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可视化内皮细胞中的过氧亚硝酸盐通量揭示了脑血管损伤的动态进展。

Visualizing peroxynitrite fluxes in endothelial cells reveals the dynamic progression of brain vascular injury.

机构信息

ZJU-ENS Joint Laboratory of Medicinal Chemistry, College of Pharmaceutical Sciences, Zhejiang University , Hangzhou 310058, China.

Institute of Pharmacology and Toxicology, College of Pharmaceutical Sciences, Zhejiang University , Hangzhou 310058, China.

出版信息

J Am Chem Soc. 2015 Sep 30;137(38):12296-303. doi: 10.1021/jacs.5b06865. Epub 2015 Sep 18.

Abstract

Accumulating evidence suggests that formation of peroxynitrite (ONOO(-)) in the cerebral vasculature contributes to the progression of ischemic damage, while the underlying molecular mechanisms remain elusive. To fully understand ONOO(-) biology, efficient tools that can realize the real-time tracing of endogenous ONOO(-) fluxes are indispensable. While a few ONOO(-) fluorescent probes have been reported, direct visualization of ONOO(-) fluxes in the cerebral vasculature of live mice remains a challenge. Herein, we present a fluorescent switch-on probe (NP3) for ONOO(-) imaging. NP3 exhibits good specificity, fast response, and high sensitivity toward ONOO(-) both in vitro and in vivo. Moreover, NP3 is two-photon excitable and readily blood-brain barrier penetrable. These desired photophysical and pharmacokinetic properties endow NP3 with the capability to monitor brain vascular ONOO(-) generation after injury with excellent temporal and spatial resolution. As a proof of concept, NP3 has enabled the direct visualization of neurovascular ONOO(-) formation in ischemia progression in live mouse brain by use of two-photon laser scanning microscopy. Due to these favorable properties, NP3 holds great promise for visualizing endogenous peroxynitrite fluxes in a variety of pathophysiological progressions in vitro and in vivo.

摘要

越来越多的证据表明,过氧亚硝酸盐(ONOO(-))在脑血管中的形成导致了缺血性损伤的进展,而潜在的分子机制仍不清楚。为了全面了解 ONOO(-)的生物学特性,必需有能够实时追踪内源性 ONOO(-)流量的有效工具。虽然已经报道了一些 ONOO(-)荧光探针,但直接可视化活小鼠脑血管中的 ONOO(-)流量仍然是一个挑战。在这里,我们提出了一种用于 ONOO(-)成像的荧光开关探针(NP3)。NP3 在体外和体内对 ONOO(-)均表现出良好的特异性、快速响应和高灵敏度。此外,NP3 可双光子激发,且易于穿透血脑屏障。这些理想的光物理和药代动力学特性使 NP3 能够在损伤后以优异的时空分辨率监测大脑血管中 ONOO(-)的生成。作为一个概念验证,NP3 已经通过双光子激光扫描显微镜直接可视化了活鼠脑中缺血进展过程中的神经血管 ONOO(-)的形成。由于这些优良的性质,NP3 有望在体外和体内的各种病理生理进展中可视化内源性过氧亚硝酸盐流量。

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