Overexpression of OsDUF868.12 enhances salt tolerance in rice.

IF 4.1 2区 生物学 Q1 PLANT SCIENCES Frontiers in Plant Science Pub Date : 2025-01-29 eCollection Date: 2025-01-01 DOI:10.3389/fpls.2025.1458467
Hao Chen, Jiale Wan, Jiali Zhu, Ziyi Wang, Caiyao Mao, Wanjing Xu, Juan Yang, Yijuan Kong, Xiaofei Zan, Rongjun Chen, Jianqing Zhu, Zhengjun Xu, Lihua Li
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Abstract

Excessive salt accumuln in soil is one of the most important abiotic stresses in agricultural environments. The Domain of Unknown Function 868 (DUF868) family, comprising 15 members in rice, has been identified in the protein family database. In this study, we cloned and functionally characterized OsDUF868.12, a member of the OsDUF868 family, to elucidate its role in rice response to salt stress. A series of experiments, including RT-qPCR, Agrobacterium-mediated transient transformation in tobacco for localization analysis, phenotypic characterization, physiological and biochemical index measurement, and leaf staining, were conducted to investigate the function of OsDUF868.12 under salt stress. Transcriptional analysis revealed that OsDUF868.12 exhibited the most significant response to low temperature and salt stress. Preliminary subcellular localization studies indicated that OsDUF868.12 is localized in the cell membrane. Phenotypic Identification Experiments showed Overexpression lines of OsDUF868.12 enhanced resistance to salt stress and increased survival rates, while knockout lines of OsDUF868.12 were opposite. Physiological and biochemical assessments, along with leaf staining, demonstrated that overexpression of OsDUF868.12 improved the activity against oxidative stress.under salt stress. Furthermore, overexpression of OsDUF868.12 elevated the transcription levels of positively regulated salt stress-related genes. These findings suggest that overexpression of OsDUF868.12 enhances rice tolerance to salt stress at the molecular level through a series of regulatory mechanisms. This study provides valuable insights into the functional roles of the DUF868 family in plant responses to abiotic stress.

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OsDUF868.12过表达增强了水稻的耐盐性。
土壤过量盐分积累是农业环境中最重要的非生物胁迫之一。未知功能域868 (DUF868)家族在水稻中有15个成员,已在蛋白质家族数据库中被鉴定出来。在本研究中,我们克隆了OsDUF868家族成员OsDUF868.12,并对其进行了功能表征,以阐明其在水稻盐胁迫响应中的作用。通过RT-qPCR、农杆菌介导烟草瞬时转化定位分析、表型鉴定、生理生化指标测定和叶片染色等实验,研究了OsDUF868.12基因在盐胁迫下的功能。转录分析显示,OsDUF868.12对低温和盐胁迫的响应最为显著。初步的亚细胞定位研究表明,OsDUF868.12定位于细胞膜。表型鉴定实验表明,OsDUF868.12过表达系增强了对盐胁迫的抗性,提高了存活率,而OsDUF868.12敲除系则相反。生理生化评价和叶片染色结果表明,过表达OsDUF868.12提高了抗氧化应激活性。在盐胁迫下。此外,OsDUF868.12的过表达提高了盐胁迫相关正向调控基因的转录水平。这些结果表明,OsDUF868.12的过表达在分子水平上通过一系列调控机制增强了水稻对盐胁迫的耐受性。该研究为了解DUF868家族在植物非生物胁迫响应中的功能作用提供了有价值的见解。
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来源期刊
Frontiers in Plant Science
Frontiers in Plant Science PLANT SCIENCES-
CiteScore
7.30
自引率
14.30%
发文量
4844
审稿时长
14 weeks
期刊介绍: In an ever changing world, plant science is of the utmost importance for securing the future well-being of humankind. Plants provide oxygen, food, feed, fibers, and building materials. In addition, they are a diverse source of industrial and pharmaceutical chemicals. Plants are centrally important to the health of ecosystems, and their understanding is critical for learning how to manage and maintain a sustainable biosphere. Plant science is extremely interdisciplinary, reaching from agricultural science to paleobotany, and molecular physiology to ecology. It uses the latest developments in computer science, optics, molecular biology and genomics to address challenges in model systems, agricultural crops, and ecosystems. Plant science research inquires into the form, function, development, diversity, reproduction, evolution and uses of both higher and lower plants and their interactions with other organisms throughout the biosphere. Frontiers in Plant Science welcomes outstanding contributions in any field of plant science from basic to applied research, from organismal to molecular studies, from single plant analysis to studies of populations and whole ecosystems, and from molecular to biophysical to computational approaches. Frontiers in Plant Science publishes articles on the most outstanding discoveries across a wide research spectrum of Plant Science. The mission of Frontiers in Plant Science is to bring all relevant Plant Science areas together on a single platform.
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