miR-29a-3p/THBS2 Axis Regulates PAH-Induced Cardiac Fibrosis.
Chih-Hsin HsuI-Fan LiuHsuan-Fu KuoChia-Yang LiWei-Shiung LianChia-Yuan ChangYung-Hsiang ChenPeter Wei-Lun LiuChi-Yu LuYu-Ru LiuTzu-Chieh LinTsung-Ying LeeChi-Yuan HuangChong-Chao HsiehPo-Len LiuPublished in: International journal of molecular sciences (2021)
Pulmonary artery hypertension (PAH) pathology involves extracellular matrix (ECM) remodeling in cardiac tissues, thus promoting cardiac fibrosis progression. miR-29a-3p reportedly inhibits lung progression and liver fibrosis by regulating ECM protein expression; however, its role in PAH-induced fibrosis remains unclear. In this study, we aimed to investigate the role of miR-29a-3p in cardiac fibrosis progression in PAH and its influence on ECM protein thrombospondin-2 (THBS2) expression. The diagnostic and prognostic values of miR-29a-3p and THBS2 in PAH were evaluated. The expressions and effects of miR-29a-3p and THBS2 were assessed in cell culture, monocrotaline-induced PAH mouse model, and patients with PAH. The levels of circulating miR-29a-3p and THBS2 in patients and mice with PAH decreased and increased, respectively. miR-29a-3p directly targets THBS2 and regulates THBS2 expression via a direct anti-fibrotic effect on PAH-induced cardiac fibrosis. The circulating levels of miR-29a-3p and THBS2 were correlated with PAH diagnostic parameters, suggesting their independent prognostic value. miR-29a-3p targeted THBS2 expression via a direct anti-fibrotic effect on PAH-induced cardiac fibrosis, indicating miR-29a-3p acts as a messenger with promising therapeutic effects.
Keyphrases
- polycyclic aromatic hydrocarbons
- liver fibrosis
- extracellular matrix
- high glucose
- left ventricular
- diabetic rats
- pulmonary artery
- poor prognosis
- pulmonary arterial hypertension
- mouse model
- coronary artery
- blood pressure
- end stage renal disease
- adipose tissue
- systemic sclerosis
- gene expression
- type diabetes
- endothelial cells
- chronic kidney disease
- binding protein
- long non coding rna
- idiopathic pulmonary fibrosis
- patient reported outcomes
- skeletal muscle
- small molecule
- peritoneal dialysis
- high fat diet induced