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定量研究细菌视紫红质的初始展开揭示了视黄醛的稳定化。

Quantifying the Initial Unfolding of Bacteriorhodopsin Reveals Retinal Stabilization.

机构信息

JILA, National Institute of Standards and Technology and University of Colorado, Boulder, CO, 80309, USA.

Present address: School of Physics, Huazhong University of Science and Technology, Wuhan, China.

出版信息

Angew Chem Int Ed Engl. 2019 Feb 4;58(6):1710-1713. doi: 10.1002/anie.201812072. Epub 2019 Jan 9.

Abstract

The forces that stabilize membrane proteins remain elusive to precise quantification. Particularly important, but poorly resolved, are the forces present during the initial unfolding of a membrane protein, where the most native set of interactions is present. A high-precision, atomic force microscopy assay was developed to study the initial unfolding of bacteriorhodopsin. A rapid near-equilibrium folding between the first three unfolding states was discovered, the two transitions corresponded to the unfolding of five and three amino acids, respectively, when using a cantilever optimized for 2 μs resolution. The third of these states was retinal-stabilized and previously undetected, despite being the most mechanically stable state in the whole unfolding pathway, supporting 150 pN for more than 1 min. This ability to measure the dynamics of the initial unfolding of bacteriorhodopsin provides a platform for quantifying the energetics of membrane proteins under native-like conditions.

摘要

稳定膜蛋白的力仍然难以精确量化。特别重要但尚未解决的是膜蛋白初始展开时存在的力,此时存在最原始的相互作用。开发了一种高精度原子力显微镜测定法来研究细菌视紫红质的初始展开。发现了第一个三个展开状态之间的快速近平衡折叠,当使用优化为 2 μs 分辨率的悬臂时,这两个转变分别对应于展开五个和三个氨基酸。第三个状态是视黄醛稳定的,尽管它是整个展开途径中最稳定的机械状态,但它以前未被检测到,它可以支撑 150 pN 超过 1 分钟。这种测量细菌视紫红质初始展开动力学的能力为在类似天然条件下量化膜蛋白的能量学提供了一个平台。

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