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Single-Molecule Force Spectroscopy Reveals a Stepwise Unfolding of Caenorhabditis elegans Giant Protein Kinase Domains

机译:单分子力光谱揭示了秀丽隐杆线虫巨型蛋白激酶域的逐步展开。

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摘要

Myofibril assembly and disassembly are complex processes that regulate overall muscle mass. Titin kinase has been implicated as an initiating catalyst in signaling pathways that ultimately result in myofibril growth. In titin, the kinase domain is in an ideal position to sense mechanical strain that occurs during muscle activity. The enzyme is negatively regulated by intramolecular interactions occurring between the kinase catalytic core and autoinhibitory/regulatory region. Molecular dynamics simulations suggest that human titin kinase acts as a force sensor. However, the precise mechanism(s) resulting in the conformational changes that relieve the kinase of this autoinhibition are unknown. Here we measured the mechanical properties of the kinase domain and flanking Ig/Fn domains of the Caenorhabditis elegans titin-like proteins twitchin and TTN-1 using single-molecule atomic force microscopy. Our results show that these kinase domains have significant mechanical resistance, unfolding at forces similar to those for Ig/Fn β-sandwich domains (30–150 pN). Further, our atomic force microscopy data is consistent with molecular dynamic simulations, which show that these kinases unfold in a stepwise fashion, first an unwinding of the autoinhibitory region, followed by a two-step unfolding of the catalytic core. These data support the hypothesis that titin kinase may function as an effective force sensor.
机译:肌原纤维的组装和拆卸是调节整体肌肉质量的复杂过程。 Titin激酶已被认为是最终导致肌原纤维生长的信号传导途径的起始催化剂。在titin中,激酶结构域处于理想位置,可感知肌肉活动过程中发生的机械应变。该酶被激酶催化核心和自抑制/调节区之间发生的分子内相互作用负调节。分子动力学模拟表明,人纤溶酶可作为力传感器。然而,导致解除该自抑制的激酶的构象变化的精确机制是未知的。在这里,我们使用单分子原子力显微镜测量了秀丽隐杆线虫(Caenorhabditis elegans)纤蛋白样蛋白twitchin和TTN-1的激酶结构域和侧翼Ig / Fn结构域的机械性能。我们的结果表明,这些激酶结构域具有显着的机械抗性,其作用力与Ig / Fnβ夹心结构域(30–150 pN)相似。此外,我们的原子力显微镜数据与分子动力学模拟相一致,分子动力学模拟表明,这些激酶以逐步方式展开,首先是自抑制区域的展开,然后是催化核心的两步展开。这些数据支持了titin激酶可以充当有效力传感器的假设。

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