A.I. Virtanen Institute for Molecular Sciences, University of Eastern Finland, 70211 Kuopio, Finland.
Institute of Clinical Medicine, University of Eastern Finland, 70029 Kuopio, Finland.
Biomolecules. 2021 Mar 17;11(3):452. doi: 10.3390/biom11030452.
Molecular mechanisms involved in cardiac remodelling are not fully understood. To study the role of vascular endothelial growth factor receptor 1 (VEGFR-1) signaling in left ventricular hypertrophy (LVH) and heart failure, we used a mouse model lacking the intracellular VEGFR-1 tyrosine kinase domain (VEGFR-1 TK) and induced pressure overload with angiotensin II infusion. Using echocardiography (ECG) and immunohistochemistry, we evaluated pathological changes in the heart during pressure overload and measured the corresponding alterations in expression level and phosphorylation of interesting targets by deep RNA sequencing and Western blot, respectively. By day 6 of pressure overload, control mice developed significant LVH whereas VEGFR-1 TK mice displayed a complete absence of LVH, which correlated with significantly increased mortality. At a later time point, the cardiac dysfunction led to increased ANP and BNP levels, atrial dilatation and prolongation of the QRSp duration as well as increased cardiomyocyte area. Immunohistochemical analyses showed no alterations in fibrosis or angiogenesis in VEGFR-1 TK mice. Mechanistically, the ablation of VEGFR-1 signaling led to significantly upregulated mTOR and downregulated PKCα phosphorylation in the myocardium. Our results show that VEGFR-1 signaling regulates the early cardiac remodelling during the compensatory phase of pressure overload and increases the risk of sudden death.
分子机制涉及心脏重构尚未完全了解。为了研究血管内皮生长因子受体 1 (VEGFR-1) 信号在左心室肥厚 (LVH) 和心力衰竭中的作用,我们使用缺乏细胞内 VEGFR-1 酪氨酸激酶结构域 (VEGFR-1 TK) 的小鼠模型,并通过血管紧张素 II 输注诱导压力超负荷。使用超声心动图 (ECG) 和免疫组织化学,我们评估了压力超负荷期间心脏的病理变化,并通过深度 RNA 测序和 Western blot 分别测量了相应的有趣靶点的表达水平和磷酸化变化。在压力超负荷的第 6 天,对照小鼠发生了明显的 LVH,而 VEGFR-1 TK 小鼠则完全没有 LVH,这与死亡率显著增加相关。在稍后的时间点,心脏功能障碍导致 ANP 和 BNP 水平升高、心房扩张、QRSp 持续时间延长以及心肌细胞面积增加。免疫组织化学分析显示,VEGFR-1 TK 小鼠的纤维化或血管生成没有改变。从机制上讲,VEGFR-1 信号的消融导致心肌中 mTOR 的显著上调和 PKCα 磷酸化的下调。我们的结果表明,VEGFR-1 信号调节压力超负荷代偿期的早期心脏重构,并增加猝死的风险。