Institut Lavoisier de Versailles, CNRS, UVSQ, Université Paris-Saclay, 78035 Versailles, France.
Faculté de Médecine Simone Veil, Université de Versailles St Quentin, INSERM UMR U1173, 2 Avenue de la Source de la Bièvre, 78180 Montigny le Bretonneux, France.
Int J Mol Sci. 2020 Dec 3;21(23):9217. doi: 10.3390/ijms21239217.
Potential of hydrogen (pH) is one of the most relevant parameters characterizing aqueous solutions. In biology, pH is intrinsically linked to cellular life since all metabolic pathways are implicated into ionic flows. In that way, determination of local pH offers a unique and major opportunity to increase our understanding of biological systems. Whereas the most common technique to obtain these data in analytical chemistry is to directly measure potential between two electrodes, in biological systems, this information has to be recovered in-situ without any physical interaction. Based on their non-invasive optical properties, fluorescent pH-sensitive probe are pertinent tools to develop. One of the most notorious pH-sensitive probes is fluorescein. In addition to excellent photophysical properties, this fluorophore presents a pH-sensitivity around neutral and physiologic domains. This review intends to shed new light on the recent use of fluorescein as pH-sensitive probes for biological applications, including targeted probes for specific imaging, flexible monitoring of bacterial growth, and biomedical applications.
氢离子浓度(pH)是表征水溶液的最重要参数之一。在生物学中,pH 与细胞生命密切相关,因为所有代谢途径都涉及离子流。因此,确定局部 pH 值为我们提供了一个独特的、主要的机会,来加深对生物系统的理解。虽然在分析化学中获得这些数据最常见的技术是直接测量两个电极之间的电势,但在生物系统中,必须在不进行任何物理相互作用的情况下原位恢复这些信息。基于其非侵入性的光学特性,荧光 pH 敏感探针是开发的相关工具。最著名的 pH 敏感探针之一是荧光素。除了优异的光物理性质外,这种荧光团在中性和生理范围内具有 pH 敏感性。本文旨在对荧光素作为生物应用的 pH 敏感探针的最新用途进行综述,包括针对特定成像的靶向探针、细菌生长的灵活监测以及生物医学应用。