Loss of myocardial mass in a neonatal rat cardiomyocyte culture is studied to determine whether there is a distinguishable cellular response based on the origin of mechano-signals. The approach herein compares the sarcomeric assembly and disassembly processes in heart cells by imposing mechano-signals at the interface with the extracellular matrix (extrinsic) and at the level of the myofilaments (intrinsic). Experiments compared the effects of imposed internal (inside/out) and external (outside/in) loading and unloading on modifications in neonatal rat cardiomyocytes. Unloading of the cellular substrate by myosin inhibition (1âμm mavacamten), or cessation of cyclic strain (1âHz, 10% strain) after preconditioning, led to significant disassembly of sarcomeric α-actinin by 6âh. In myosin inhibition, this was accompanied by redistribution of intracellular poly-ubiquitin K48 to the cellular periphery relative to the poly-ubiquitin K48 reservoir at the I-band. Moreover, loading and unloading of the cellular substrate led to a three-fold increase in post-translational modifications (PTMs) when compared to the myosin-specific activation or inhibition. Specifically, phosphorylation increased with loading while ubiquitination increased with unloading, which may involve extracellular signal-regulated kinase 1/2 and focal adhesion kinase activation. The identified PTMs, including ubiquitination, acetylation, and phosphorylation, are proposed to modify internal domains in α-actinin to increase its propensity to bind F-actin. These results demonstrate a link between mechanical feedback and sarcomere protein homeostasis via PTMs of α-actinin that exemplify how cardiomyocytes exhibit differential responses to the origin of force. The implications of sarcomere regulation governed by PTMs of α-actinin are discussed with respect to cardiac atrophy and heart failure.
Cardiomyocyte external mechanical unloading activates modifications of α-actinin differently from sarcomere-originated unloading.
心肌细胞外部机械卸载激活α-肌动蛋白修饰的方式与肌节来源的卸载不同
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作者:SolÃs Christopher, Warren Chad M, Dittloff Kyle, DiNello Elisabeth, Solaro R John, Russell Brenda
| 期刊: | FEBS Journal | 影响因子: | 4.200 |
| 时间: | 2023 | 起止号: | 2023 Nov;290(22):5322-5339 |
| doi: | 10.1111/febs.16925 | 研究方向: | 细胞生物学 |
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