Department of Chemistry, Indian Institute of Science Education and Research Bhopal, Bhopal By-Pass Road, Bhauri, Bhopal 462066, Madhya Pradesh, India.
ACS Appl Bio Mater. 2022 Aug 15;5(8):3623-3648. doi: 10.1021/acsabm.2c00415. Epub 2022 Jul 14.
Deciphering the dynamics of intracellular organelles has gained immense attention due to their subtle control over diverse, complex biological processes such as cellular metabolism, energy homeostasis, and autophagy. In this context, molecular materials, including small-organic fluorescent probes and their supramolecular self-assembled nano-/microarchitectures, have been employed to explore the diverse intracellular biological events. However, only a handful of fluorescent probes and self-assembled emissive structures have been successfully used to track different organelle's movements, circumventing the issues related to water solubility and long-term photostability. Thus, the water-soluble molecular fluorescent probes and the water-dispersible supramolecular self-assemblies have emerged as promising candidates to explore the trafficking of the organelles under diverse physiological conditions. In this review, we have delineated the recent progress of fluorescent probes and their supramolecular self-assemblies for the elucidation of the dynamics of diverse cellular organelles with a special emphasis on lysosomes, lipid droplets, and mitochondria. Recent advancement in fluorescence lifetime and super-resolution microscopy imaging has also been discussed to investigate the dynamics of organelles. In addition, the fabrication of the next-generation molecular to supramolecular self-assembled luminogens for probing the variation of microenvironments during the trafficking process has been outlined.
由于细胞内细胞器对细胞代谢、能量平衡和自噬等多种复杂生物过程的微妙控制,解析细胞内细胞器的动态变化引起了人们的极大关注。在这种情况下,分子材料(包括小分子荧光探针及其超分子自组装的纳米/微米结构)已被用于探索各种细胞内的生物事件。然而,只有少数荧光探针和自组装的发光结构被成功用于跟踪不同细胞器的运动,避免了与水溶性和长期光稳定性相关的问题。因此,水溶性分子荧光探针和水分散性超分子自组装已成为探索不同生理条件下细胞器运输的有前途的候选物。在这篇综述中,我们详细介绍了荧光探针及其超分子自组装在阐明各种细胞细胞器动力学方面的最新进展,特别强调了溶酶体、脂滴和线粒体。还讨论了荧光寿命和超分辨率显微镜成像的最新进展,以研究细胞器的动力学。此外,还概述了下一代分子到超分子自组装发光团的构建,用于探测在运输过程中微环境的变化。