multi omics and

Yuhan Su1, Haifeng Huang1, Hui Qin1

  • 1Department of Neurology, Guangxi Intermational Zhuang Medicine Hospital Affliated to Guangxi University of Chinese Medicine, Nanning City, Guangxi Zhuang Autonomous Region, China.

Abstract

Insights

This study identifies 10 core PANoptosis genes involved in stroke and shows Danshensu, a natural compound, can regulate these pathways. Danshensu shows promise for treating stroke by modulating inflammation and cell death.

Area of Science:

  • Neuroscience
  • Immunology
  • Cell Biology

Background:

  • Stroke-induced nerve damage is worsened by inflammation and cell death.
  • PANoptosis, a mixed cell death form, is implicated but its role in stroke is unclear.

Purpose of the Study:

  • Identify core PANoptosis genes in stroke using multi-omics analysis.
  • Investigate the mechanism of Danshensu, a salvianolic acid component, in stroke.

Main Methods:

  • Combined transcriptome datasets (GSE16561, GSE22255) for differential expression, WGCNA, and immune infiltration.
  • Analyzed single-cell data (GSE174574) for cell heterogeneity and communication.
  • Used network pharmacology and molecular docking to predict Danshensu targets.
  • Validated findings using a BV-2 microglial OGD/R model and ZBP1 siRNA.

Main Results:

  • Identified 10 core PANoptosis genes (ZBP1, CASP8, TNF, SIRT1, MAPK3, MAPK1, TLR4, NLRP3, MLKL, HMGB1) enriched in necroptosis and TNF signaling.
  • Found significant neutrophil and M0 macrophage infiltration in stroke; macrophages/microglia are key in TNF/MIF signaling.
  • Network pharmacology identified 7 Danshensu targets (TLR4, NLRP3, SIRT1, MAPK1, MAPK3, TNF, CASP8); molecular docking confirmed binding to TNF, MAPK1, NLRP3.
  • In vitro studies showed Danshensu inhibits OGD/R-induced ZBP1, CASP8, NLRP3, MLKL, and reverses SIRT1 downregulation and TLR4/ERK phosphorylation.

Conclusions:

  • Danshensu may modulate stroke-induced inflammation and cell death by regulating PANoptosis signaling.
  • Provides potential therapeutic targets and a theoretical basis for stroke treatment.
  • Further validation with specific activation markers is recommended.

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