Physcomitrella patens DNA methyltransferase 2 is required for recovery from salt and osmotic stress

被引:23
作者
Arya, Deepshikha [1 ]
Kapoor, Sanjay [2 ]
Kapoor, Meenu [1 ]
机构
[1] Guru Gobind Singh Indraprastha Univ, Univ Sch Biotechnol, Sect 16C, New Delhi 110078, India
[2] Univ Delhi, Interdisciplinary Ctr Plant Genom, Dept Plant Mol Biol, Delhi 110007, India
关键词
abiotic stress; DNMT2; gene targeting; methyltransferase; moss; CYTOSINE DNA METHYLTRANSFERASES; MOSS PHYSCOMITRELLA-PATENS; TRANSFER-RNA MODIFICATIONS; CYTOPLASMIC TRANSFER-RNA; OXIDATIVE STRESS; NUCLEAR ACCUMULATION; CATALYTIC MECHANISM; III TRANSCRIPTION; CELLULAR STRESS; METHYLATION;
D O I
10.1111/febs.13611
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
DNA methyltransferase 2 (DNMT2) unlike other members of the cytosine DNA methyltransferase gene family has dual substrate specificity and it methylates cytosines in both the DNA and transfer RNA (tRNA). Its role in plants, however, has remained obscure to date. In this study, we demonstrate that DNMT2 from Physcomitrella patens accumulates in a temporal manner under salt and osmotic stress showing maximum accumulation during recovery, i.e. 24 h after plants are transferred to normal growth medium. Therefore, to study its role in stress tolerance, we generated PpDNMT2 targeted knockout plants (ppdnmt2ko). Mutant plants show increased sensitivity to salt and osmotic stress and are unable to recover even after 21 days of growth on optimal growth media. ppdnmt2ko, however, accumulate normal levels of dehydrin-like and small heat shock protein encoding transcripts under stress but show dramatic reduction in levels of tRNA(Asp-GUC). The levels of tRNA(Asp-GUC), in contrast, increase similar to 25-30-fold in ppdnmt2ko under non-stress conditions and > 1200-fold in wild-type plants under stress. The role of PpDNMT2 in modulating biogenesis/stability of tRNA(Asp-GUC) under salt and osmotic stress is discussed in the light of these observations.
引用
收藏
页码:556 / 570
页数:15
相关论文
共 50 条
  • [31] Lobularia maritima thioredoxin-h2 gene mitigates salt and osmotic stress damage in tobacco by modeling plant antioxidant system
    Ben Saad, Rania
    Ben Romdhane, Walid
    Bouteraa, Mohamed Taieb
    Jrad, Olfa
    Ben Hsouna, Anis
    PLANT GROWTH REGULATION, 2022, 97 (01) : 101 - 115
  • [32] Lobularia maritima thioredoxin-h2 gene mitigates salt and osmotic stress damage in tobacco by modeling plant antioxidant system
    Rania Ben Saad
    Walid Ben Romdhane
    Mohamed Taieb Bouteraa
    Olfa Jrad
    Anis Ben Hsouna
    Plant Growth Regulation, 2022, 97 : 101 - 115
  • [33] Genome-wide and molecular characterization of the DNA replication helicase 2 (DNA2) gene family in rice under drought and salt stress
    Saleem, Bilal
    Farooq, Umer
    Rehman, Obaid Ur
    Aqeel, Muhammad
    Farooq, Muhammad Shahbaz
    Naeem, Muhammad Kashif
    Inam, Safeena
    Ajmal, Wajya
    Rahim, Amna Abdul
    Chen, Ming
    Kalsoom, Rabia
    Uzair, Muhammad
    Fiaz, Sajid
    Attia, Kotb
    Alafari, Hayat Ali
    Khan, Muhammad Ramzan
    Yu, Guoping
    FRONTIERS IN GENETICS, 2022, 13
  • [34] The Arabidopsis Ca2+-dependent protein kinase CPK27 is required for plant response to salt-stress
    Zhao, Rui
    Sun, Huimin
    Zhao, Nan
    Jing, Xiaoshu
    Shen, Xin
    Chen, Shaoliang
    GENE, 2015, 563 (02) : 203 - 214
  • [35] The SoNAP gene from sugarcane (Saccharum officinarum) encodes a senescence-associated NAC transcription factor involved in response to osmotic and salt stress
    Carrillo-Bermejo, Evelyn A.
    Gamboa-Tuz, Samuel David
    Pereira-Santana, Alejandro
    Keb-Llanes, Miguel A.
    Castano, Enrique
    Figueroa-Yanez, Luis Joel
    Rodriguez-Zapata, Luis C.
    JOURNAL OF PLANT RESEARCH, 2020, 133 (06) : 897 - 909
  • [36] H2O2 localization in the green alga Micrasterias after salt and osmotic stress by TEM-coupled electron energy loss spectroscopy
    Darehshouri, Anza
    Luetz-Meindl, Ursula
    PROTOPLASMA, 2010, 239 (1-4) : 49 - 56
  • [37] The SoNAP gene from sugarcane (Saccharum officinarum) encodes a senescence-associated NAC transcription factor involved in response to osmotic and salt stress
    Evelyn A. Carrillo-Bermejo
    Samuel David Gamboa-Tuz
    Alejandro Pereira-Santana
    Miguel A. Keb-Llanes
    Enrique Castaño
    Luis Joel Figueroa-Yañez
    Luis C. Rodriguez-Zapata
    Journal of Plant Research, 2020, 133 : 897 - 909
  • [38] OVEREXPRESSION OF THE MALUS HUPEHENSIS MHTGA2 GENE, A NOVEL bZIP TRANSCRIPTION FACTOR FOR INCREASED TOLERANCE TO SALT AND OSMOTIC STRESS IN TRANSGENIC TOBACCO
    Zhang, Ji-Yu
    Qu, Shen-Chun
    Du, Xiao-Li
    Qiao, Yu-Shan
    Cai, Bin-Hua
    Guo, Zhong-Ren
    Zhang, Zhen
    INTERNATIONAL JOURNAL OF PLANT SCIENCES, 2012, 173 (05) : 441 - 453
  • [39] BaDBL1, a unique DREB gene from desiccation tolerant moss Bryum argenteum, confers osmotic and salt stress tolerances in transgenic Arabidopsis
    Liang, Yuqing
    Li, Xiaoshuang
    Yang, Ruirui
    Gao, Bei
    Yao, Juanxia
    Oliver, Melvin J.
    Zhang, Daoyuan
    PLANT SCIENCE, 2021, 313
  • [40] The NAC Protein from Tamarix hispida, ThNAC7, Confers Salt and Osmotic Stress Tolerance by Increasing Reactive Oxygen Species Scavenging Capability
    He, Zihang
    Li, Ziyi
    Lu, Huijun
    Huo, Lin
    Wang, Zhibo
    Wang, Yucheng
    Ji, Xiaoyu
    PLANTS-BASEL, 2019, 8 (07):