Department of Chemistry, Boston College , 2609 Beacon Street, Chestnut Hill, Massachusetts 02467, United States.
J Am Chem Soc. 2017 Jan 18;139(2):871-878. doi: 10.1021/jacs.6b11115. Epub 2017 Jan 3.
Bioorthogonal conjugation chemistry has enabled the development of tools for the interrogation of complex biological systems. Although a number of bioorthogonal reactions have been documented in literature, they are less ideal for one or several reasons including slow kinetics, low stability of the conjugated product, requirement of toxic catalysts, and side reactions with unintended biomolecules. Herein we report a fast (>10 M s) and bioorthogonal conjugation reaction that joins semicarbazide to an aryl ketone or aldehyde with an ortho-boronic acid substituent. The boronic acid moiety greatly accelerates the initial formation of a semicarbazone conjugate, which rearranges into a stable diazaborine. The diazaborine formation can be performed in blood serum or cell lysates with minimal interference from biomolecules. We further demonstrate that application of this conjugation chemistry enables facile labeling of bacteria. A synthetic amino acid D-AB3, which presents a 2-acetylphenylboronic acid moiety as its side chain, was found to incorporate into several bacterial species through cell wall remodeling, with particularly high efficiency for Escherichia coli. Subsequent D-AB3 conjugation to a fluorophore-labeled semicarbazide allows robust detection of this bacterial pathogen in blood serum.
生物正交偶联化学使得用于研究复杂生物系统的工具得以发展。尽管文献中已经记载了许多生物正交反应,但由于某些原因,它们不太理想,包括反应动力学较慢、共轭产物稳定性差、需要有毒催化剂以及与非预期生物分子发生副反应。在此,我们报告了一种快速(>10 M s)且生物正交的偶联反应,该反应使半缩醛胺与带有邻位硼酸取代基的芳基酮或醛结合。硼酸部分极大地加速了半缩醛胺共轭物的初始形成,该共轭物重排为稳定的二氮硼烷。二氮硼烷的形成可以在血清或细胞裂解物中进行,生物分子的干扰最小。我们进一步证明,这种偶联化学的应用可以实现细菌的简便标记。一种合成氨基酸 D-AB3,其侧链为 2-乙酰基苯硼酸部分,通过细胞壁重塑被发现能够进入几种细菌,对于大肠杆菌尤其有效。随后,将荧光标记的半缩醛胺与 D-AB3 偶联,可以在血清中稳健地检测到这种细菌病原体。