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基于计算表位支架设计水溶性CD20抗原

Design of a Water-Soluble CD20 Antigen with Computational Epitope Scaffolding.

作者信息

Yao Zhiyuan, Kuhlman Brian

机构信息

Department of Pharmacology, University of North Carolina School of Medicine, Chapel Hill, North Carolina, USA.

Department of Biochemistry and Biophysics, University of North Carolina School of Medicine, Chapel Hill, North Carolina, USA.

出版信息

bioRxiv. 2024 Dec 6:2024.12.05.627087. doi: 10.1101/2024.12.05.627087.

Abstract

The poor solubility of integral membrane proteins in water frequently hinders studies with these proteins, presenting challenges for structure determination and binding screens. For instance, the transmembrane protein CD20, which is an important target for treating B-cell malignancies, is not soluble in water and cannot be easily screened against potential protein binders with techniques like phage display or yeast display. Here, we use protein design to create a water-soluble mimic of the CD20 dimer ("soluble CD20"). Soluble CD20 replaces the central transmembrane helix of CD20 with a water-soluble helix that dimerizes to form a coiled coil that structurally matches the dimer interface of native CD20 and presents the central extracellular loop of CD20 in a binding competent conformation. Unlike peptides derived from CD20, soluble CD20 binds tightly to monoclonal antibodies that recognize quaternary epitopes on the extracellular face of CD20. We demonstrate that soluble CD20 is easy to produce, remains folded above 60°C, and is compatible with binder screening via yeast display. Our results highlight the ability of computational protein design to scaffold conformational epitopes from membrane proteins for use in binding and protein engineering studies.

摘要

整合膜蛋白在水中的低溶解度常常阻碍对这些蛋白的研究,给结构测定和结合筛选带来挑战。例如,跨膜蛋白CD20是治疗B细胞恶性肿瘤的重要靶点,它不溶于水,无法用噬菌体展示或酵母展示等技术轻易筛选潜在的蛋白结合物。在此,我们利用蛋白质设计创建了CD20二聚体的水溶性模拟物(“可溶性CD20”)。可溶性CD20用一个水溶性螺旋取代了CD20的中央跨膜螺旋,该螺旋二聚化形成一个卷曲螺旋,其结构与天然CD20的二聚体界面相匹配,并以具有结合活性的构象呈现CD20的中央细胞外环。与源自CD20的肽不同,可溶性CD20与识别CD20细胞外表面四级表位的单克隆抗体紧密结合。我们证明可溶性CD20易于生产,在60°C以上仍能保持折叠状态,并且与通过酵母展示进行的结合物筛选兼容。我们的结果突出了计算蛋白质设计从膜蛋白构建构象表位以用于结合和蛋白质工程研究的能力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6f9b/11643043/db5d6f0eb4bc/nihpp-2024.12.05.627087v1-f0001.jpg

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