Rief M, Gautel M, Schemmel A, Gaub H E
Lehrstuhl für Angewandte Physik, Ludwig Maximilians Universität M unchen, 80799 München, Germany.
Biophys J. 1998 Dec;75(6):3008-14. doi: 10.1016/S0006-3495(98)77741-0.
The domains of the giant muscle protein titin (connectin) provide interaction sites for other sarcomeric proteins and fulfill mechanical functions. In this paper we compare the unfolding forces of defined regions of different titin isoforms by single-molecule force spectroscopy. Constructs comprising six to eight immunoglobulin (Ig) domains located in the mechanically active I-band part of titin are compared to those containing fibronectin III (Fn3) and Ig domains from the A-band part. The high spatial resolution of the atomic force microscope allows us to detect differences in length as low as a few amino acids. Thus constructs of different lengths may be used as molecular rulers for structural comparisons with other modular proteins. The unfolding forces range between 150 and 300 pN and differ systematically between the constructs. Fn3 domains in titin exhibit 20% lower unfolding forces than Ig domains. Fn3 domains from tenascin, however, unfold at forces only half those of titin Fn3 domains. This indicates that the tightly folded titin domains are designed to maintain their structural integrity, even under the influence of stretching forces. Hence, at physiological forces, unfolding is unlikely unless the forces are applied for a long time (longer than minutes).
巨大的肌肉蛋白肌联蛋白(连接蛋白)的结构域为其他肌节蛋白提供相互作用位点并履行机械功能。在本文中,我们通过单分子力谱比较了不同肌联蛋白同工型特定区域的解折叠力。将包含位于肌联蛋白机械活性I带部分的六到八个免疫球蛋白(Ig)结构域的构建体与那些包含来自A带部分的纤连蛋白III(Fn3)和Ig结构域的构建体进行比较。原子力显微镜的高空间分辨率使我们能够检测到低至几个氨基酸的长度差异。因此,不同长度的构建体可用作分子尺,用于与其他模块化蛋白进行结构比较。解折叠力在150至300皮牛之间,并且在构建体之间存在系统性差异。肌联蛋白中的Fn3结构域的解折叠力比Ig结构域低20%。然而,腱生蛋白的Fn3结构域在仅为肌联蛋白Fn3结构域一半的力下解折叠。这表明紧密折叠的肌联蛋白结构域即使在拉伸力的影响下也被设计用于维持其结构完整性。因此,在生理力作用下,除非力作用很长时间(超过几分钟),否则不太可能发生解折叠。