Department of Molecular Pharmacology, Physiology, and Biotechnology, Brown University, Providence, Rhode Island 02912, USA.
Am J Respir Cell Mol Biol. 2011 Jun;44(6):888-97. doi: 10.1165/rcmb.2010-0144OC. Epub 2010 Aug 12.
Actin cytoskeletal remodeling is an important mechanism of airway smooth muscle (ASM) contraction. We tested the hypothesis that mechanical strain modulates the cholinergic receptor-mediated cytoskeletal recruitment of actin-binding and integrin-binding proteins in intact airway smooth muscle, thereby regulating the mechanical energetics of airway smooth muscle. We found that the carbachol-stimulated cytoskeletal recruitment of actin-related protein-3 (Arp3), metavinculin, and talin were up-regulated at short muscle lengths and down-regulated at long muscle lengths, suggesting that the actin cytoskeleton--integrin complex becomes enriched in cross-linked and branched actin filaments in shortened ASM. The mechanical energy output/input ratio during sinusoidal length oscillation was dependent on muscle length, oscillatory amplitude, and cholinergic activation. The enhancing effect of cholinergic stimulation on mechanical energy output/input ratio at short and long muscle lengths may be explained by the length-dependent modulation of cytoskeletal recruitment and crossbridge cycling, respectively. We postulate that ASM functions as a hybrid biomaterial, capable of switching between operating as a cytoskeleton-based mechanical energy store at short muscle lengths to operating as an actomyosin-powered mechanical energy generator at long muscle lengths. This postulate predicts that targeting the signaling molecules involved in cytoskeletal recruitment may provide a novel approach to dilating collapsed airways in obstructive airway disease.
肌动蛋白细胞骨架重构是气道平滑肌(ASM)收缩的重要机制。我们检验了这样一个假设,即机械应变调节完整气道平滑肌中乙酰胆碱受体介导的细胞骨架募集肌动蛋白结合蛋白和整合素结合蛋白,从而调节气道平滑肌的力学能量。我们发现,在短肌长度时,激动剂卡巴胆碱刺激肌动蛋白相关蛋白 3(Arp3)、中间连接蛋白和桩蛋白的细胞骨架募集被上调,而在长肌长度时被下调,这表明在缩短的 ASM 中,肌动蛋白细胞骨架-整合素复合物富含交联和分支的肌动蛋白丝。在正弦长度振荡过程中,机械能输出/输入比依赖于肌肉长度、振荡幅度和胆碱能激活。在短肌长度和长肌长度时,胆碱能刺激对机械能输出/输入比的增强作用可以分别用细胞骨架募集的长度依赖性调节和横桥循环来解释。我们假设 ASM 作为一种混合生物材料起作用,能够在短肌长度时作为基于细胞骨架的机械能储存器运行,在长肌长度时作为肌球蛋白动力的机械能发生器运行。这一假设预测,靶向参与细胞骨架募集的信号分子可能为扩张阻塞性气道疾病中塌陷的气道提供一种新方法。