Department of Chemistry, East Carolina University, 300 Science and Technology, Greenville, NC 27858, United States.
Department of Chemistry, Physics and Geology, Winthrop University, Rock Hill, SC 29730, United States.
Biochim Biophys Acta Proteins Proteom. 2019 Apr;1867(4):359-366. doi: 10.1016/j.bbapap.2019.01.004. Epub 2019 Jan 10.
Characterizing the thermodynamic parameters behind metal-biomolecule interactions is fundamental to understanding the roles metal ions play in biology. Isothermal Titration Calorimetry (ITC) is a "gold-standard" for obtaining these data. However, in addition to metal-protein binding, additional equilibria such as metal-buffer interactions must be taken into consideration prior to making meaningful comparisons between metal-binding systems.
In this study, the thermodynamics of Ca binding to three buffers (Bis-Tris, MES, and MOPS) were obtained from Ca-EDTA titrations using ITC. These data were used to extract buffer-independent parameters for Ca binding to human cardiac troponin C (hcTnC), an EF-hand containing protein required for heart muscle contraction.
The number of protons released upon Ca binding to the C- and N-domain of hcTnC were found to be 1.1 and 1.2, respectively. These values permitted determination of buffer-independent thermodynamic parameters of Ca-hcTnC binding, and the extracted data agreed well among the buffers tested. Both buffer and pH-adjusted parameters were determined for Ca binding to the N-domain of hcTnC and revealed that Ca binding under aqueous conditions and physiological ionic strength is both thermodynamically favorable and driven by entropy.
Taken together, the consistency of these data between buffer systems and the similarity between theoretical and experimental proton release is indicative of the reliability of the method used and the importance of extracting metal-buffer interactions in these studies.
The experimental approach described herein is clearly applicable to other metal ions and other EF-hand protein systems.
表征金属-生物分子相互作用背后的热力学参数对于理解金属离子在生物学中的作用至关重要。等温滴定量热法(ITC)是获取这些数据的“金标准”。然而,除了金属-蛋白质结合之外,在对金属结合系统进行有意义的比较之前,还必须考虑到额外的平衡,例如金属-缓冲剂相互作用。
在这项研究中,通过 ITC 从 Ca-EDTA 滴定中获得了三种缓冲剂(Bis-Tris、MES 和 MOPS)与 Ca 结合的热力学数据。这些数据用于提取 Ca 与人心脏肌钙蛋白 C(hcTnC)结合的缓冲剂独立参数,hcTnC 是一种含有 EF 手的蛋白质,是心肌收缩所必需的。
发现 Ca 与 hcTnC 的 C 和 N 结构域结合时释放的质子数分别为 1.1 和 1.2。这些值允许确定 Ca-hcTnC 结合的缓冲剂独立热力学参数,并且从测试的缓冲剂中提取的数据吻合良好。确定了 Ca 与 hcTnC 的 N 结构域结合的缓冲剂和 pH 调节参数,并揭示了在水相条件和生理离子强度下 Ca 结合是热力学有利的,并且由熵驱动。
综上所述,缓冲剂系统之间这些数据的一致性以及理论和实验质子释放之间的相似性表明了所使用方法的可靠性以及在这些研究中提取金属-缓冲剂相互作用的重要性。
本文描述的实验方法显然适用于其他金属离子和其他 EF 手蛋白系统。