Neumann Kevin, Vujinovic Alex, Kamara Saidu, Zwicky André, Baldauf Simon, Bode Jeffrey W
Laboratorium für Organische Chemie, Department of Chemistry and Applied Biosciences, ETH Zürich Zürich 8093 Switzerland
RSC Chem Biol. 2023 Jan 24;4(4):292-299. doi: 10.1039/d2cb00234e. eCollection 2023 Apr 5.
Low-density lipoprotein receptor class A domains (LA modules) are common ligand-binding domains of transmembrane receptors of approximately 40 amino acids that are involved in several cellular processes including endocytosis of extracellular targets. Due to their wide-ranging function and distribution among different transmembrane receptors, LA modules are of high interest for therapeutic applications. However, the efficient chemical synthesis of LA modules and derivatives is hindered by complications, many arising from the high abundance of aspartic acid and consequent aspartimide formation. Here, we report a robust, efficient and general applicable chemical synthesis route for accessing such LA modules, demonstrated by the synthesis and folding of the LA3 and LA4 modules of the low-density lipoprotein receptor, as well as a heterodimeric LA3-LA4 constructed by chemical ligation. The synthesis of the aspartic acid-rich LA domain peptides is made possible by the use of cyanopyridiniumylides (CyPY) - reported here for the first time - as a masking group for carboxylic acids. We show that cyanopyridiniumylide masked aspartic acid monomers are readily available building blocks for solid phase peptide synthesis and successfully suppress aspartimide formation. Unlike previously reported ylide-based carboxylic acid protecting groups, CyPY protected aspartic acids are converted to the free carboxylic acid by acidic hydrolysis and are compatible with all common residues and protecting groups. The chemical synthesis of Cys- and Asp-rich LA modules enables new access to a class of difficult to provide, but promising protein domains.
低密度脂蛋白受体A类结构域(LA模块)是跨膜受体常见的配体结合结构域,约含40个氨基酸,参与包括细胞外靶点内吞作用在内的多种细胞过程。由于其广泛的功能以及在不同跨膜受体中的分布,LA模块在治疗应用方面备受关注。然而,LA模块及其衍生物的高效化学合成受到诸多复杂因素的阻碍,其中许多问题源于天冬氨酸含量高以及随之而来的天冬酰胺形成。在此,我们报道了一种用于合成此类LA模块的稳健、高效且普遍适用的化学合成路线,通过低密度脂蛋白受体的LA3和LA4模块的合成与折叠,以及通过化学连接构建的异源二聚体LA3 - LA4得以证明。富含天冬氨酸的LA结构域肽的合成通过使用氰基吡啶叶立德(CyPY)(本文首次报道)作为羧酸的掩蔽基团得以实现。我们表明,氰基吡啶叶立德掩蔽的天冬氨酸单体是固相肽合成中易于获得的构建单元,并成功抑制了天冬酰胺的形成。与先前报道的基于叶立德的羧酸保护基团不同,CyPY保护的天冬氨酸通过酸性水解可转化为游离羧酸,并且与所有常见残基和保护基团兼容。富含半胱氨酸和天冬氨酸的LA模块的化学合成使得能够新获得一类难以提供但很有前景的蛋白质结构域。