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Central C-C bonding increases optical and chemical stability of NIR fluorophores

机译:中央C-C键可提高NIR荧光团的光学和化学稳定性

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摘要

Functional near-infrared (NIR) fluorophores have played a major role in the recent advances in bioimaging. However, the optical and physicochemical stabilities of NIR fluorophores in the biological and physiological environment are still a challenge. Especially, the ether linkage on the meso carbon of heptamethine core is fragile when exposed to serum proteins or other amine-rich biomolecules. To solve such a structural limitation, a rigid carbon-carbon bond was installed onto the framework of ether-linked NIR fluorophores through Suzuki coupling. The robust fluorophores replaced as ZW800-1C and ZW800-3C displayed enhanced optical and chemical stability in various solvents and a 100% warm serum environment (>99%, 24 h). The biodistribution and clearance of C-C coupled ZW800 compounds were almost identical to the previously developed oxygen-substituted ZW800 compounds. When conjugated with a smallmolecule ligand, ZW800-1C maintained the identical stable form in warm serum (>98%, 24 h), while ZW800-1A hydrolyzed quickly after 4 h incubation (34%, 24 h).
机译:功能性近红外(NIR)荧光团在生物成像的最新进展中发挥了重要作用。然而,近红外荧光团在生物和生理环境中的光学和物理化学稳定性仍然是一个挑战。特别地,当暴露于血清蛋白或其他富含胺的生物分子时,七甲胺核心内消旋碳上的醚键易碎。为了解决这种结构限制,通过铃木偶联将刚性碳-碳键安装在醚连接的NIR荧光团的骨架上。取代为ZW800-1C和ZW800-3C的强大荧光团在各种溶剂和100%温暖的血清环境(> 99%,24小时)中显示出增强的光学和化学稳定性。 C-C偶联ZW800化合物的生物分布和清除率几乎与以前开发的氧取代ZW800化合物相同。当与小分子配体缀合时,ZW800-1C在温暖的血清中(> 98%,24小时)保持相同的稳定形式,而ZW800-1A在孵育4小时(34%,24小时)后迅速水解。

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