生物正交化学
点击化学
结合
化学
蛋白质化学
组合化学
生物结合
翻译后修饰
环加成
工具箱
纳米技术
生物化学
计算机科学
催化作用
酶
材料科学
程序设计语言
数学分析
数学
作者
Mathis Baalmann,Laura Neises,Sebastian Bitsch,Hendrik Schneider,Lukas Deweid,Philipp Werther,Nadja Ilkenhans,Martin Wolfring,Michael J. Ziegler,Jonas Wilhelm,Harald Kolmar,Richard Wombacher
标识
DOI:10.1002/anie.201915079
摘要
Abstract Bioorthogonal chemistry holds great potential to generate difficult‐to‐access protein–protein conjugate architectures. Current applications are hampered by challenging protein expression systems, slow conjugation chemistry, use of undesirable catalysts, or often do not result in quantitative product formation. Here we present a highly efficient technology for protein functionalization with commonly used bioorthogonal motifs for Diels–Alder cycloaddition with inverse electron demand (DA inv ). With the aim of precisely generating branched protein chimeras, we systematically assessed the reactivity, stability and side product formation of various bioorthogonal chemistries directly at the protein level. We demonstrate the efficiency and versatility of our conjugation platform using different functional proteins and the therapeutic antibody trastuzumab. This technology enables fast and routine access to tailored and hitherto inaccessible protein chimeras useful for a variety of scientific disciplines. We expect our work to substantially enhance antibody applications such as immunodetection and protein toxin‐based targeted cancer therapies.
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