Choi Min Seok, Kim Jong Ho, Jang Cheol Seong
Plant Genomics Laboratory, Interdisciplinary Program in Smart Agriculture, Kangwon National University, Chuncheon, Republic of Korea.
Agriculture and Life Sciences Research Institute, Kangwon National University, Chuncheon, Republic of Korea.
Physiol Plant. 2025 May-Jun;177(3):e70327. doi: 10.1111/ppl.70327.
Salinity stress is a major environmental challenge affecting global rice production by disrupting ion homeostasis and inducing oxidative damage. We characterized Oryza sativa RING Finger Protein 45 (OsRFP45), a RING-v-type E3 ubiquitin ligase, and investigated its role in the salt stress response in rice. OsRFP45-overexpressing (OE) and CRISPR/Cas9-mediated knockout (KO) rice lines were generated to examine their physiological, biochemical, and molecular responses to salt stress. While no significant differences were observed among genotypes under normal conditions, OsRFP45-OE plants exhibited severe growth retardation, high Na accumulation, low K retention, increased oxidative stress, and reduced osmotic adaptation under 100 mM NaCl, demonstrating hypersensitivity to salinity. In contrast, OsRFP45-KO plants displayed enhanced salt tolerance, maintained low Na content, a balanced Na/K ratio, reduced reactive oxygen species accumulation, and increased proline and soluble sugar levels. Quantitative RT-PCR analysis revealed that the expression of OsRFP45 negatively modulated the expression of key Na and K transporters, including OsHKT1;5, OsHKT2;1, OsNHX1, and OsSOS1. In OsRFP45-KO plants, enhanced Na exclusion and K retention contributed to improved ionic homeostasis under salt stress. Additionally, in vitro ubiquitination assays confirmed the E3 ligase activity of OsRFP45, indicating its potential role in protein turnover during adaptation to stress. Taken together, our findings suggest that OsRFP45 functions as a negative regulator of salt tolerance by modulating ion transport and oxidative stress response. Understanding the molecular role of OsRFP45 may provide a promising strategy for developing salt-tolerant rice cultivars.
盐胁迫是影响全球水稻生产的主要环境挑战,它会破坏离子稳态并引发氧化损伤。我们对水稻RING型E3泛素连接酶水稻环指蛋白45(OsRFP45)进行了表征,并研究了其在水稻盐胁迫响应中的作用。构建了过表达(OE)OsRFP45和CRISPR/Cas9介导的敲除(KO)水稻株系,以检测它们对盐胁迫的生理、生化和分子响应。在正常条件下,各基因型之间未观察到显著差异,但在100 mM NaCl处理下,过表达OsRFP45的植株表现出严重的生长迟缓、高钠积累、低钾保留、氧化应激增加和渗透适应性降低,表明对盐胁迫敏感。相比之下,敲除OsRFP45的植株表现出增强的耐盐性,保持低钠含量、钠钾比平衡、活性氧积累减少以及脯氨酸和可溶性糖水平增加。定量RT-PCR分析表明,OsRFP45的表达对包括OsHKT1;5、OsHKT2;1、OsNHX1和OsSOS1在内的关键钠钾转运蛋白的表达具有负调控作用。在敲除OsRFP45的植株中,增强的钠外排和钾保留有助于在盐胁迫下改善离子稳态。此外,体外泛素化试验证实了OsRFP45的E3连接酶活性,表明其在适应胁迫过程中蛋白质周转中可能发挥的作用。综上所述,我们的研究结果表明,OsRFP45通过调节离子转运和氧化应激反应,作为耐盐性负调控因子发挥作用。了解OsRFP45的分子作用可能为培育耐盐水稻品种提供一种有前景的策略。