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Engineering a nanolab for the determination of lysosomal nitric oxide by the rational design of a pH-activatable fluorescent probe

机译:通过合理设计可pH激活的荧光探针来设计一个纳米实验室以测定溶酶体一氧化氮

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摘要

Nitric oxide (NO) is often involved in many different physiological processes including the regulation of lysosomal functions. However, it remains a great challenge to explore the variations of NO levels in lysosomes, limiting the understanding behind its biological functions in cellular signaling pathways and various diseases. Herein, a pH-activatable fluorescent probe, >Rhod-H-NO, was designed and synthesized for the determination of lysosomal NO, in which the activation response model is beneficial towards getting accurate biological information. To ensure that >Rhod-H-NO can accumulate effectively and exist stably in lysosomes without interference and degradation from other active species, >Rhod-H-NO was engineered into the nanopores of mesoporous silica nanoparticles (MSNs) with β-cyclodextrin (β-CD) as the gatekeeper to obtain a nanolab. The nanolab was successfully applied to detect lysosomal NO in living cells and in vivo with high time and spatial resolution. This nanolab could serve as an excellent molecular tool to exploit and elucidate the function of NO at sub-cellular levels.
机译:一氧化氮(NO)通常参与许多不同的生理过程,包括溶酶体功能的调节。然而,探索溶酶体中NO水平的变化仍然是一个巨大的挑战,限制了其在细胞信号传导途径和各种疾病中生物学功能的背后的理解。本文设计并合成了一种pH可激活的荧光探针> Rhod-H-NO ,用于测定溶酶体NO,其中激活反应模型有助于获得准确的生物学信息。为了确保> Rhod-H-NO 能够有效地积累并稳定地存在于溶酶体中,而不会受到其他活性物种的干扰和降解,> Rhod-H-NO 被工程化到了纳米粒的以β-环糊精(β-CD)为门将的介孔二氧化硅纳米粒子(MSNs)获得纳米实验室。纳诺实验室已成功应用于高时间和空间分辨率的活细胞和体内溶酶体NO检测。该纳米实验室可以作为开发和阐明亚细胞水平一氧化氮功能的出色分子工具。

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