Tao Zhihuan, Miao Xuexia, Shi Zhenying
Key Laboratory of Plant Design, CAS Center for Excellence in Molecular Plant Sciences, Institute of Plant Physiology and Ecology, Chinese Academy of Sciences, Shanghai, 200032, China.
University of Chinese Academy of Sciences, Beijing, 100049, China.
Rice (N Y). 2024 Jul 27;17(1):45. doi: 10.1186/s12284-024-00717-9.
Leaf morphology is a crucial agronomic characteristic of rice that influences crop yield directly. One primary cause of rice leaf rolling can be attributed to alterations in bulliform cells. Several HD-ZIP IV genes have been identified to be epidemical characterized and function in leaf rolling in rice. Still others need to be studied to fully understand the overall function of HD-ZIP IV family. Among the nine ROC genes encoding HD-ZIP IV family transcription factors in rice, ROC1 exhibits the highest expression in the leaves. Overexpression of ROC1 decreased the size of bulliform cells, and thus resulted in adaxially rolled leaves. To the contrary, knockout of ROC1 (ROC1KO) through Crispr-cas9 system enlarged bulliform cells, and thus led to abaxially rolled leaves. Moreover, ROC1KO plants were sensitive to drought. ROC1 could form homodimers on its own, and heterodimers with ROC5 and ROC8 respectively. Compared to ROC1KO plants, leaves of the ROC1 and ROC8 double knocked out plants (ROC1/8DKO) were more severely rolled abaxially due to enlarged bulliform cells, and ROC1/8DKO plants were more drought sensitive. However, overexpression of ROC8 could not restore the abaxial leaf phenotype of ROC1KO plants. Therefore, we proved that ROC1, a member of the HD-ZIP IV family, regulated leaf rolling and drought stress response through tight association with ROC5 and ROC8.
叶片形态是水稻的一个关键农艺性状,直接影响作物产量。水稻叶片卷曲的一个主要原因可归因于泡状细胞的改变。已鉴定出几个HD-ZIP IV基因在水稻叶片卷曲中具有表皮特征并发挥作用。仍有其他基因需要研究,以全面了解HD-ZIP IV家族的整体功能。在水稻中编码HD-ZIP IV家族转录因子的9个ROC基因中,ROC1在叶片中的表达最高。过表达ROC1会减小泡状细胞的大小,从而导致叶片向上卷曲。相反,通过Crispr-cas9系统敲除ROC1(ROC1KO)会使泡状细胞增大,从而导致叶片向下卷曲。此外,ROC1KO植株对干旱敏感。ROC1可以自身形成同二聚体,也可以分别与ROC5和ROC8形成异二聚体。与ROC1KO植株相比,ROC1和ROC8双敲除植株(ROC1/8DKO)的叶片由于泡状细胞增大而更严重地向下卷曲,并且ROC1/8DKO植株对干旱更敏感。然而,过表达ROC8不能恢复ROC1KO植株的叶片向下卷曲表型。因此,我们证明了HD-ZIP IV家族成员ROC1通过与ROC5和ROC8紧密结合来调节叶片卷曲和干旱胁迫响应。