Characterizing the biophysical properties of individual actin stress fibers

S. Deguchi, T. Matsui
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Abstract

Actin stress fibers (SFs) play essential roles in cellular contractile force generation and resulting adhesion regulation. Although contractile properties of whole cells have been extensively studied, those intrinsic to individual SFs remain unknown. Here we isolate functional SFs from cells and directly measure the relationship between the shortening velocity and contractile forces generated by individual SFs. These isolated SFs are associated with major structural proteins typical for SFs present within intact cells, which include phosphorylated myosin regulatory light chain (MRLC) required for actin-myosin crossbridge cycling. Thus, contractile shortening of the structurally and functionally non-impaired SFs can be induced in vitro upon application of adenosine triphosphate. We then characterize their contractile properties using functionalized microneedles for physical manipulation and force measurement. SFs shorten quickly in the absence of external loading, whereas, interestingly, the shortening velocity is dramatically decreased by more than two orders of magnitude upon application of a small tensile load. These results show a highly steep shortening velocity-load relationship that is distinct from the hyperbolic Hill relation of skeletal myofibrils, which has been assumed in other studies to be valid for SFs as well because these two have similar sarcomeric patterns along their lengths.
表征单个肌动蛋白应力纤维的生物物理特性
肌动蛋白应力纤维(SFs)在细胞收缩力的产生和由此产生的粘附调节中起重要作用。尽管整个细胞的收缩特性已经得到了广泛的研究,但单个SFs的内在特性仍然未知。在这里,我们从细胞中分离出功能性SFs,并直接测量单个SFs产生的缩短速度和收缩力之间的关系。这些分离的SFs与完整细胞中存在的SFs典型的主要结构蛋白相关,其中包括肌动蛋白-肌球蛋白过桥循环所需的磷酸化肌球蛋白调节轻链(MRLC)。因此,三磷酸腺苷可以在体外诱导结构和功能未受损的SFs收缩缩短。然后,我们使用功能化微针表征其收缩特性,用于物理操作和力测量。在没有外部载荷的情况下,SFs迅速缩短,然而,有趣的是,在施加小的拉伸载荷时,缩短速度急剧下降了两个数量级以上。这些结果显示了一个非常陡峭的缩短速度-负荷关系,不同于骨骼肌原纤维的双曲希尔关系,这在其他研究中也被认为是有效的,因为这两者在其长度上具有相似的肌肉结构模式。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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