Centurion University of Technology and Management, Bhubaneswar, Odisha, India; International Centre for Genetic Engineering and Biotechnology, Aruna Asaf Ali Marg, New Delhi, 110067, India.
Plant Microbe Interactions Laboratory, National Institute of Plant Genome Research, Aruna Asaf Ali Marg, New Delhi, 110067, India.
Plant Physiol Biochem. 2022 Sep 1;186:242-251. doi: 10.1016/j.plaphy.2022.07.018. Epub 2022 Jul 22.
Biotic and abiotic stress tolerant crops are required for sustainable agriculture as well as ensuring global food security. In a previous study, we have reported that heterologous overexpression of pea DNA helicase (PDH45), a DEAD-box family member protein, provides salinity stress tolerance in rice. The improved management of photosynthetic machinery and scavenging of reactive oxygen species (ROS) are associated with PDH45 mediated salinity stress tolerance. However, the role of PDH45 in biotic and other abiotic stress (drought) tolerance remains unexplored. In the present study, we have generated marker-free transgenic IR64 rice lines that overexpress PDH45 under the CaMV35S promoter. The transgenic rice lines exhibited a significant level of tolerance against sheath blight disease, caused by Rhizoctonia solani, a polyphagous necrotrophic fungal pathogen. The defense as well as antioxidant responsive marker genes were significantly upregulated in the PDH45 overexpressing (OE) rice lines, upon pathogen infection. Moreover, the OE lines exhibited tolerance to drought stress and various antioxidant as well as drought responsive marker genes were significantly upregulated in them, upon drought stress. Overall, the current study emphasizes that heterologous overexpression of PDH45 provides abiotic as well as biotic stress tolerance in rice. Tolerance against drought as well as sheath blight disease by overexpression of a single gene (PDH45) signifies the practical implication of the present study. Moreover, considering the conserved nature of the gene in different plant species, we anticipate that PDH45 can be gainfully deployed to impart tolerance against multiple stresses in agriculturally important crops.
需要具有生物和非生物胁迫耐受性的作物来实现可持续农业并确保全球粮食安全。在之前的研究中,我们已经报道过,豌豆 DNA 解旋酶(PDH45)的异源过表达为水稻提供了耐盐性。PDH45 介导的耐盐性与光合作用机制的更好管理和活性氧(ROS)的清除有关。然而,PDH45 在生物和其他非生物胁迫(干旱)耐受性中的作用仍未被探索。在本研究中,我们生成了无标记的转 PDH45 基因 IR64 水稻品系,该基因在 CaMV35S 启动子的控制下过表达。转 PDH45 基因的水稻品系对 Rhizoctonia solani 引起的叶鞘枯病表现出显著的抗性,后者是一种多宿主的坏死性真菌病原体。在病原体感染后,PDH45 过表达(OE)水稻品系中防御和抗氧化响应标记基因显著上调。此外,OE 系表现出对干旱胁迫的耐受性,并且在受到干旱胁迫时,它们中的各种抗氧化和干旱响应标记基因显著上调。总的来说,本研究强调了 PDH45 的异源过表达为水稻提供了非生物和生物胁迫耐受性。通过单个基因(PDH45)的过表达来耐受干旱和叶鞘枯病表明了本研究的实际意义。此外,考虑到该基因在不同植物物种中的保守性质,我们预计 PDH45 可以被有效地用于赋予农业重要作物对多种胁迫的耐受性。