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Protein Self-Association Induced by Macromolecular Crowding: A Quantitative Analysis by Magnetic Relaxation Dispersion

机译:大分子拥挤诱导的蛋白质自缔合:磁弛豫弥散的定量分析。

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摘要

In the presence of high concentrations of inert macromolecules, the self-association of proteins is strongly enhanced through an entropic, excluded-volume effect variously called macromolecular crowding or depletion attraction. Despite the predicted large magnitude of this universal effect and its far-reaching biological implications, few experimental studies of macromolecular crowding have been reported. Here, we introduce a powerful new technique, fast field-cycling magnetic relaxation dispersion, for investigating crowding effects on protein self-association equilibria. By recording the solvent proton spin relaxation rate over a wide range of magnetic field strengths, we determine the populations of coexisting monomers and decamers of bovine pancreatic trypsin inhibitor in the presence of dextran up to a macromolecular volume fraction of 27%. Already at a dextran volume fraction of 14%, we find a 30-fold increase of the decamer population and 5105-fold increase of the association constant. The analysis of these results, in terms of a statistical-mechanical model that incorporates polymer flexibility as well as the excluded volume of the protein, shows that the dramatic enhancement of bovine pancreatic trypsin inhibitor self-association can be quantitatively rationalized in terms of hard repulsive interactions.
机译:在高浓度的惰性大分子存在下,蛋白质的自缔合通过熵,排除体积效应(称为大分子拥挤或耗竭吸引)而大大增强。尽管预测了这种普遍效应的巨大程度及其深远的生物学意义,但很少有关于大分子拥挤的实验研究的报道。在这里,我们介绍了一种强大的新技术,快速的磁场循环磁弛豫弥散,用于研究拥挤对蛋白质自缔合平衡的影响。通过记录在广泛的磁场强度范围内的溶剂质子自旋弛豫率,我们确定了在右旋糖酐存在下高达27%的大分子体积分数下,牛胰胰蛋白酶抑制剂的共存单体和十聚体的种群。在葡聚糖体积分数为14%时,我们发现decamer群体增加了30倍,缔合常数增加了5105倍。根据结合了聚合物柔韧性和排除的蛋白质体积的统计力学模型对这些结果进行的分析表明,就硬排斥而言,可以定量地合理化牛胰胰蛋白酶抑制剂自缔合的急剧增强。互动。

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