Dong Ting, Xu Zheng-Yi, Park Youngmin, Kim Dae Heon, Lee Yongjik, Hwang Inhwan
Division of Integrative Biosciences and Biotechnology , Pohang University of Science and Technology, Pohang, 790-784 Korea.
Plant Physiol. 2014 May;165(1):277-89. doi: 10.1104/pp.114.239210. Epub 2014 Mar 27.
The phytohormone abscisic acid (ABA) is crucial for plant growth and adaptive responses to various stress conditions. Plants continuously adjust the ABA level to meet physiological needs, but how ABA homeostasis occurs is not fully understood. This study provides evidence that UGT71B6, an ABA uridine diphosphate glucosyltransferase (UGT), and its two closely related homologs, UGT71B7 and UGT71B8, play crucial roles in ABA homeostasis and in adaptation to dehydration, osmotic stress, and high-salinity stresses in Arabidopsis (Arabidopsis thaliana). UGT RNA interference plants that had low levels of these three UGT transcripts displayed hypersensitivity to exogenous ABA and high-salt conditions during germination and exhibited a defect in plant growth. However, the ectopic expression of UGT71B6 in the atbg1 (for β-glucosidase) mutant background aggravated the ABA-deficient phenotype of atbg1 mutant plants. In addition, modulation of the expression of the three UGTs affects the expression of CYP707A1 to CYP707A4, which encode ABA 8'-hydroxylases; four CYP707As were expressed at higher levels in the UGT RNA interference plants but at lower levels in the UGT71B6:GFP-overexpressing plants. Based on these data, this study proposes that UGT71B6 and its two homologs play a critical role in ABA homeostasis by converting active ABA to an inactive form (abscisic acid-glucose ester) depending on intrinsic cellular and environmental conditions in plants.
植物激素脱落酸(ABA)对于植物生长以及对各种胁迫条件的适应性反应至关重要。植物不断调节ABA水平以满足生理需求,但ABA稳态如何发生尚未完全了解。本研究提供了证据表明,ABA尿苷二磷酸糖基转移酶(UGT)UGT71B6及其两个密切相关的同源物UGT71B7和UGT71B8在拟南芥(Arabidopsis thaliana)的ABA稳态以及对脱水、渗透胁迫和高盐胁迫的适应中起关键作用。这三种UGT转录本水平较低的UGT RNA干扰植物在萌发期间对外源ABA和高盐条件表现出超敏反应,并且在植物生长方面存在缺陷。然而,UGT71B6在atbg1(β-葡萄糖苷酶)突变体背景中的异位表达加剧了atbg1突变体植物的ABA缺陷表型。此外,对这三种UGT表达的调节会影响编码ABA 8'-羟化酶的CYP707A1至CYP707A4的表达;四种CYP707A在UGT RNA干扰植物中表达水平较高,而在过表达UGT71B6:GFP的植物中表达水平较低。基于这些数据,本研究提出UGT71B6及其两个同源物通过根据植物内在的细胞和环境条件将活性ABA转化为无活性形式(脱落酸葡萄糖酯)在ABA稳态中起关键作用。