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搅拌速率影响等温滴定量热法中的热力学和变性动力学。

Stirring rate affects thermodynamics and unfolding kinetics in isothermal titration calorimetry.

机构信息

Department of Biotechnology, Graduate School of Engineering, Osaka University, 2-1 Yamadaoka, Suita, Osaka 565-0871, Japan.

Graduate School of Pharmaceutical Sciences, Osaka University, 1-6 Yamadaoka, Suita, Osaka 565-0871, Japan.

出版信息

J Biochem. 2020 Jul 1;168(1):53-62. doi: 10.1093/jb/mvaa028.

Abstract

Isothermal titration calorimetry (ITC) directly provides thermodynamic parameters depicting the energetics of intermolecular interactions in solution. During ITC experiments, a titration syringe with a paddle is continuously rotating to promote a homogeneous mixing. Here, we clarified that the shape of the paddles (flat, corkscrew and small-pitched corkscrew) and the stirring rates influence on the thermodynamic parameters of protein-ligand interaction. Stirring with the flat paddle at lower and higher rate both yielded a lower exothermic heat due to different reasons. The complete reaction with no incompetent fractions was achieved only when the stirring was performed at 500 or 750 rpm using the small-pitched corkscrew paddle. The evaluation of the protein solution after 1,500 rpm stirring indicated that proteins in the soluble fraction decreased to 94% of the initial amount, among which 6% was at an unfolded state. In addition, a significant increase of micron aggregates was confirmed. Furthermore, a new approach for the determination of the unfolding kinetics based on the time dependence of the total reaction heat was developed. This study demonstrates that a proper stirring rate and paddle shape are essential for the reliable estimation of thermodynamic parameters in ITC experiments.

摘要

等温滴定量热法(ITC)直接提供描述溶液中分子间相互作用的热力学参数。在 ITC 实验中,带有搅拌桨的滴定注射器不断旋转以促进均匀混合。在这里,我们澄清了搅拌桨的形状(平桨、螺旋桨和小螺距螺旋桨)和搅拌速率对蛋白-配体相互作用热力学参数的影响。由于不同的原因,较低和较高搅拌速率下的平桨搅拌都会导致较低的放热热量。只有当使用小螺距螺旋桨以 500 或 750 rpm 的搅拌速度进行搅拌时,才能实现无无效分数的完全反应。对 1500 rpm 搅拌后的蛋白溶液进行评估表明,可溶性部分的蛋白减少到初始量的 94%,其中 6%处于展开状态。此外,还确认了微米聚集体的显著增加。此外,还开发了一种基于总反应热随时间变化的新方法来确定解折叠动力学。这项研究表明,适当的搅拌速度和搅拌桨形状对于可靠估计 ITC 实验中的热力学参数是至关重要的。

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