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Photocrosslinking of cDNA Display Molecules with Their Target Proteins as a New Strategy for Peptide Selection

机译:CDNA展示CDNA展示分子的光电区作为靶蛋白作为肽选择的新策略

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摘要

Binding peptides for given target molecules are often selected in vitro during drug discovery and chemical biology research. Among several display technologies for this purpose, complementary DNA (cDNA) display (a covalent complex of a peptide and its encoding cDNA linked via a specially designed puromycin-conjugated DNA) is unique in terms of library size, chemical stability, and flexibility of modification. However, selection of cDNA display libraries often suffers from false positives derived from non-specific binding. Although rigorous washing is a straightforward solution, this also leads to the loss of specific binders with moderate affinity because the interaction is non-covalent. To address this issue, herein, we propose a method to covalently link cDNA display molecules with their target proteins using light irradiation. We designed a new puromycin DNA linker that contains a photocrosslinking nucleic acid and prepared cDNA display molecules using the linker. Target proteins were also labeled with a short single-stranded DNA that should transiently hybridize with the linker. Upon ultraviolet (UV) light irradiation, cDNA display molecules encoding correct peptide aptamers made stable crosslinked products with the target proteins in solution, while display molecules encoding control peptides did not. Although further optimization and improvement is necessary, the results pave the way for efficient selection of peptide aptamers in multimolecular crowding biosystems.
机译:在药物发现和化学生物学研究期间,通常在体外选择给定靶分子的结合肽。在用于此目的的几种显示技术中,互补DNA(cDNA)显示器(肽的共价络合物及其通过专门设计的嘌呤霉素 - 缀合的DNA连接的编码cDNA)是在文库尺寸,化学稳定性和改性的灵活性方面是独一无二的。然而,CDNA显示文库的选择通常存在源自非特异性结合的误报。虽然严格的洗涤是一种直接的解决方案,但这也导致具有中等亲和力的特异性粘合剂的丧失,因为相互作用是非共价的。为了解决这个问题,在此,我们提出了一种使用光照射与其靶蛋白共价链接CDNA显示分子的方法。我们设计了一种新的嘌呤霉素DNA接头,其含有光关键核酸并使用接头制备的cDNA显示分子。靶蛋白也用短的单链DNA标记,所述短链DNA应瞬时与接头杂交。在紫外(UV)光照射时,编码正确肽适体的cDNA显示分子使溶液中的靶蛋白质稳定交联产物,同时编码对照肽的显示分子没有。尽管需要进一步优化和改进,但结果为有效选择多分子挤在多分子拥挤生物系统中的肽适体选择。

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