Loladze Vakhtang V, Ermolenko Dmitri N, Makhatadze George I
Department of Biochemistry and Molecular Biology, College of Medicine, Penn State University, Hershey, PA 17033-2390, USA.
J Mol Biol. 2002 Jul 5;320(2):343-57. doi: 10.1016/S0022-2836(02)00465-5.
Effects of amino acid substitutions at four fully buried sites of the ubiquitin molecule on the thermodynamic parameters (enthalpy, Gibbs energy) of unfolding were evaluated experimentally using differential scanning calorimetry. The same set of substitutions has been incorporated at each of four sites. These substitutions have been designed to perturb packing (van der Waals) interactions, hydration, and/or hydrogen bonding. From the analysis of the thermodynamic parameters for these ubiquitin variants we conclude that: (i) packing of non-polar groups in the protein interior is favorable and is largely defined by a favorable enthalpy of van der Waals interactions. The removal of one methylene group from the protein interior will destabilize a protein by approximately 5 kJ/mol, and will decrease the enthalpy of a protein by 12 kJ/mol. (ii) Burial of polar groups in the non-polar interior of a protein is highly destabilizing, and the degree of destabilization depends on the relative polarity of this group. For example, burial of Thr side-chain in the non-polar interior will be less destabilizing than burial of Asn side-chain. This decrease in stability is defined by a large enthalpy of dehydration of polar groups upon burial. (iii) The destabilizing effect of dehydration of polar groups upon burial can be compensated if these buried polar groups form hydrogen bonding. The enthalpy of this hydrogen bonding will compensate for the unfavorable dehydration energy and as a result the effect will be energetically neutral or even slightly stabilizing.
利用差示扫描量热法对泛素分子四个完全埋藏位点的氨基酸取代对解折叠热力学参数(焓、吉布斯自由能)的影响进行了实验评估。在四个位点中的每一个位点都引入了相同的一组取代。这些取代旨在扰乱堆积(范德华)相互作用、水合作用和/或氢键。通过对这些泛素变体的热力学参数分析,我们得出以下结论:(i)蛋白质内部非极性基团的堆积是有利的,并且在很大程度上由有利的范德华相互作用焓决定。从蛋白质内部去除一个亚甲基将使蛋白质不稳定约5kJ/mol,并使蛋白质的焓降低12kJ/mol。(ii)将极性基团埋藏在蛋白质的非极性内部会高度不稳定,不稳定程度取决于该基团的相对极性。例如,将苏氨酸侧链埋藏在非极性内部的不稳定程度将低于天冬酰胺侧链的埋藏。这种稳定性的降低是由埋藏时极性基团的大量脱水焓决定的。(iii)如果这些埋藏的极性基团形成氢键,那么埋藏时极性基团脱水的不稳定作用可以得到补偿。这种氢键的焓将补偿不利的脱水能,结果该作用在能量上是中性的,甚至略有稳定作用。