Heart and Vascular Center, Semmelweis University, Városmajor Str. 68., HU-1122 Budapest, Hungary.
Department of Biophysics and Radiation Biology, Semmelweis University, Tűzoltó Str. 37-47, HU-1094 Budapest, Hungary.
Int J Mol Sci. 2021 Oct 15;22(20):11110. doi: 10.3390/ijms222011110.
Long-term exercise induces physiological cardiac adaptation, a condition referred to as athlete's heart. Exercise tolerance is known to be associated with decreased cardiac passive stiffness. Passive stiffness of the heart muscle is determined by the giant elastic protein titin. The adult cardiac muscle contains two titin isoforms: the more compliant N2BA and the stiffer N2B. Titin-based passive stiffness may be controlled by altering the expression of the different isoforms or via post-translational modifications such as phosphorylation. Currently, there is very limited knowledge about titin's role in cardiac adaptation during long-term exercise. Our aim was to determine the N2BA/N2B ratio and post-translational phosphorylation of titin in the left ventricle and to correlate the changes with the structure and transverse stiffness of cardiac sarcomeres in a rat model of an athlete's heart. The athlete's heart was induced by a 12-week-long swim-based training. In the exercised myocardium the N2BA/N2B ratio was significantly increased, Ser11878 of the PEVK domain was hypophosphorlyated, and the sarcomeric transverse elastic modulus was reduced. Thus, the reduced passive stiffness in the athlete's heart is likely caused by a shift towards the expression of the longer cardiac titin isoform and a phosphorylation-induced softening of the PEVK domain which is manifested in a mechanical rearrangement locally, within the cardiac sarcomere.
长期运动可引起生理性心脏适应,这种状态被称为运动员心脏。众所周知,运动耐量与心脏被动僵硬度降低有关。心肌的被动僵硬度由巨大的弹性蛋白titin 决定。成人心肌含有两种 titin 同工型:顺应性更高的 N2BA 和刚性更大的 N2B。titin 介导的被动僵硬度可通过改变不同同工型的表达或通过翻译后修饰(如磷酸化)来控制。目前,关于 titin 在长期运动引起的心脏适应中的作用知之甚少。我们的目的是确定运动员心脏模型中左心室 titin 的 N2BA/N2B 比值和翻译后磷酸化,并将这些变化与心肌细胞骨架的结构和横向僵硬度相关联。运动员心脏是通过为期 12 周的游泳训练诱导的。在运动心肌中,N2BA/N2B 比值显著增加,PEVK 结构域的丝氨酸 11878 低磷酸化,肌节的横向弹性模量降低。因此,运动员心脏的被动僵硬度降低可能是由于更长的心肌 titin 同工型的表达增加以及 PEVK 结构域的磷酸化软化所致,这表现为心肌细胞骨架内的局部力学重排。