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Protein stabilization by tuning the steric restraint at the reverse turn

机译:通过调节反向的空间约束来稳定蛋白质

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摘要

Reverse turns are solvent-exposed motifs in proteins that are crucial in nucleating β-sheets and drive the protein folding. The solvent-exposed nature makes reverse turns more amenable to chemical modifications than α-helices or β-sheets towards modulating the stability of re-engineered proteins. Here, we utilize van der Waals repulsive forces in tuning the steric restraint at the reverse turn. The steric restraint induced upon N-methylation of the i+1–i+2 amide bond at the reverse turn results in well-folded and stable β-sheets in aqueous solution at room temperature. The developed superactive turn inducing motif is tolerant to a wide variety of functional groups present on coded amino acids making the designed turn fully compatible with bioactive loops in proteins. We demonstrate that the steric restraint and the functional groups at the reverse turn act in synergy to modulate the folding of re-engineered β-sheets. Introduction of the turn motifs onto a three-stranded β-sheet protein, Pin 1 WW domain, resulted in various analogs showing a cooperative two-state transition with thermal stability (TM) ranging from 62 °C to 82 °C. Despite modulating the stability of Pin 1 variants by ∼2.8 kcal mol–1 (ΔΔGf), the native fold in all the protein variants was found to be unperturbed. This structural stability is brought about by conformational preorganization at the engineered reverse turn that results in strong intramolecular hydrogen bonds along the three dimensional structure of the protein. Thus, this simple loop engineering strategy via two amino acid substitution provides us a “toolkit” to modulate the stability of β-sheet containing peptides and proteins in aqueous solution that will greatly expand the scope of de novo protein and foldamer design.
机译:反向转折是蛋白质中溶剂暴露的基序,这些基序在成核β-折叠和驱动蛋白质折叠中至关重要。与α-螺旋或β-折叠片相比,暴露于溶剂的性质使得反向翻转更易于进行化学修饰,从而调节了重新设计的蛋白质的稳定性。在这里,我们利用范德华排斥力来调整反向转弯处的空间约束。在室温下,i + 1–i + 2酰胺键的N甲基化会引起空间位阻,导致水溶液中折叠良好且稳定的β-折叠层。所开发的超活性转弯诱导基序可耐受编码氨基酸上存在的多种功能基团,从而使设计的转弯与蛋白质中的生物活性环完全兼容。我们证明,空间约束和反向的官能团协同作用以调节重新设计的β-折叠的折叠。将回旋基序引入三链β-折叠蛋白Pin 1 WW结构域后,产生了多种类似物,显示了合作的两态跃迁,其热稳定性(TM)为62°C至82°C。尽管通过约2.8 kcal mol -1 (ΔΔGf)调节了Pin 1变体的稳定性,但发现所有蛋白质变体中的天然折叠均不受干扰。这种结构稳定性是通过在工程逆向构象中进行构象预组织而实现的,该构象预组织沿蛋白质的三维结构产生了强大的分子内氢键。因此,这种通过两个氨基酸取代的简单环工程策略为我们提供了一种“工具包”,用于调节水溶液中含有β-折叠的肽和蛋白质的稳定性,这将大大扩展从头蛋白质和折叠剂设计的范围。

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