An upper limit for macromolecular crowding effects.

Q1 Biochemistry, Genetics and Molecular Biology
Andrew C Miklos, Conggang Li, Courtney D Sorrell, L Andrew Lyon, Gary J Pielak
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引用次数: 32

Abstract

Background: Solutions containing high macromolecule concentrations are predicted to affect a number of protein properties compared to those properties in dilute solution. In cells, these macromolecular crowders have a large range of sizes and can occupy 30% or more of the available volume. We chose to study the stability and ps-ns internal dynamics of a globular protein whose radius is ~2 nm when crowded by a synthetic microgel composed of poly(N-isopropylacrylamide-co-acrylic acid) with particle radii of ~300 nm.

Results: Our studies revealed no change in protein rotational or ps-ns backbone dynamics and only mild (~0.5 kcal/mol at 37°C, pH 5.4) stabilization at a volume occupancy of 70%, which approaches the occupancy of closely packing spheres. The lack of change in rotational dynamics indicates the absence of strong crowder-protein interactions.

Conclusions: Our observations are explained by the large size discrepancy between the protein and crowders and by the internal structure of the microgels, which provide interstitial spaces and internal pores where the protein can exist in a dilute solution-like environment. In summary, microgels that interact weakly with proteins do not strongly influence protein dynamics or stability because these large microgels constitute an upper size limit on crowding effects.

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Abstract Image

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大分子拥挤效应的上限。
背景:与稀溶液中的蛋白质性质相比,预计含有高浓度大分子的溶液会影响蛋白质的许多性质。在细胞中,这些大分子挤压物的大小范围很大,可以占据可用体积的30%或更多。我们选择研究一个半径为~2 nm的球状蛋白,在粒子半径为~300 nm的聚(n -异丙基丙烯酰胺-共丙烯酸)合成微凝胶填充下的稳定性和ps-ns内部动力学。结果:我们的研究表明,蛋白质旋转或ps-ns骨架动力学没有变化,只有轻微的稳定(37°C, pH 5.4时~0.5 kcal/mol),体积占用率为70%,接近紧密包装球体的占用率。旋转动力学变化的缺乏表明缺乏强烈的群体-蛋白质相互作用。结论:我们的观察结果可以解释为蛋白质和蜂窝状物之间的巨大尺寸差异,以及微凝胶的内部结构,它提供了间隙和内部孔隙,蛋白质可以在稀释的溶液样环境中存在。总之,微凝胶与蛋白质的相互作用弱,不会强烈影响蛋白质的动力学或稳定性,因为这些大的微凝胶构成了拥挤效应的上限。
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来源期刊
BMC Biophysics
BMC Biophysics BIOPHYSICS-
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>12 weeks
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