Department of Medical Pharmacology & Physiology, School of Medicine, University of Missouri, MA 415 Medical Sciences Building, Columbia, MO 65212, USA.
Pflugers Arch. 2011 Jul;462(1):61-7. doi: 10.1007/s00424-011-0949-y. Epub 2011 Mar 15.
Myocardium generates power to perform external work on the circulation; yet, many questions regarding intermolecular mechanisms regulating power output remain unresolved. Power output equals force × shortening velocity, and some interesting new observations regarding control of these two factors have arisen. While it is well established that sarcomere length tightly controls myocyte force, sarcomere length-tension relationships also appear to be markedly modulated by PKA-mediated phosphorylation of myofibrillar proteins. Concerning loaded shortening, historical models predict independent cross-bridge mechanics; however, it seems that the mechanical state of one population of cross-bridges affects the activity of other cross-bridges by, for example, recruitment of cross-bridges from the non-cycling pool to the cycling force-generating pool during submaximal Ca(2+) activation. This is supported by the findings that Ca(2+) activation levels, myofilament phosphorylation, and sarcomere length are all modulators of loaded shortening and power output independent of their effects on force. This fine tuning of power output probably helps optimize myocardial energetics and to match ventricular supply with peripheral demand; yet, the discernment of the chemo-mechanical signals that modulate loaded shortening needs further clarification since power output may be a key convergent point and feedback regulator of cytoskeleton and cellular signals that control myocyte growth and survival.
心肌产生力量以对循环系统进行外部工作;然而,关于调节功率输出的分子间机制的许多问题仍未解决。功率输出等于力乘以缩短速度,关于这两个因素的控制有一些有趣的新观察结果。虽然肌节长度严格控制心肌细胞的力已经得到充分证实,但肌节长度-张力关系似乎也明显受到 PKA 介导的肌球蛋白蛋白磷酸化的调节。关于加载缩短,历史模型预测独立的横桥力学;然而,似乎一种横桥的力学状态通过例如在亚最大 Ca2+激活期间将横桥从非循环池募集到循环力产生池中,影响其他横桥的活性。这得到了以下发现的支持:Ca2+激活水平、肌丝磷酸化和肌节长度都是加载缩短和功率输出的调节剂,而不影响力。这种功率输出的精细调节可能有助于优化心肌能量学,并使心室供应与外周需求相匹配;然而,需要进一步澄清调节加载缩短的化学机械信号的辨别,因为功率输出可能是控制心肌细胞生长和存活的细胞骨架和细胞信号的关键收敛点和反馈调节剂。