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Rational design of a water-soluble lipid-compatible fluorescent probe for Cu(i) with sub-part-per-trillion sensitivity

机译:理性设计的水溶性脂质兼容的Cu(i)荧光探针其灵敏度低于万亿分之一

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摘要

Fluorescence probes represent an attractive solution for the detection of the biologically important Cu(i) cation; however, achieving a bright, high-contrast response has been a challenging goal. Concluding from previous studies on pyrazoline-based fluorescent Cu(i) probes, the maximum attainable fluorescence contrast and quantum yield were limited due to several non-radiative deactivation mechanisms, including ternary complex formation, excited state protonation, and colloidal aggregation in aqueous solution. Through knowledge-driven optimization of the ligand and fluorophore architectures, we overcame these limitations in the design of CTAP-3, a Cu(i)-selective fluorescent probe offering a 180-fold fluorescence enhancement, 41% quantum yield, and a limit of detection in the sub-part-per-trillion concentration range. In contrast to lipophilic Cu(i)-probes, CTAP-3 does not aggregate and interacts only weakly with lipid bilayers, thus maintaining a high contrast ratio even in the presence of liposomes.
机译:荧光探针是检测生物学上重要的Cu(i)阳离子的一种有吸引力的解决方案。但是,实现明亮,高对比度的响应是一个具有挑战性的目标。从吡唑啉基荧光Cu(i)探针的先前研究得出的结论,由于几种非辐射失活机理,包括三元络合物的形成,激发态质子化和水溶液中的胶体聚集,限制了可获得的最大荧光对比度和量子产率。通过知识驱动的配体和荧光团架构优化,我们克服了CTAP-3设计中的这些局限性,CTAP-3是一种Cu(i)选择性荧光探针,可提供180倍的荧光增强,41%的量子产率以及在万亿分之一以下的浓度范围内进行检测。与亲脂性Cu(i)探针相反,CTAP-3不会聚集并且仅与脂质双层相互作用很弱,因此即使在脂质体存在的情况下也能保持较高的对比率。

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