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Diverse Folding Pathways of HIV-1 Protease Monomer on a Rugged Energy Landscape

机译:在坚固的能量景观上的HIV-1蛋白酶单体的不同折叠途径

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摘要

The modern energy landscape theory of protein folding predicts multiple folding pathways connecting a myriad of unfolded conformations and a well-defined folded state. However, direct experimental observation of heterogeneous folding pathways is difficult. Naturally evolved proteins typically exhibit a smooth folding energy landscape for fast and efficient folding by avoiding unfavorable kinetic traps. In this case, rapid fluctuations between unfolded conformations result in apparent two-state behavior and make different pathways indistinguishable. However, the landscape roughness can be different, depending on the selection pressures during evolution. Here, we characterize the unusually rugged folding energy landscape of human immunodeficiency virus-1 protease monomer using single-molecule Förster resonance energy transfer spectroscopy. Our data show that fluctuations between unfolded conformations are slow, which enables the experimental observation of heterogeneous folding pathways as predicted by the landscape theory. Although the landscape ruggedness is sensitive to the mutations and fluorophore locations, the folding rate is similar for various protease constructs. The natural evolution of the protease to have a rugged energy landscape likely results from intrinsic pressures to maintain robust folding when human immunodeficiency virus-1 mutates frequently, which is essential for its survival.
机译:蛋白质折叠的现代能量景观理论预测了多种折叠途径,其连接无数展开构象和明确义的折叠状态。然而,难以实现异构折叠途径的直接实验观察。天然进化的蛋白质通常通过避免不利的动力学陷阱而表现出光滑的折叠能量景观,以快速高效地折叠。在这种情况下,展开构象之间的快速波动导致表观的两个状态行为,并使不同的途径无法区分。然而,根据进化期间的选择压力,景观粗糙度可以是不同的。在这里,我们使用单分子Förster共振能量转印光谱表征人免疫缺陷病毒-1蛋白质单体的异常坚固耐用的折叠能量景观。我们的数据显示,展开构象之间的波动缓慢,这使得通过景观理论预测的异质折叠途径的实验观察。虽然景观坚固性对突变和荧光团位置敏感,但是各种蛋白酶构建体的折叠率类似。蛋白酶的自然演变具有粗糙的能量景观,可能来自内在压力,以便当人类免疫缺陷病毒-1经常突变时保持稳健的折叠,这对于其存活至关重要。

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