Department of Physics, Randall Centre for Cell and Molecular Biophysics and London Centre for Nanotechnology, King's College London, Strand, WC2R 2LS London, United Kingdom.
The Francis Crick Institute, 1 Midland Road, NW1 1AT, London, United Kingdom.
Nano Lett. 2021 Apr 14;21(7):2953-2961. doi: 10.1021/acs.nanolett.1c00051. Epub 2021 Mar 25.
Molecular fluctuations directly reflect the underlying energy landscape. Variance analysis examines protein dynamics in several biochemistry-driven approaches, yet measurement of probe-independent fluctuations in proteins exposed to mechanical forces remains only accessible through steered molecular dynamics simulations. Using single molecule magnetic tweezers, here we conduct variance analysis to show that individual unfolding and refolding transitions occurring in dynamic equilibrium in a single protein under force are hallmarked by a change in the protein's end-to-end fluctuations, revealing a change in protein stiffness. By unfolding and refolding three structurally distinct proteins under a wide range of constant forces, we demonstrate that the associated change in protein compliance to reach force-induced thermodynamically stable states scales with the protein's contour length increment, in agreement with the sequence-independent freely jointed chain model of polymer physics. Our findings will help elucidate the conformational dynamics of proteins exposed to mechanical force at high resolution which are of central importance in mechanosensing and mechanotransduction.
分子波动直接反映了潜在的能量景观。方差分析通过几种生物化学驱动的方法研究蛋白质动力学,但对暴露于机械力下的蛋白质的探针独立波动的测量仍然只能通过导向分子动力学模拟来实现。使用单分子磁镊,我们通过方差分析表明,在力作用下处于动态平衡的单个蛋白质中发生的单个展开和折叠转变的特征是蛋白质末端到末端波动的变化,这揭示了蛋白质硬度的变化。通过在广泛的恒定力下展开和折叠三种结构上不同的蛋白质,我们证明了达到力诱导的热力学稳定状态的蛋白质顺应性的相关变化与蛋白质的轮廓长度增量成正比,与聚合物物理学中序列独立的自由连接链模型一致。我们的发现将有助于阐明在机械力作用下的蛋白质的构象动力学,这在机械传感和机械转导中具有重要意义。