Three P5CS genes including a novel one from Lilium regale play distinct roles in osmotic, drought and salt stress tolerance

被引:0
作者
Chi Wei
Qi Cui
Xi-Qing Zhang
Yu-Qian Zhao
Gui-Xia Jia
机构
[1] Beijing Forestry University,Beijing Key Laboratory of Ornamental Plants Germplasm Innovation & Molecular Breeding, National Engineering Research Center for Floriculture, Beijing Laboratory of Urban and Rural Ecological Environment and College of Landscape
来源
Journal of Plant Biology | 2016年 / 59卷
关键词
Proline; osmotic stress; drought stress; salt stress;
D O I
暂无
中图分类号
学科分类号
摘要
Proline accumulations in abiotically stressed plants is generally considered to benefit their stress tolerance. The Δ1-Pyrroline-5-carboxylate synthetase (P5CS) gene family, which encodes the rate-limiting enzyme in proline biosynthesis pathway, usually contains two duplicated genes in most plants. However, three P5CS genes including LrP5CS1, LrP5CS2 as well as a third one, LrP5CS3, were isolated from Lilium regale. LrP5CS3 is highly identical to LrP5CS1 in amino acid sequences, indicating they could come from a paralogous duplication. The phylogenetic tree suggested that the duplication of LrP5CS occurred independently after the divergence of Liliales and commelinoids. The expression of LrP5CS1 was strongly induced in leaves and roots both under drought and salinity, while that of LrP5CS3 was upregulated more moderately. LrP5CS2 stayed almost constitutive under stress. LrP5CS1 exhibited the highest activity after expressed in E. coli. Overexpression of LrP5CS genes conferred enhanced osmotic, drought and salt tolerance on transgenic Arabidopsis without negative effects in unstressed condition. Under salt stress, lines LrP5CS2 accumulated fewer proline than others, and lines LrP5CS1 grew better in root elongation. The roots of lines LrP5CS3 grew better than all others under unstressed condition and osmotic stress. Our study suggests that the three LrP5CS genes play distinct roles respectively in proline accumulation and abiotic stress tolerance.
引用
收藏
页码:456 / 466
页数:10
相关论文
共 157 条
[1]  
Armengaud P(2004)Transcriptional regulation of proline biosynthesis in Medicago truncatula reveals developmental and environmental specific features Physiol Plant 120 442-450
[2]  
Thiery L(2007)Roles of glycine betaine and proline in improving plant abiotic stress resistance Environ Exp Bot 59 206-216
[3]  
Buhot N(2010)Cloning and genetic diversity analysis of a new P5CS gene from common bean ( Theor Appl Genet 120 1393-1404
[4]  
Grenier-de March G(2013) L.) J Genet 92 461-469
[5]  
Savouré A(1993)Two P5CS genes from common bean exhibiting different tolerance to salt stress in transgenic Arabidopsis Plant J 4 215-223
[6]  
Ashraf M(2003)Proline biosynthesis and osmoregulation in plants J Biol Chem 278 14203-14210
[7]  
Foolad M(2008)Identification of regions of the tomato glutamyl kinase that are involved in allosteric regulation by proline BMC Plant Biol 8 40-8254
[8]  
Chen J(2012)Ornithine-d-aminotransferase is essential for arginine catabolism but not for proline biosynthesis BMC Plant Biol 12 191-2319
[9]  
Zhang X(1997)Requirement of proline synthesis during Arabidopsis reproductive development Proc Natl Acad Sci USA 94 8249-1136
[10]  
Jing R(2014)Cloning of a polycistronic cDNA from tomato encoding Δ-glutamyl kinase and Δ-glutamyl phosphate reductase Acta Physiol Plant 36 2309-426