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构象缓冲是无规则蛋白区域功能选择的基础。

Conformational buffering underlies functional selection in intrinsically disordered protein regions.

机构信息

Instituto de Investigaciones Biotecnológicas (IIBiO-CONICET), Universidad Nacional de San Martín, Buenos Aires, Argentina.

Fundación Instituto Leloir e Instituto de Investigaciones Bioquímicas (IIB-CONICET), Ciudad Autónoma de Buenos Aires, Buenos Aires, Argentina.

出版信息

Nat Struct Mol Biol. 2022 Aug;29(8):781-790. doi: 10.1038/s41594-022-00811-w. Epub 2022 Aug 10.

Abstract

Many disordered proteins conserve essential functions in the face of extensive sequence variation, making it challenging to identify the mechanisms responsible for functional selection. Here we identify the molecular mechanism of functional selection for the disordered adenovirus early gene 1A (E1A) protein. E1A competes with host factors to bind the retinoblastoma (Rb) protein, subverting cell cycle regulation. We show that two binding motifs tethered by a hypervariable disordered linker drive picomolar affinity Rb binding and host factor displacement. Compensatory changes in amino acid sequence composition and sequence length lead to conservation of optimal tethering across a large family of E1A linkers. We refer to this compensatory mechanism as conformational buffering. We also detect coevolution of the motifs and linker, which can preserve or eliminate the tethering mechanism. Conformational buffering and motif-linker coevolution explain robust functional encoding within hypervariable disordered linkers and could underlie functional selection of many disordered protein regions.

摘要

许多无序蛋白质在面临广泛的序列变异时仍能保持基本功能,这使得确定导致功能选择的机制变得具有挑战性。在这里,我们确定了无序腺病毒早期基因 1A(E1A)蛋白功能选择的分子机制。E1A 与宿主因子竞争结合视网膜母细胞瘤(Rb)蛋白,从而破坏细胞周期调控。我们表明,由超可变无序连接子连接的两个结合基序驱动皮摩尔亲和力 Rb 结合和宿主因子置换。氨基酸序列组成和序列长度的补偿性变化导致在一大类 E1A 连接子中保持最佳连接。我们将这种补偿机制称为构象缓冲。我们还检测到基序和连接子的共进化,这可以保留或消除连接机制。构象缓冲和基序-连接子的共进化解释了超可变无序连接子中强大的功能编码,并可能为许多无序蛋白质区域的功能选择提供基础。

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