Department of Chemistry, Fordham University, 441 E. Fordham Rd., Bronx, New York 10458, United States.
ACS Chem Biol. 2023 Jul 21;18(7):1480-1486. doi: 10.1021/acschembio.3c00268. Epub 2023 Jun 30.
Disulfide bonds form covalent bonds between distal regions of peptides and proteins to dramatically impact their folding, stability, and oligomerization. Given the prevalence of disulfide bonds in many natural products, considerable effort has been invested in site-selective disulfide bond formation approaches to control the folding of chemically synthesized peptides and proteins. Here, we show that the careful choice of thiol oxidation conditions can lead to monomeric or dimeric species from fully deprotected linear bisthiol peptides. Starting from a p53-derived peptide, we found that oxidation under aqueous (nondenaturing) conditions produces antiparallel dimers with enhanced α-helical character, while oxidation under denaturing conditions promotes formation of a nonhelical intramolecular disulfide species. Examination across peptide variants suggests that intramolecular disulfide formation is robust across diverse peptide sequences, while dimerization is sensitive to both the α-helical folding of the linear peptide and aromatic residues at the dimerization interface. All disulfide species are more resistant to protease degradation than the linear peptide but are easily reduced to restore the initial bisthiol peptide. Both disulfide formation approaches are compatible with α-helix-stabilizing cross-linkers. These results provide an approach for using disulfide bonds to control peptide folding and oligomerization to better understand how folding influences interactions with diverse molecular targets.
二硫键在肽和蛋白质的远端区域形成共价键,从而显著影响它们的折叠、稳定性和寡聚化。鉴于二硫键在许多天然产物中的普遍性,人们投入了相当大的努力来开发选择性形成二硫键的方法,以控制化学合成肽和蛋白质的折叠。在这里,我们表明,仔细选择硫醇氧化条件可以从完全去保护的线性双硫醇肽得到单体或二聚体。从一个 p53 衍生的肽开始,我们发现,在水相(非变性)条件下氧化会产生具有增强的α-螺旋特征的反平行二聚体,而在变性条件下氧化则会促进形成无规卷曲的分子内二硫键。对肽变体的研究表明,分子内二硫键的形成在不同的肽序列中是稳健的,而二聚化对线性肽的α-螺旋折叠和二聚化界面上的芳香族残基都很敏感。所有的二硫键形式都比线性肽对蛋白酶降解更有抵抗力,但很容易被还原以恢复初始的双硫醇肽。这两种二硫键形成方法都与α-螺旋稳定交联剂兼容。这些结果为利用二硫键控制肽折叠和寡聚化提供了一种方法,以更好地了解折叠如何影响与各种分子靶标的相互作用。