Denton M E, Scheraga H A
Baker Laboratory of Chemistry, Cornell University, Ithaca, New York 14853-1301.
J Protein Chem. 1991 Apr;10(2):213-32. doi: 10.1007/BF01024786.
A three-disulfide form of hen egg white lysozyme with Cys6 and Cys127 blocked by carboxymethyl groups was prepared, purified, and characterized for eventual use in protein folding experiments. Trypsin digestion followed by proline-specific endopeptidase digestion facilitated the unambiguous assignment of the disulfide bond pairings and the modified residues in this derivative. 3SS-lysozyme demonstrated nearly full enzymatic activity at its pH optimum, pH 5.5. The 3SS-lysozyme derivative and unmodified lysozyme were shown to be identical by CD spectroscopy at pH 3.6. Immunochemical binding assays demonstrated that the conformation of lysozyme was perturbed predominantly only locally by breaking and blocking the disulfide bond between Cys6 and Cys127. Both 3SS-lysozyme and unmodified lysozyme exhibited reversible thermally induced transitions at pH 2.0, but the Tm of 3SS-lysozyme, 18.9 degrees C, was found to be 34 degrees lower than that of native lysozyme under the same conditions. The conformational chemical potential of the denatured form of unmodified lysozyme was determined from the transition curves to be approximately 6.7 kcal/mol higher than that of the denatured form of 3SS-lysozyme, at pH 2.0 and 35 degrees C, if the conformational chemical potential for the folded forms of both 3SS-lysozyme and unmodified lysozyme is arbitrarily assumed to be 0.0 kcal/mol. A calculation of the increase in the theoretical loop entropy of denatured 3SS-lysozyme resulting from the cleavage of the Cys6-Cys127 disulfide bond, however, yielded a value of only 5.4 kcal/mol for the difference in conformational chemical potential. This suggests that, in addition to the entropic component, there is also an enthalpic contribution to the difference in the conformational chemical potential corresponding to approximately 1.3 kcal/mol. Thus, it is concluded that the reduction and blocking of the disulfide bond between Cys6 and Cys127 destabilizes 3SS-lysozyme relative to unmodified lysozyme predominantly by stabilizing the denatured conformation by increasing its chain entropy.
制备了一种半胱氨酸6(Cys6)和半胱氨酸127(Cys127)被羧甲基封闭的三硫键形式的鸡蛋清溶菌酶,对其进行了纯化和表征,最终用于蛋白质折叠实验。胰蛋白酶消化后再用脯氨酸特异性内肽酶消化,有助于明确该衍生物中二硫键配对和修饰残基的归属。三硫键溶菌酶(3SS -溶菌酶)在其最适pH值5.5时表现出几乎完全的酶活性。在pH 3.6时,通过圆二色光谱(CD光谱)显示3SS -溶菌酶衍生物和未修饰的溶菌酶是相同的。免疫化学结合试验表明,通过断裂和封闭Cys6和Cys127之间的二硫键,溶菌酶的构象主要仅在局部受到扰动。3SS -溶菌酶和未修饰的溶菌酶在pH 2.0时均表现出可逆的热诱导转变,但在相同条件下,3SS -溶菌酶的熔点(Tm)为18.9℃,比天然溶菌酶低34℃。在pH 2.0和35℃下,如果任意假定3SS -溶菌酶和未修饰溶菌酶折叠形式的构象化学势为0.0千卡/摩尔,则从未修饰溶菌酶变性形式的转变曲线确定其变性形式的构象化学势比3SS -溶菌酶变性形式高约6.7千卡/摩尔。然而,计算由于Cys6 - Cys127二硫键断裂导致的变性3SS -溶菌酶理论环熵的增加,得到的构象化学势差值仅为5.4千卡/摩尔。这表明,除了熵成分外,还存在约1.3千卡/摩尔的焓对构象化学势差值有贡献。因此,可以得出结论,相对于未修饰的溶菌酶,Cys6和Cys127之间二硫键的还原和封闭主要通过增加其链熵来稳定变性构象,从而使3SS -溶菌酶不稳定。