Walker Thomas, Sun He Mirabel, Gunnels Tiffany, Wysocki Vicki, Laganowsky Arthur, Rye Hays, Russell David
Department of Chemistry, Texas A&M University, College Station, Texas 77843, United States.
Department of Biochemistry & Biophysics, Texas A&M University, College Station, Texas 77843, United States.
ACS Cent Sci. 2023 Feb 20;9(3):466-475. doi: 10.1021/acscentsci.2c01065. eCollection 2023 Mar 22.
Variable-temperature electrospray ionization (vT-ESI) native mass spectrometry (nMS) is used to determine the thermodynamics for stepwise binding of up to 14 ATP molecules to the 801 kDa GroEL tetradecamer chaperonin complex. Detailed analysis reveals strong enthalpy-entropy compensation (EEC) for the ATP binding events leading to formation of GroEL-ATP and GroEL-ATP complexes. The observed variations in EEC and stepwise free energy changes of specific ATP binding are consistent with the well-established nested cooperativity model describing GroEL-ATP interactions, , intraring positive cooperativity and inter-ring negative cooperativity (Dyachenko A.; Proc. Natl. Acad. Sci. U.S.A.2013, 110, 7235-7239). Entropy-driven ATP binding is to be expected for ligand-induced conformational changes of the GroEL tetradecamer, though the magnitude of the entropy change suggests that reorganization of GroEL-hydrating water molecules and/or expulsion of water from the GroEL cavity may also play key roles. The capability for determining complete thermodynamic signatures (Δ, Δ, and -Δ) for individual ligand binding reactions for the large, nearly megadalton GroEL complex expands our fundamental view of chaperonin functional chemistry. Moreover, this work and related studies of protein-ligand interactions illustrate important new capabilities of vT-ESI-nMS for thermodynamic studies of protein interactions with ligands and other molecules such as proteins and drugs.
变温电喷雾电离(vT-ESI)质谱(nMS)用于确定多达14个ATP分子与801 kDa GroEL十四聚体伴侣蛋白复合物逐步结合的热力学。详细分析揭示了导致形成GroEL-ATP和GroEL-ATP复合物的ATP结合事件存在强烈的焓-熵补偿(EEC)。观察到的EEC变化以及特定ATP结合的逐步自由能变化与描述GroEL-ATP相互作用的成熟嵌套协同模型一致,即环内正协同性和环间负协同性(Dyachenko A.;美国国家科学院院刊2013, 110, 7235 - 7239)。尽管熵变的大小表明GroEL水合水分子的重组和/或水从GroEL腔中排出也可能起关键作用,但对于GroEL十四聚体的配体诱导构象变化,预期会出现熵驱动的ATP结合。确定大型、近兆道尔顿的GroEL复合物单个配体结合反应完整热力学特征(Δ、Δ和-Δ)的能力扩展了我们对伴侣蛋白功能化学的基本认识。此外,这项工作以及蛋白质-配体相互作用的相关研究说明了vT-ESI-nMS在蛋白质与配体及其他分子(如蛋白质和药物)相互作用的热力学研究中的重要新能力。