Discipline of Biochemistry, SOS, Indira Gandhi National Open University, New Delhi, 110068, India.
Plant RNAi Biology Group, International Centre for Genetic Engineering and Biotechnology, New Delhi, 110067, India.
Funct Integr Genomics. 2019 Nov;19(6):867-888. doi: 10.1007/s10142-019-00673-4. Epub 2019 May 24.
High temperature and salinity stress are major factors limiting the growth and productivity of rice crop on a global scale. It is therefore an essential prerequisite to understand the molecular genetic regulation of plant responses to dual stresses. MicroRNAs (miRs) are recognized as key controllers of gene expression which act mainly at the post-transcriptional level to regulate various aspects of plant development. The present study attempts to investigate the miR circuits that are modulated in response to high temperature and salinity stress in rice. To gain insights into the pathway, preliminary miR profiles were generated using the next-generation sequencing (NGS) datasets. The identified molecules were filtered on the basis of fold differential regulation under high temperature, and time kinetics of their expression under the two individual stresses was followed to capture the regulatory windows. The analysis revealed the involvement of common miR regulatory nodes in response to two different abiotic stresses, thereby broadening our perspective about the stress-mediated regulatory mechanisms operative in rice.
高温和高盐度胁迫是限制全球范围内水稻生长和生产力的主要因素。因此,了解植物对双重胁迫的分子遗传调控是必不可少的前提。microRNAs(miRs)被认为是基因表达的关键控制器,主要在转录后水平发挥作用,以调节植物发育的各个方面。本研究试图探讨水稻中响应高温和盐度胁迫而调节的 miR 回路。为了深入了解该途径,我们使用下一代测序(NGS)数据集生成了初步的 miR 图谱。根据高温下的差异调控倍数对鉴定出的分子进行了筛选,并跟踪它们在两种单独胁迫下的表达时程,以捕获调控窗口。分析结果表明,在应对两种不同非生物胁迫时,miR 调控节点的共同参与,从而拓宽了我们对水稻中胁迫介导的调控机制的认识。