Department of Chemistry, KU Leuven, Leuven, Belgium.
Rega Institute, KU Leuven, Leuven, Belgium.
Protein Sci. 2020 Dec;29(12):2375-2386. doi: 10.1002/pro.3961. Epub 2020 Oct 16.
The β-propeller fold is adopted by a sequentially diverse family of repeat proteins with apparent rotational symmetry. While the structure is mostly stabilized by hydrophobic interactions, an additional stabilization is provided by hydrogen bonds between the N-and C-termini, which are almost invariably part of the same β-sheet. This feature is often referred to as the "Velcro" closure. The positioning of the termini within a blade is variable and depends on the protein family. In order to investigate the influence of this location on protein structure, folding and stability, we created different circular permutants, and a circularized version, of the designer propeller protein named Pizza. This protein is perfectly symmetrical, possessing six identical repeats. While all mutants adopt the same structure, the proteins lacking the "Velcro" closure were found to be significantly less resistant to thermal and chemical denaturation. This could explain why such proteins are rarely observed in nature. Interestingly the most common "Velcro" configuration for this protein family was not the most stable among the Pizza variants tested. The circularized version shows dramatically improved stability, which could have implications for future applications.
β-发夹折叠被一系列具有明显旋转对称性的重复蛋白家族采用。虽然结构主要通过疏水相互作用稳定,但 N 和 C 末端之间的氢键提供了额外的稳定性,这些氢键几乎总是同一β-折叠的一部分。这个特征通常被称为“魔术贴”闭合。在叶片内,末端的位置是可变的,取决于蛋白质家族。为了研究这种位置对蛋白质结构、折叠和稳定性的影响,我们创建了不同的环移突变体和一种名为 Pizza 的设计性螺旋蛋白的环状版本。这种蛋白质是完全对称的,有六个相同的重复。虽然所有的突变体都采用相同的结构,但缺乏“魔术贴”闭合的蛋白质被发现对热和化学变性的抵抗力明显降低。这可以解释为什么这种蛋白质在自然界中很少被观察到。有趣的是,对于这种蛋白质家族来说,最常见的“魔术贴”结构并不是测试的 Pizza 变体中最稳定的。环状版本显示出显著改善的稳定性,这可能对未来的应用有影响。