Center for Sustainable Resource Science, RIKEN, 2-1 Hirosawa, Wako, Saitama, Japan.
CREST, JST (Japan Science and Technology Agency), Kawaguchi, Saitama, Japan.
Plant Cell Physiol. 2018 Aug 1;59(8):1555-1567. doi: 10.1093/pcp/pcy139.
Auxin and cytokinin control callus formation from developed plant organs as well as shoot regeneration from callus. Dedifferentiation and regeneration of plant cells by auxin and cytokinin stimulation are considered to be caused by the reprogramming of callus cells, but this hypothesis is still argued to this day. Although an elucidation of the regulatory mechanisms of callus formation and shoot regeneration has helped advance plant biotechnology research, many plant species are intractable to transformation because of difficulties with callus formation. In this study, we identified fipexide (FPX) as a useful regulatory compound through a chemical biology-based screening. FPX was shown to act as a chemical inducer in callus formation, shoot regeneration and Agrobacterium infection. With regards to morphology, the cellular organization of FPX-induced calli differed from those produced under auxin/cytokinin conditions. Microarray analysis revealed that the expression of approximately 971 genes was up-regulated 2-fold after a 2 d FPX treatment compared with non-treated plants. Among these 971 genes, 598 genes were also induced by auxin/cytokinin, whereas 373 genes were specifically expressed upon FPX treatment only. FPX can promote callus formations in rice, poplar, soybean, tomato and cucumber, and thus can be considered a useful tool for revealing the mechanisms of plant development and for use in plant transformation technologies.
生长素和细胞分裂素控制已发育植物器官的愈伤组织形成,以及愈伤组织的芽再生。生长素和细胞分裂素刺激植物细胞的去分化和再生被认为是由愈伤组织细胞的重编程引起的,但这一假说至今仍存在争议。虽然对愈伤组织形成和芽再生的调控机制的阐明有助于推进植物生物技术研究,但由于愈伤组织形成困难,许多植物物种难以转化。在这项研究中,我们通过基于化学生物学的筛选确定了 fipexide(FPX)是一种有用的调节化合物。FPX 被证明在愈伤组织形成、芽再生和农杆菌感染中起化学诱导剂的作用。在形态上,FPX 诱导的愈伤组织的细胞组织与在生长素/细胞分裂素条件下产生的愈伤组织不同。微阵列分析显示,与未处理的植物相比,FPX 处理 2 天后,约 971 个基因的表达上调了 2 倍。在这 971 个基因中,有 598 个基因也被生长素/细胞分裂素诱导,而只有 373 个基因仅在 FPX 处理时表达。FPX 可以促进水稻、杨树、大豆、番茄和黄瓜的愈伤组织形成,因此可以被认为是揭示植物发育机制和用于植物转化技术的有用工具。