A seed-specific DNA-binding with One Finger transcription factor, RPBF, positively regulates galactinol synthase to maintain seed vigour in rice.

IF 3.9 2区 生物学 Q2 CELL BIOLOGY
Kaberi Sonowal, Nishu Gandass, Nitin Uttam Kamble, Kritika Mehta, Ajay Kumar Pandey, Prafull Salvi
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引用次数: 0

Abstract

Seed vigour and longevity are intricate yet indispensable physiological traits for agricultural crops, as they play a crucial role in facilitating the successful emergence of seedlings and exert a substantial influence on crop productivity. Transcriptional regulation plays an important role in seed development, maturation, and desiccation tolerance, which are important attributes for seed vigour and longevity. Here, we have investigated the regulatory role of the seed-specific DNA-binding with One Finger (DOF) transcription factor and the rice prolamin box binding factor (RPBF) in seed vigour. RPBF modulates the transcription of galactinol synthase (GolS) and improves seed vigour. The promoter region of GolS-encoding genes from different species was enriched with DOF-binding sites, and the expression levels of both RPBF; OsGolS were found to enhance during seed development. Furthermore, direct interaction of RPBF with the OsGolS promoter has been demonstrated through multiple approaches: yeast one-hybrid assays, in planta promoter-GUS assays, dual luciferase assay, and in silico molecular docking. To assess functionality, Agrobacterium-mediated genetic transformation of rice was performed to generate the RNAi lines with reduced RPBF expression. In these RNAi lines, a reduction in both galactinol and raffinose content was observed. Since galactinol and raffinose are known contributors to seed vigour, the T2-transgenic lines were assessed for vigour and viability. For this, RNAi seeds were subjected to accelerated ageing by exposing them to high relative humidity and temperature, followed by scoring the germination and viability potential. Tetrazolium and seed germination assay revealed that the RNAi seeds were more sensitive to ageing compared to their wild-type and vector control counterparts. Collectively, this is the first report demonstrating that the DOF transcription factor RPBF controls the seed vigour through transcriptional regulation of GolS.

一种种子特异性 DNA 结合一指转录因子 RPBF 能正向调节半乳糖苷合成酶,以保持水稻种子的活力。
种子活力和寿命是农作物复杂而又不可或缺的生理特性,因为它们在促进幼苗成功萌发方面起着至关重要的作用,并对作物产量产生重大影响。转录调控在种子的发育、成熟和干燥耐受性中发挥着重要作用,而种子的发育、成熟和干燥耐受性是种子活力和寿命的重要属性。在此,我们研究了种子特异性 DNA 结合一指(DOF)转录因子和 RPBF(水稻 P-box 结合因子)在种子活力中的调控作用。RPBF 可调节半乳糖烯醇合成酶的转录并提高种子活力。不同物种的半乳糖烯醇合成酶(GolS)编码基因的启动子区域富含 DOF 结合位点,并且发现 RPBF 和 OsGolS 的表达水平在种子发育过程中均有所提高。此外,RPBF 与 OsGolS 启动子的直接相互作用已通过多种方法得到证实:酵母单杂交(Y1H)试验、植物启动子-GUS 试验、双荧光素酶试验和硅分子对接。为了评估功能性,对水稻进行了农杆菌介导的遗传转化,以产生 RPBF 表达减少的 RNAi 株系。在这些 RNAi 株系中,观察到半乳糖苷和棉子糖含量均有所降低。由于已知半乳糖苷和棉子糖对种子活力有影响,因此对 T2 转基因品系的活力和存活率进行了评估。为此,将 RNAi 种子置于高相对湿度和温度下进行加速老化,然后对萌发和存活潜力进行评分。四氮唑和种子萌发测定显示,与野生型和载体对照种子相比,RNAi 种子对老化更敏感。总之,这是第一份证明 DOF 转录因子 RPBF 通过半乳糖烯醇合成酶的转录调控来控制种子活力的报告。
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来源期刊
Plant and Cell Physiology
Plant and Cell Physiology 生物-细胞生物学
CiteScore
8.40
自引率
4.10%
发文量
166
审稿时长
1.7 months
期刊介绍: Plant & Cell Physiology (PCP) was established in 1959 and is the official journal of the Japanese Society of Plant Physiologists (JSPP). The title reflects the journal''s original interest and scope to encompass research not just at the whole-organism level but also at the cellular and subcellular levels. Amongst the broad range of topics covered by this international journal, readers will find the very best original research on plant physiology, biochemistry, cell biology, molecular genetics, epigenetics, biotechnology, bioinformatics and –omics; as well as how plants respond to and interact with their environment (abiotic and biotic factors), and the biology of photosynthetic microorganisms.
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