Tongkai Ge, Linbin Hua, Dou Fang, Zhaolong Zhang, Shanwen Pang, Huanlei Huang
Myocardial fibrosis secondary to pulmonary hypertension-induced right heart failure remains a challenging clinical condition with few effective therapeutic options. Gut microbiota-derived metabolites have emerged as critical regulators of cardiovascular homeostasis; however, the role and underlying mechanisms by which butyrate ameliorates right ventricular myocardial fibrosis remain undefined. Here, we established a monocrotaline (MCT)-induced rat model of right heart failure and performed in vitro macrophage-cardiac fibroblast co-culture assays. We demonstrated that butyrate-producing bacteria were significantly depleted in model rats. Sodium butyrate suppressed macrophage M1 polarization, reduced pro-inflammatory cytokine secretion, and inhibited cardiac fibroblast activation. Mechanistically, butyrate downregulated the expression of the chemokine CXCL3 and blocked the JAK2/STAT3 signaling pathway, thereby alleviating myocardial fibrosis. In vivo, butyrate supplementation ameliorated myocardial structural damage and collagen deposition. Collectively, our findings reveal that butyrate attenuates right heart failure-associated myocardial fibrosis by inhibiting CXCL3-mediated macrophage M1 polarization via the JAK2/STAT3 pathway, highlighting a novel therapeutic target for pathological cardiac remodeling.