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高度保守的VH/VL氢键相互作用对单链抗体可变区折叠稳定性和重折叠效率的贡献。

Contributions of a highly conserved VH/VL hydrogen bonding interaction to scFv folding stability and refolding efficiency.

作者信息

Tan P H, Sandmaier B M, Stayton P S

机构信息

Department of Bioengineering, University of Washington, Seattle 98195, USA.

出版信息

Biophys J. 1998 Sep;75(3):1473-82. doi: 10.1016/S0006-3495(98)74066-4.

Abstract

The assembly of single-chain Fv (scFv) antibody fragments, consisting of an interconnected variable heavy chain (VH) and variable light chain (VL), is a cooperative process that requires coupled folding and domain association. We report here an initial investigation of VH/VL domain-domain assembly with a site-directed mutagenesis study that probes a highly conserved VH/VL hydrogen bonding interaction. Gln168 of the S5 scFv (Kabat VH 39) is absolutely conserved in 95% of all VH, and Gln44 (Kabat VL 38) is found in 94% of all kappa VL (Glx in 95% of all lambda VL). These side chains form two hydrogen bonds in head-to-tail alignment across the VH/VL interface. Double mutant cycles at Gln168 and Gln44 were constructed to first investigate their contribution to thermodynamic folding stability, second to investigate whether stability can be improved, and third to determine whether refolding efficiencies are affected by mutations at these positions. The results demonstrate that the Gln168-Gln44 interaction is not a key determinant of S5 scFv folding stability, as sequential modification to alanine has no significant effect on the free energy of folding. Several mutations that alter the glutamines to methionine or charged amino acids significantly increase the thermodynamic stability by increasing the m(g) associated with the unfolding isotherm. These effects are hypothesized to arise largely from an increase in the VH/VL association free energy that leads to tighter coupling between domain-domain association and folding. All of the mutants also display a reduced antigen binding affinity. Single and double methionine mutants also displayed significant increases in refolding efficiency of 2.4- to 3-fold over the native scFv, whereas the double alanine/methionine mutants displayed moderate 1.9- to 2.4-fold enhancement. The results suggest that reengineering the VH/VL interface could be useful in improving the stability of single-chain antibodies, as Ala/Met mutations at these conserved positions increase the free energy of folding by 46% while minimally perturbing binding affinity. They also could be useful in improving scFv recovery from inclusion bodies as the mutations increase the refolding efficiency by more than twofold.

摘要

单链Fv(scFv)抗体片段由相互连接的重链可变区(VH)和轻链可变区(VL)组成,其组装是一个协同过程,需要折叠与结构域缔合相耦合。我们在此报告了一项针对VH/VL结构域-结构域组装的初步研究,该研究采用定点诱变方法,探究一种高度保守的VH/VL氢键相互作用。S5 scFv(Kabat编号VH 39)的Gln168在所有VH中95%绝对保守,Gln44(Kabat编号VL 38)在所有κ轻链可变区中94%存在(在所有λ轻链可变区中95%为Glx)。这些侧链在跨越VH/VL界面处以头对尾排列形成两个氢键。构建了Gln168和Gln44处的双突变循环,首先研究它们对热力学折叠稳定性的贡献,其次研究稳定性是否能得到改善,第三确定这些位置的突变是否影响重折叠效率。结果表明,Gln168 - Gln44相互作用不是S5 scFv折叠稳定性的关键决定因素,因为依次突变为丙氨酸对折叠自由能没有显著影响。几个将谷氨酰胺突变为甲硫氨酸或带电荷氨基酸的突变通过增加与解折叠等温线相关的m(g),显著提高了热力学稳定性。据推测,这些效应主要源于VH/VL缔合自由能的增加,导致结构域-结构域缔合与折叠之间的耦合更紧密。所有突变体的抗原结合亲和力也都降低。单甲硫氨酸和双甲硫氨酸突变体的重折叠效率也比天然scFv显著提高了2.4至3倍,而双丙氨酸/甲硫氨酸突变体则有适度的1.9至2.4倍增强。结果表明,对VH/VL界面进行重新设计可能有助于提高单链抗体的稳定性,因为在这些保守位置的丙氨酸/甲硫氨酸突变使折叠自由能增加了46%,同时对结合亲和力的干扰最小。它们也可能有助于提高从包涵体中回收scFv的效率,因为这些突变使重折叠效率提高了两倍多。

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