Improved drought stress tolerance in Arabidopsis by CRISPR/dCas9 fusion with a Histone AcetylTransferase

被引:0
|
作者
Joaquin Felipe Roca Paixão
François-Xavier Gillet
Thuanne Pires Ribeiro
Caroline Bournaud
Isabela Tristan Lourenço-Tessutti
Daniel D. Noriega
Bruno Paes de Melo
Janice de Almeida-Engler
Maria Fatima Grossi-de-Sa
机构
[1] Embrapa Genetic Resources and Biotechnology,
[2] INRA,undefined
[3] Université Côte d’Azur,undefined
[4] CNRS,undefined
[5] ISA,undefined
[6] Catholic University of Brasilia - Post-Graduation Program in Genomic Sciences and Biotechnology,undefined
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Drought episodes decrease plant growth and productivity, which in turn cause high economic losses. Plants naturally sense and respond to water stress by activating specific signalling pathways leading to physiological and developmental adaptations. Genetically engineering genes that belong to these pathways might improve the drought tolerance of plants. The abscisic acid (ABA)-responsive element binding protein 1/ABRE binding factor (AREB1/ABF2) is a key positive regulator of the drought stress response. We investigated whether the CRISPR activation (CRISPRa) system that targets AREB1 might contribute to improve drought stress tolerance in Arabidopsis. Arabidopsis histone acetyltransferase 1 (AtHAT1) promotes gene expression activation by switching chromatin to a relaxed state. Stable transgenic plants expressing chimeric dCas9HAT were first generated. Then, we showed that the CRISPRa dCas9HAT mechanism increased the promoter activity controlling the β-glucuronidase (GUS) reporter gene. To activate the endogenous promoter of AREB1, the CRISPRa dCas9HAT system was set up, and resultant plants showed a dwarf phenotype. Our qRT-PCR experiments indicated that both AREB1 and RD29A, a gene positively regulated by AREB1, exhibited higher gene expression than the control plants. The plants generated here showed higher chlorophyll content and faster stomatal aperture under water deficit, in addition to a better survival rate after drought stress. Altogether, we report that CRISPRa dCas9HAT is a valuable biotechnological tool to improve drought stress tolerance through the positive regulation of AREB1.
引用
收藏
相关论文
共 50 条
  • [1] Improved drought stress tolerance in Arabidopsis by CRISPR/dCas9 fusion with a Histone AcetylTransferase
    Roca Paixao, Joaquin Felipe
    Gillet, Francois-Xavier
    Ribeiro, Thuanne Pires
    Bournaud, Caroline
    Lourenco-Tessutti, Isabela Tristan
    Noriega, Daniel D.
    de Melo, Bruno Paes
    de Almeida-Engler, Janice
    Grossi-de-Sa, Maria Fatima
    SCIENTIFIC REPORTS, 2019, 9 (1)
  • [2] Crispr/dCas9 and gene activation
    Akinci, Ersin
    Unal, Pelin
    Badakul, Gamze
    Yildiz, Mehmet
    JOURNAL OF BIOTECHNOLOGY, 2017, 256 : S42 - S42
  • [3] An Improved CRISPR/dCas9 Interference Tool for Neuronal Gene Suppression
    Duke, Corey. G. G.
    Bach, Svitlana. V. V.
    Revanna, Jasmin. S. S.
    Sultan, Faraz. A. A.
    Southern, Nicholas. T. T.
    Davis, M. Natalie
    Carullo, Nancy V. N.
    Bauman, Allison. J. J.
    Phillips, Robert. A. A.
    Day, Jeremy. J. J.
    FRONTIERS IN GENOME EDITING, 2020, 2
  • [4] Programmable activation of Bombyx gene expression using CRISPR/dCas9 fusion systems
    Wang, Xiao-Gang
    Ma, San-Yuan
    Chang, Jia-Song
    Shi, Run
    Wang, Ruo-Lin
    Zhao, Ping
    Xia, Qing-You
    INSECT SCIENCE, 2019, 26 (06) : 983 - 990
  • [5] Transcriptional regulation by CRISPR/dCas9 in common wheat
    Zhou, Huajie
    Xu, Lei
    Li, Feng
    Li, Yansha
    GENE, 2022, 807
  • [6] Application of Various Delivery Methods for CRISPR/dCas9
    Liu, Zhixi
    Liao, Zhi
    Chen, Yan
    Han, Lizhu
    Yin, Qinan
    Xiao, Hongtao
    MOLECULAR BIOTECHNOLOGY, 2020, 62 (08) : 355 - 363
  • [7] Epigenetic editing by CRISPR/dCas9 in Plasmodium falciparum
    Xiao, Bo
    Yin, Shigang
    Hu, Yang
    Sun, Maoxin
    Wei, Jieqiong
    Huang, Zhenghui
    Wen, Yuhao
    Dai, Xueyu
    Chen, Huiling
    Mu, Jianbing
    Cui, Liwang
    Jiang, Lubin
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2019, 116 (01) : 255 - 260
  • [8] Application of Various Delivery Methods for CRISPR/dCas9
    Zhixi Liu
    Zhi Liao
    Yan Chen
    Lizhu Han
    Qinan Yin
    Hongtao Xiao
    Molecular Biotechnology, 2020, 62 : 355 - 363
  • [9] CRISPR/dCas9 for hepatic fibrosis therapy: implications and challenges
    Luo, Nianan
    Zhong, Wenjun
    Li, Jiangbin
    Lu, Jianguo
    Dong, Rui
    MOLECULAR BIOLOGY REPORTS, 2022, 49 (12) : 11403 - 11408
  • [10] CRISPR/dCas9 for hepatic fibrosis therapy: implications and challenges
    Nianan Luo
    Wenjun Zhong
    Jiangbin Li
    Jianguo Lu
    Rui Dong
    Molecular Biology Reports, 2022, 49 : 11403 - 11408