Gong Jinli, Tian Zhen, Qu Xiaolu, Meng Qiunan, Guan Yajie, Liu Ping, Chen Chuanwu, Deng Xiuxin, Guo Wenwu, Cheng Yunjiang, Wang Pengwei
Key Laboratory of Horticultural Plant Biology (Ministry of Education), College of Horticulture and Forestry Science, Huazhong Agricultural University, 430070, Wuhan, China.
National R&D Centre for Citrus Preservation, Huazhong Agricultural University, 430070, Wuhan, China.
Hortic Res. 2021 Aug 1;8(1):175. doi: 10.1038/s41438-021-00611-1.
Although multiple microscopic techniques have been applied to horticultural research, few studies of individual organelles in living fruit cells have been reported to date. In this paper, we established an efficient system for the transient transformation of citrus fruits using an Agrobacterium-mediated method. Kumquat (Fortunella crassifolia Swingle) was used; it exhibits higher transformation efficiency than all citrus fruits that have been tested and a prolonged-expression window. Fruits were transformed with fluorescent reporters, and confocal microscopy and live-cell imaging were used to study their localization and dynamics. Moreover, various pH sensors targeting different subcellular compartments were expressed, and the local pH environments in cells from different plant tissues were compared. The results indicated that vacuoles are most likely the main organelles that contribute to the low pH of citrus fruits. In summary, our method is effective for studying various membrane trafficking events, protein localization, and cell physiology in fruit and can provide new insight into fruit biology research.
尽管多种显微技术已应用于园艺研究,但迄今为止,关于活果实细胞中单个细胞器的研究报道甚少。在本文中,我们建立了一种利用农杆菌介导法对柑橘类果实进行瞬时转化的高效体系。选用了金橘(Fortunella crassifolia Swingle);它比所有已测试的柑橘类果实表现出更高的转化效率和更长的表达窗口。用荧光报告基因对果实进行转化,并利用共聚焦显微镜和活细胞成像技术研究其定位和动态变化。此外,表达了针对不同亚细胞区室的各种pH传感器,并比较了不同植物组织细胞中的局部pH环境。结果表明,液泡很可能是导致柑橘类果实低pH值的主要细胞器。总之,我们的方法对于研究果实中的各种膜泡运输事件、蛋白质定位和细胞生理学是有效的,并可为果实生物学研究提供新的见解。