School of Chemistry, Raymond and Beverly Sackler Faculty of Exact Sciences, Tel Aviv University, Tel Aviv, 69978, Israel.
Angew Chem Int Ed Engl. 2024 Jan 25;63(5):e202317511. doi: 10.1002/anie.202317511. Epub 2023 Dec 22.
Site-selective functionalization strategies are in high demand to prepare well-defined homogeneous proteins for basic research and biomedical applications. In this regard, cysteine-based reactions have enabled a broad set of transformations to produce modified proteins for various applications. However, these approaches were mainly employed to modify a single reactive site with a specific transformation. Achieving site selectivity or multiple transformations, essential for preparing complex biomolecules, remains challenging. Herein we demonstrate the power of combining palladium(II)-mediated C-S bond formation and C-S bond cleavage reactions to selectively edit desired cysteine sites in complex and uniquely modified proteins. We developed an orthogonal palladium(II) strategy for rapid and effective diversification of multiple cysteine sites (3-6 residues) with various transformations. Importantly, we employed our approach to prepare 10 complex analogues, including modified, stapled, and multimeric proteins on a milligram scale. Furthermore, we also synthesized a focused library of stabilized artificial transcription factors that displayed enhanced stability and potent DNA binding activity. Our approach enables rapid and effective protein editing and opens new avenues to engineer new biomolecules for fundamental research and therapeutic applications.
为基础研究和生物医学应用制备具有明确均一性的蛋白质,对选择性功能化策略的需求很高。在这方面,基于半胱氨酸的反应已经实现了广泛的转化,从而为各种应用生产修饰蛋白。然而,这些方法主要用于用特定的转化修饰单个反应性位点。实现用于制备复杂生物分子的位点选择性或多种转化仍然具有挑战性。在此,我们展示了结合钯 (II) 介导的 C-S 键形成和 C-S 键断裂反应来选择性编辑复杂和独特修饰的蛋白质中所需半胱氨酸位点的能力。我们开发了一种正交钯 (II) 策略,可快速有效地多样化具有各种转化的多个半胱氨酸位点(3-6 个残基)。重要的是,我们采用该方法在毫克级规模上制备了 10 种复杂类似物,包括修饰、订书钉和多聚体蛋白。此外,我们还合成了一个稳定的人工转录因子的聚焦文库,该文库显示出增强的稳定性和强大的 DNA 结合活性。我们的方法能够实现快速有效的蛋白质编辑,并为基础研究和治疗应用工程新的生物分子开辟了新途径。