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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.).
Background:
Diabetic heart dysfunction is a common complication of diabetes. Cell death is a core event that leads to diabetic heart dysfunction. However, the time sequence of cell death pathways and the precise time to intervene of particular cell death type remain largely unknown in the diabetic heart. This study aims to identify the particular cell death type that is responsible for diabetic heart dysfunction and to propose a promising therapeutic strategy by intervening in the cell death pathway.
Methods:
Type 2 diabetes models were established using db/db leptin receptor-deficient mice and high-fat diet/streptozotocin-induced mice. The type 1 diabetes model was established in streptozotocin-induced mice. Apoptosis and programmed cell necrosis (necroptosis) were detected in diabetic mouse hearts at different ages. G protein-coupled receptor-targeted drug library was searched to identify potential receptors regulating the key cell death pathway. Pharmacological and genetic approaches that modulate the expression of targets were used. Stable cell lines and a homemade phosphorylation antibody were prepared to conduct mechanistic studies.
Results:
Necroptosis was activated after apoptosis at later stages of diabetes and was functionally responsible for cardiac dysfunction. Cannabinoid receptor 2 (CB2R) was a key regulator of necroptosis. Mechanically, during normal glucose levels, CB2R inhibited S6 kinase-mediated phosphorylation of BACH2 at serine 520, thereby leading to BACH2 translocation to the nucleus, where BACH2 transcriptionally repressed the necroptosis genes Rip1, Rip3, and Mlkl. Under hyperglycemic conditions, high glucose induced CB2R internalization in a β-arrestin 2-dependent manner; thereafter, MLKL (mixed lineage kinase domain-like), but not receptor-interacting protein kinase 1 or 3, phosphorylated CB2R at serine 352 and promoted CB2R degradation by ubiquitin modification. Cardiac re-expression of CB2R rescued diabetes-induced cardiomyocyte necroptosis and heart dysfunction, whereas cardiac knockout of Bach2 diminished CB2R-mediated beneficial effects. In human diabetic hearts, both CB2R and BACH2 were negatively associated with diabetes-induced myocardial injuries.
Conclusions:
CB2R transcriptionally repressed necroptosis through interaction with BACH2; in turn, MLKL formed a negative feedback to phosphorylate CB2R. Our study provides the integrative view of a novel molecular mechanism loop for regulation of necroptosis centered by CB2R, which represents a promising alternative strategy for controlling diabetic heart dysfunction.
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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