Department of Biotechnology, CHA University, Seongnam, 13488, South Korea.
Department of Systems Biotechnology, Konkuk University, Seoul, 143-701, South Korea.
J Plant Physiol. 2024 Feb;293:154182. doi: 10.1016/j.jplph.2024.154182. Epub 2024 Jan 20.
Maintenance of energy metabolism is critical for rice (Oryza sativa) tolerance under submerged cultivation. Here, OsHXK7 was the most actively induced hexokinase gene in the embryos of hypoxically germinating rice seeds. Suspension-cultured cells established from seeds of T-DNA null mutants for the OsHXK7 locus did not regrow after 3-d-hypoxic stress and showed increased susceptibility to low-oxygen stress-in terms of viability-and decreased alcoholic fermentation activities compared to those of the wild-type. The promoter element containing the TGACG-motif, a well-known target site for the basic leucine zipper (bZIP) transcription factors, was responsible for sugar regulation of the OsHXK7 promoter activity. Systematic screening of the OsbZIP genes showing the similar expression patterns to that of OsHXK7 in the transcriptomic datasets produced two bZIP genes, OsbZIP38 and 87, belonging to the S bZIP subfamily as the candidate for the activator for this gene expression. Gain- and loss-of-function experiments through transient expression assays have demonstrated that these two bZIP proteins are indeed involved in the induction of OsHXK7 expression under starvation or low-energy conditions. Our finding suggests that C/S bZIP network-mediated hypoxic deregulation of sugar-responsive genes may work in concert for the molecular adaptation of rice cells to submergence.
维持能量代谢对于淹水条件下水稻(Oryza sativa)的耐受至关重要。在这里,OsHXK7 是缺氧萌发水稻种子胚中最活跃诱导的己糖激酶基因。从 OsHXK7 基因 T-DNA 缺失突变体种子中建立的悬浮培养细胞在 3 天缺氧胁迫后不会重新生长,并表现出对低氧胁迫的敏感性增加——就活力而言——与野生型相比,酒精发酵活性降低。含有 TGACG 基序的启动子元件是碱性亮氨酸拉链(bZIP)转录因子的已知靶位点,负责调节 OsHXK7 启动子活性的糖。通过对转录组数据集进行系统筛选,发现与 OsHXK7 具有相似表达模式的 OsbZIP 基因有两个,即 OsbZIP38 和 87,它们属于 S bZIP 亚家族,是该基因表达的激活剂候选基因。通过瞬时表达试验进行的增益和失活功能实验表明,这两种 bZIP 蛋白确实参与了饥饿或低能条件下 OsHXK7 表达的诱导。我们的发现表明,C/S bZIP 网络介导的缺氧条件下糖响应基因的去调控可能协同作用于水稻细胞对淹水的分子适应。