Zhang Tonghua, Wang Jiafu, Luo Rui, Man Jianmin, Long Qing, Xu Ning
Key laboratory of Plant Resource Conservation and Germplasm Innovation in Mountainous Region (Ministry of Education), College of Life Sciences/Institute of Agro-bioengineering, Guizhou University, Guiyang 550025, Guizhou Province, China.
Key laboratory of Plant Resource Conservation and Germplasm Innovation in Mountainous Region (Ministry of Education), College of Life Sciences/Institute of Agro-bioengineering, Guizhou University, Guiyang 550025, Guizhou Province, China.
Plant Sci. 2023 Jan;326:111508. doi: 10.1016/j.plantsci.2022.111508. Epub 2022 Oct 22.
In this study, we identified a gene related to plant height, leaf, and premature senescence in rice, and named it OsHLS1. Through bioinformatics analysis, it was found that this gene belongs to a new gene family-HLS family, and this gene family exists widely in higher plants. Expression of OsHLS1 was significantly brought about by gibberellin (GA). Subcellular localization showed that OsHLS1 was located in the nucleus. oshls1-3 displayed a GA-deficient phenotype, with dwarf plants. In addition, oshls1-3 also showed premature senescence, shorter and narrower leaves, and pollen abortion. Exogenous GA can restore the plant height of oshls1-3. Histomorphological analysis showed that the gene affected the progress of internode cells in the first and third nodes under the rice panicle. Through the verification of the homologous gene AT4G25690 in Arabidopsis, it was found that the mutant at4g25690 lines also showed plant dwarfing, premature senescence, and shortening and narrowing of leaves and pollen abortion. OsHLS1 affected the expression levels of genes involved in the GA metabolic pathway and affected the content of active GA, thereby regulating plant height development in rice. In conclusion, we suggest that OsHLS1 regulates plant height and development by controlling the accumulation of active gibberellins in rice.
在本研究中,我们鉴定出一个与水稻株高、叶片及早衰相关的基因,并将其命名为OsHLS1。通过生物信息学分析发现,该基因属于一个新的基因家族——HLS家族,且该基因家族广泛存在于高等植物中。赤霉素(GA)能显著诱导OsHLS1的表达。亚细胞定位显示OsHLS1位于细胞核中。oshls1-3表现出GA缺陷型表型,植株矮小。此外,oshls1-3还表现出早衰、叶片短而窄以及花粉败育。外源GA可恢复oshls1-3的株高。组织形态学分析表明,该基因影响水稻穗下第一和第三节间细胞的发育进程。通过对拟南芥同源基因AT4G25690的验证,发现突变体at4g25690株系也表现出植株矮化、早衰、叶片缩短变窄以及花粉败育。OsHLS1影响GA代谢途径相关基因的表达水平,进而影响活性GA的含量,从而调控水稻的株高发育。总之,我们认为OsHLS1通过控制水稻中活性赤霉素的积累来调控株高和发育。