Bupha-Intr Tepmanas, Haizlip Kaylan M, Janssen Paul M L
Dept. of Physiology and Cell Biology, 304 Hamilton Hall, 1645 Neil Ave., The Ohio State Univ., Columbus, OH 43210-1218, USA.
Am J Physiol Heart Circ Physiol. 2009 Mar;296(3):H806-14. doi: 10.1152/ajpheart.01058.2008. Epub 2009 Jan 9.
Upon remodeling of the ventricle after a provoking stimulus, such as hypertension, connections between adjacent myocytes may need to be "reformatted" to preserve a synchronization of excitation of the remodeling heart. In the mammalian heart, the protein connexin forms the gap junctions that allow electrical and chemical signaling communication between neighboring cells. We aim to elucidate whether mechanical load, in isolation, potentially changes the expression of connexin 43 (Cx43), the major isoform of the connexin family in the ventricle, and its phosphorylation. Cx43 expression levels and contractile function of multicellular rabbit cardiac preparations were assessed in a newly developed in vitro system that allows for the study of the transition of healthy multicellular rabbit myocardium to hypertrophied myocardium. We found that in mechanically loaded cardiac trabeculae, Cx43 levels remained stable for about 12 h and then rapidly declined. Phosphorylation at Ser368 declined much faster, being almost absent after 2 h of high-load conditions. No-load conditions did not affect Cx43 levels, nor did phosphorylation at Ser368. The downregulation of Cx43 under mechanical load did not correspond with the contractile changes that were observed. Furthermore, blocking paracrine activity of the muscle could only partially prevent the downregulation of Cx43. Additionally, no effect of mechanical loading on the expression of N-cadherin and zonula occludens-1 was observed, indicating a specificity of the connexin response. High mechanical load induced a rapid loss of Cx43 phosphorylation, followed by a decrease in Cx43 protein levels. Paracrine factors are partly responsible for the underlying mechanism of action, whereas no direct correlation to contractile ability was observed.
在诸如高血压等激发刺激后心室重塑时,相邻心肌细胞之间的连接可能需要“重新格式化”,以维持重塑心脏兴奋的同步性。在哺乳动物心脏中,连接蛋白形成间隙连接,使相邻细胞之间能够进行电信号和化学信号通讯。我们旨在阐明单纯机械负荷是否可能改变连接蛋白43(Cx43)的表达及其磷酸化情况,Cx43是心室中连接蛋白家族的主要亚型。在一个新开发的体外系统中评估了多细胞兔心脏制剂的Cx43表达水平和收缩功能,该系统允许研究健康的多细胞兔心肌向肥厚心肌的转变。我们发现,在机械负荷的心脏小梁中,Cx43水平在约12小时内保持稳定,然后迅速下降。Ser368位点的磷酸化下降得更快,在高负荷条件下2小时后几乎消失。无负荷条件既不影响Cx43水平,也不影响Ser368位点的磷酸化。机械负荷下Cx43的下调与观察到的收缩变化不相关。此外,阻断肌肉的旁分泌活性只能部分阻止Cx43的下调。另外,未观察到机械负荷对N-钙黏着蛋白和紧密连接蛋白-1表达的影响,表明连接蛋白反应具有特异性。高机械负荷导致Cx43磷酸化迅速丧失,随后Cx43蛋白水平下降。旁分泌因子部分参与了潜在的作用机制,而未观察到与收缩能力有直接相关性。