Gulotta Alessandro, Bucciarelli Saskia, Roosen-Runge Felix, Holderer Olaf, Schurtenberger Peter, Stradner Anna
Division for Physical Chemistry, Lund University, Naturvetarvägen 14, 22100 Lund, Sweden.
Jülich Centre for Neutron Science (JCNS) at Heinz Maier-Leibnitz Zentrum (MLZ), Forschungszentrum Jülich GmbH, Garching, Germany.
APL Bioeng. 2024 May 29;8(2):026116. doi: 10.1063/5.0204201. eCollection 2024 Jun.
Crowding effects significantly influence the phase behavior and the structural and dynamic properties of the concentrated protein mixtures present in the cytoplasm of cells or in the blood serum. This poses enormous difficulties for our theoretical understanding and our ability to predict the behavior of these systems. While the use of course grained colloid-inspired models allows us to reproduce the key physical solution properties of concentrated monodisperse solutions of individual proteins, we lack corresponding theories for complex polydisperse mixtures. Here, we test the applicability of simple mixing rules in order to predict solution properties of protein mixtures. We use binary mixtures of the well-characterized bovine eye lens proteins and crystallin as model systems. Combining microrheology with static and dynamic scattering techniques and observations of the phase diagram for liquid-liquid phase separation, we show that reasonably accurate descriptions are possible for macroscopic and mesoscopic signatures, while information on the length scale of the individual protein size requires more information on cross-component interaction.
拥挤效应显著影响细胞胞质或血清中存在的浓缩蛋白质混合物的相行为以及结构和动力学性质。这给我们的理论理解以及预测这些系统行为的能力带来了巨大困难。虽然使用粗粒化的胶体启发模型使我们能够重现单个蛋白质浓缩单分散溶液的关键物理溶液性质,但我们缺乏针对复杂多分散混合物的相应理论。在此,我们测试简单混合规则的适用性,以预测蛋白质混合物的溶液性质。我们使用特征明确的牛眼晶状体蛋白和晶状体蛋白的二元混合物作为模型系统。将微观流变学与静态和动态散射技术以及液 - 液相分离相图的观测相结合,我们表明对于宏观和介观特征可以进行合理准确的描述,而关于单个蛋白质大小长度尺度的信息需要更多关于跨组分相互作用的信息。