Cannabinoid Receptor 2-Centric Molecular Feedback Loop Drives Necroptosis in Diabetic Heart Injuries

Pan Gao1, Mengying Cao1, Xueli Jiang1

  • 1Shanghai Institute of Cardiovascular Diseases, Zhongshan Hospital and Institutes of Biomedical Sciences, Fudan University, China (P.G., M.C., X.J., X.W., G.Z., C.Y., J.G., Y.Z.).

Circulation
|November 30, 2022
PubMed
Abstract

Insights

Necroptosis, a form of programmed cell death, drives diabetic heart dysfunction after apoptosis. Targeting Cannabinoid Receptor 2 (CB2R) offers a promising therapeutic strategy for this condition.

Area of Science:

  • Cardiovascular Biology
  • Metabolic Disease Research
  • Cell Death Mechanisms

Background:

  • Diabetic heart dysfunction is a significant complication of diabetes, primarily driven by cell death.
  • The precise timing and sequence of cell death pathways in diabetic hearts remain poorly understood.
  • Identifying specific cell death types and therapeutic intervention points is crucial for treating diabetic cardiomyopathy.

Purpose of the Study:

  • To identify the specific cell death pathway responsible for diabetic heart dysfunction.
  • To elucidate the molecular mechanisms regulating this cell death pathway.
  • To propose a novel therapeutic strategy targeting this pathway for diabetic heart disease.

Main Methods:

  • Utilized type 1 and type 2 diabetic mouse models (db/db, HFD/STZ, STZ-induced).
  • Assessed apoptosis and necroptosis in diabetic mouse hearts across different ages.
  • Employed G protein-coupled receptor drug libraries, pharmacological/genetic modulation, stable cell lines, and custom phosphorylation antibodies for mechanistic studies.

Main Results:

  • Necroptosis was activated post-apoptosis in later stages of diabetes and directly caused cardiac dysfunction.
  • Cannabinoid Receptor 2 (CB2R) was identified as a key regulator of necroptosis.
  • CB2R normally represses necroptosis via BACH2; high glucose disrupts this by promoting CB2R internalization and subsequent MLKL-mediated phosphorylation and degradation of CB2R, creating a feedback loop.

Conclusions:

  • A novel molecular regulatory loop involving CB2R and BACH2 controls necroptosis in the diabetic heart.
  • CB2R activation represses necroptosis, while MLKL activation leads to CB2R phosphorylation and degradation, forming a negative feedback mechanism.
  • Targeting the CB2R-centered necroptosis pathway presents a promising therapeutic strategy for diabetic heart dysfunction.

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