College of Chemistry, Henan Joint International Research Laboratory of Green Construction of Functional Molecules and Their Bioanalytical Applications, Zhengzhou University, Zhengzhou 450001, P. R. China.
State Key Laboratory of Medicinal Chemical Biology, Tianjin Key Laboratory of Biosensing and Molecular Recognition, College of Chemistry, Nankai University, Tianjin, China.
J Mater Chem B. 2020 Jan 28;8(4):736-742. doi: 10.1039/c9tb02043h. Epub 2020 Jan 2.
Lysosomes are crucial dynamic organelles which play key roles in different cellular processes such as autophagy, endocytosis and phagocytosis. Thus, long-term and real-time lysosomal imaging is desirable and essential to understand the dynamics and biological functions of lysosomes. Herein, ultra-stable carbon dots (CDs) which have shown many advantages such as pH-independence, high water solubility, good photostability and high biocompatibility for lysosome labeling and long-term tracking were synthesized using a one-pot pyrolysis method via microwave irradiation. Compared with the commercial lysosome probe (LysoTracker™ Deep Red), the fluorescent CDs show superior resistance to photobleaching and the HeLa cells were stably labeled by CDs for over 48 h. In addition, the CDs could stain lysosomes in different cell lines with high specificity and track lysosomal movements. Furthermore, the CDs could stain not only lysosomes in living cells, but also lysosomes in drug-induced apoptotic cells and fixed cells, suggesting that they are suitable for lysosomal tracking under both physiological and toxicological processes. All these excellent properties could be attributable to the ultrastability of CDs, which can be employed for constructing nanoplatforms for other applications such as drug carriers and signal guiders in biological processes. This study provides not only a strategy to synthesize green fluorescent CDs for tracking lysosomes, but also a promising candidate for drug loading and signal guidance of biological processes.
溶酶体是至关重要的动态细胞器,在自噬、内吞和吞噬等不同细胞过程中发挥关键作用。因此,长期和实时的溶酶体成像对于理解溶酶体的动力学和生物学功能是理想和必要的。在此,通过微波辐射的一锅热解方法合成了超稳定的碳点(CDs),其具有许多优点,如 pH 独立性、高水溶性、良好的光稳定性和高生物相容性,可用于溶酶体标记和长期跟踪。与商业溶酶体探针(LysoTracker™ Deep Red)相比,荧光 CDs 表现出优异的抗光漂白性,并且 HeLa 细胞可被 CDs 稳定标记超过 48 小时。此外,CDs 可以高特异性地标记不同细胞系中的溶酶体,并跟踪溶酶体的运动。此外,CDs 不仅可以标记活细胞中的溶酶体,还可以标记药物诱导的凋亡细胞和固定细胞中的溶酶体,表明它们适用于生理和毒理学过程中的溶酶体跟踪。所有这些优异的性能都归因于 CDs 的超稳定性,这使其可用于构建纳米平台,用于生物过程中的其他应用,如药物载体和信号引导。本研究不仅提供了一种用于跟踪溶酶体的绿色荧光 CDs 的合成策略,而且为生物过程中的药物负载和信号引导提供了一种很有前途的候选物。