Tomoi Takumi, Tameshige Toshiaki, Betsuyaku Eriko, Hamada Saki, Sakamoto Joe, Uchida Naoyuki, Torii Keiko U, Shimizu Kentaro K, Tamada Yosuke, Urawa Hiroko, Okada Kiyotaka, Fukuda Hiroo, Tatematsu Kiyoshi, Kamei Yasuhiro, Betsuyaku Shigeyuki
Center for Innovation Support, Institute for Social Innovation and Cooperation, Utsunomiya University, Utsunomiya, Japan.
School of Engineering, Utsunomiya University, Utsunomiya, Japan.
Front Plant Sci. 2023 Jun 5;14:1171531. doi: 10.3389/fpls.2023.1171531. eCollection 2023.
Multicellular organisms rely on intercellular communication systems to organize their cellular functions. In studies focusing on intercellular communication, the key experimental techniques include the generation of chimeric tissue using transgenic DNA recombination systems represented by the CRE/ system. If an experimental system enables the induction of chimeras at highly targeted cell(s), it will facilitate the reproducibility and precision of experiments. However, multiple technical limitations have made this challenging. The stochastic nature of DNA recombination events, especially, hampers reproducible generation of intended chimeric patterns. Infrared laser-evoked gene operator (IR-LEGO), a microscopic system that irradiates targeted cells using an IR laser, can induce heat shock-mediated expression of transgenes, for example, recombinase gene, in the cells. In this study, we developed a method that induces CRE/ recombination in the target cell(s) of plant roots and leaves in a highly specific manner. We combined IR-LEGO, an improved heat-shock-specific promoter, and dexamethasone-dependent regulation of CRE. The optimal IR-laser power and irradiation duration were estimated exhaustive irradiation trials and subsequent statistical modeling. Under optimized conditions, CRE/ recombination was efficiently induced without cellular damage. We also found that the induction efficiency varied among tissue types and cellular sizes. The developed method offers an experimental system to generate a precisely designed chimeric tissue, and thus, will be useful for analyzing intercellular communication at high resolution in roots and leaves.
多细胞生物依靠细胞间通讯系统来组织其细胞功能。在专注于细胞间通讯的研究中,关键的实验技术包括使用以CRE/系统为代表的转基因DNA重组系统生成嵌合组织。如果一个实验系统能够在高度靶向的细胞中诱导嵌合体的产生,那么它将有助于提高实验的可重复性和精确性。然而,多种技术限制使得这具有挑战性。尤其是DNA重组事件的随机性,阻碍了预期嵌合模式的可重复产生。红外激光诱发基因操纵器(IR-LEGO)是一种使用红外激光照射靶向细胞的微观系统,例如,它可以诱导细胞中热休克介导的转基因表达,如重组酶基因。在本研究中,我们开发了一种以高度特异性方式在植物根和叶的靶细胞中诱导CRE/重组的方法。我们将IR-LEGO、一种改进的热休克特异性启动子和CRE的地塞米松依赖性调控相结合。通过详尽的照射试验和后续的统计建模估计了最佳红外激光功率和照射持续时间。在优化条件下,能够有效诱导CRE/重组而不造成细胞损伤。我们还发现诱导效率在不同组织类型和细胞大小之间存在差异。所开发的方法提供了一个生成精确设计的嵌合组织的实验系统,因此,将有助于在根和叶中以高分辨率分析细胞间通讯。