In-brain synthesis of receptor-based protease sensors by coupling ligand-directed chemistry and click chemistry

IF 20 0 CHEMISTRY, MULTIDISCIPLINARY
Seiji Sakamoto, Kazuki Shiraiwa, Mengchu Wang, Mamoru Ishikawa, Hiroshi Nonaka, Itaru Hamachi
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Abstract

The chemical modification of natural proteins in living systems is highly desirable as cutting-edge research at the chemistry–biology interface. Recent advances in bio-orthogonal protein modification have enabled the production of chemically functionalized proteins in cultured cell systems. However, a limited number of methods are applicable in vivo because of the complexity of the three-dimensional constructs of living systems with diverse, heterogeneous cell populations and flow systems filled with tissue fluids. Here we report a genetic-engineering-free method to modify receptor proteins with various probes in the living mouse brain by combining in-brain ligand-directed chemistry with bio-orthogonal click chemistry, and propose a chemical guideline for the reaction design. The rapid and selective tethering of a set of fluorescent peptides to AMPA-type glutamate receptors allowed the synthesis of receptor-based fluorescent sensors. These probes enabled mapping of the activity of matrix metalloproteinase-9 proximal to AMPA-type glutamate receptors in the living brain to be realized with high spatial resolution. The complexity of living systems makes methods for chemically functionalizing proteins in vivo rare. Here, a genetic-engineering-free method to modify receptor proteins with various probes in the live mouse brain is reported by combining ligand-directed chemistry with click chemistry. This method enables the synthesis of receptor-based fluorescent sensors.

Abstract Image

结合配体导向化学和点击化学在脑内合成基于受体的蛋白酶传感器
生物系统中天然蛋白质的化学修饰是化学-生物学界面的前沿研究。生物正交蛋白修饰的最新进展使得在培养细胞系统中产生化学功能化蛋白成为可能。然而,由于具有多样化、异质细胞群和充满组织液的流动系统的生命系统的三维结构的复杂性,有限数量的方法适用于体内。本文报道了一种无需基因工程的方法,将脑内配体定向化学与生物正交点击化学相结合,在活体小鼠脑内用各种探针修饰受体蛋白,并提出了反应设计的化学指导原则。一组荧光肽与ampa型谷氨酸受体的快速和选择性捆绑使得基于受体的荧光传感器的合成成为可能。这些探针能够以高空间分辨率绘制离ampa型谷氨酸受体近端的基质金属蛋白酶-9活性。生命系统的复杂性使得体内化学功能化蛋白质的方法非常罕见。本文报道了一种无需基因工程的方法,通过结合配体定向化学和点击化学,在活体小鼠大脑中使用各种探针修饰受体蛋白。这种方法可以合成基于受体的荧光传感器。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
8.10
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