De Angelis Giulia, Badiali Camilla, Chronopoulou Laura, Palocci Cleofe, Pasqua Gabriella
Department of Environmental Biology, Sapienza University of Rome, P. le Aldo Moro 5, 00185 Rome, Italy.
Department of Chemistry, Sapienza University of Rome, P. le Aldo Moro 5, 00185 Rome, Italy.
Plants (Basel). 2023 Jun 21;12(13):2397. doi: 10.3390/plants12132397.
To date, most endocytosis studies in plant cells have focused on clathrin-dependent endocytosis, while limited evidence is available on clathrin-independent pathways. Since dynamin a is a key protein both in clathrin-mediated endocytosis and in clathrin-independent endocytic processes, this study investigated its role in the uptake of poly-(lactic-co-glycolic) acid (PLGA) nanoparticles (NPs). The experiments were performed on cultured cells and roots of . Dynasore was used to inhibit the activity of dynamin-like proteins to investigate whether PLGA NPs enter plant cells through a dynamin-like-dependent or dynamin-like-independent endocytic pathway. Observations were performed by confocal microscopy using a fluorescent probe, coumarin 6, loaded in PLGA NPs. The results showed that both cells and roots of rapidly take up PLGA NPs. Dynasore was administered at different concentrations and exposure times in order to identify the effective ones for inhibitory activity. Treatments with dynasore did not prevent the NPs uptake, as revealed by the presence of fluorescence emission detected in the cytoplasm. At the highest concentration and the longest exposure time to dynasore, the fluorescence of NPs was not visible due to cell death. Thus, the results suggest that, because the NPs' uptake is unaffected by dynasore exposure, NPs can enter cells and roots by following a dynamin-like-independent endocytic pathway.
迄今为止,植物细胞中的大多数内吞作用研究都集中在网格蛋白依赖性内吞作用上,而关于非网格蛋白途径的证据有限。由于发动蛋白a在网格蛋白介导的内吞作用和非网格蛋白依赖性内吞过程中都是关键蛋白,本研究调查了其在聚(乳酸-乙醇酸)共聚物(PLGA)纳米颗粒(NPs)摄取中的作用。实验在培养细胞和[具体植物名称]的根上进行。使用dynasore抑制发动蛋白样蛋白的活性,以研究PLGA NPs是通过发动蛋白样依赖性还是发动蛋白样非依赖性内吞途径进入植物细胞。使用加载在PLGA NPs中的荧光探针香豆素6通过共聚焦显微镜进行观察。结果表明,[具体植物名称]的细胞和根都能快速摄取PLGA NPs。以不同浓度和暴露时间施用dynasore,以确定其抑制活性的有效浓度和时间。dynasore处理并未阻止NPs的摄取,细胞质中检测到的荧光发射表明了这一点。在dynasore的最高浓度和最长暴露时间下,由于细胞死亡,NPs的荧光不可见。因此,结果表明,由于NPs的摄取不受dynasore暴露的影响,NPs可以通过发动蛋白样非依赖性内吞途径进入细胞和根。