Hossain M Moazzem, Smith Paul G, Wu Kaichun, Jin Jian-Ping
Section of Molecular Cardiology, Evanston Northwestern Healthcare and Northwestern University Fienberg School of Medicine, Evanston, Illinois 60201, USA.
Biochemistry. 2006 Dec 26;45(51):15670-83. doi: 10.1021/bi061718f.
Calponin is an actin filament-associated regulatory protein, and its h2 isoform is expressed in lung alveolar epithelial cells under postnatal upregulation during lung development corresponding to the commencement of respiratory expansion. Consistent with this correlation to mechanical tension, the expression of h2-calponin in alveolar cells is dependent on substrate stiffness and cytoskeleton tension. The function of h2-calponin in the stability of actin cytoskeleton implicates a role in balancing the strength and compliance of alveoli. An interesting finding is a rapid degradation of h2-calponin in lung after prolonged deflation, which is prevented by inflation of the lung to the in situ expanded volume. Decreasing mechanical tension in cultured alveolar cells by reducing the dimension of culture matrix reproduced the degradation of h2-calponin. Inhibition of myosin II ATPase also resulted in the degradation of h2-calponin in alveolar cells, showing a determining role of the tension in the actin cytoskeleton. Alveolar cells statically cultured on silicon rubber membrane build high tension in the cytoskeleton corresponding to a high expression of h2-calponin. Chronic cyclic stretching of cells on the membrane did not increase but decreased the expression of h2-calponin. This finding suggests that when cellular structure adapts to the stretched dimension, cyclic relaxations periodically release cytoskeleton tension and lower the total amount of tension that the cell senses over time. Therefore, the isometric tension, other than tension dynamics, determines the expression of h2-calponin. The tension regulation of h2-calponin synthesis and degradation demonstrates a novel mechanical regulation of cellular biochemistry.
钙调蛋白是一种与肌动蛋白丝相关的调节蛋白,其h2亚型在肺发育过程中产后上调时在肺泡上皮细胞中表达,这与呼吸扩张的开始相对应。与这种与机械张力的相关性一致,肺泡细胞中h2-钙调蛋白的表达取决于底物硬度和细胞骨架张力。h2-钙调蛋白在肌动蛋白细胞骨架稳定性中的作用暗示其在平衡肺泡强度和顺应性方面发挥作用。一个有趣的发现是,长时间放气后肺中h2-钙调蛋白会迅速降解,而将肺充气至原位扩张体积可防止这种降解。通过减小培养基质的尺寸来降低培养的肺泡细胞中的机械张力,会重现h2-钙调蛋白的降解。抑制肌球蛋白II ATP酶也会导致肺泡细胞中h2-钙调蛋白的降解,这表明肌动蛋白细胞骨架中的张力起决定性作用。在硅橡胶膜上静态培养的肺泡细胞在细胞骨架中形成高张力,这与h2-钙调蛋白的高表达相对应。对膜上的细胞进行慢性循环拉伸并没有增加而是降低了h2-钙调蛋白的表达。这一发现表明,当细胞结构适应拉伸尺寸时,周期性的松弛会定期释放细胞骨架张力,并降低细胞随时间感知的总张力。因此,等长张力而非张力动态决定了h2-钙调蛋白的表达。h2-钙调蛋白合成和降解的张力调节证明了一种新型的细胞生物化学机械调节。