A modular cloning toolkit for genome editing in plants

被引:41
|
作者
Hahn, Florian [1 ]
Korolev, Andrey [1 ,2 ]
Sanjurjo Loures, Laura [1 ]
Nekrasov, Vladimir [1 ]
机构
[1] Rothamsted Res, Plant Sci Dept, Harpenden AL5 2JQ, Herts, England
[2] John Innes Ctr, Norwich Res Pk, Norwich NR4 7UH, Norfolk, England
基金
英国生物技术与生命科学研究理事会;
关键词
CRISPR; Cas9; Plant; Genome editing; Golden Gate; MoClo; TARGETED MUTAGENESIS; RICE; BASE; WHEAT; DNA; ENDONUCLEASE; TOMATO; CPF1;
D O I
10.1186/s12870-020-02388-2
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Background CRISPR/Cas has recently become a widely used genome editing tool in various organisms, including plants. Applying CRISPR/Cas often requires delivering multiple expression units into plant and hence there is a need for a quick and easy cloning procedure. The modular cloning (MoClo), based on the Golden Gate (GG) method, has enabled development of cloning systems with standardised genetic parts, e.g. promoters, coding sequences or terminators, that can be easily interchanged and assembled into expression units, which in their own turn can be further assembled into higher order multigene constructs. Results Here we present an expanded cloning toolkit that contains 103 modules encoding a variety of CRISPR/Cas-based nucleases and their corresponding guide RNA backbones. Among other components, the toolkit includes a number of promoters that allow expression of CRISPR/Cas nucleases (or any other coding sequences) and their guide RNAs in monocots and dicots. As part of the toolkit, we present a set of modules that enable quick and facile assembly of tRNA-sgRNA polycistronic units without a PCR step involved. We also demonstrate that our tRNA-sgRNA system is functional in wheat protoplasts. Conclusions We believe the presented CRISPR/Cas toolkit is a great resource that will contribute towards wider adoption of the CRISPR/Cas genome editing technology and modular cloning by researchers across the plant science community.
引用
收藏
页数:10
相关论文
共 50 条
  • [21] Engineering drought tolerance in plants through CRISPR/Cas genome editing
    Joshi, Raj Kumar
    Bharat, Suhas Sutar
    Mishra, Rukmini
    3 BIOTECH, 2020, 10 (09)
  • [22] Genome Editing Tools in Plants
    Mohanta, Tapan Kumar
    Bashir, Tufail
    Hashem, Abeer
    Abd Allah, Elsayed Fathi
    Bae, Hanhong
    GENES, 2017, 8 (12)
  • [23] CRISPR/Cas genome editing system and its application in potato
    Hou, Xin
    Guo, Xiaomeng
    Zhang, Yan
    Zhang, Qiang
    FRONTIERS IN GENETICS, 2023, 14
  • [24] Cereal crop genome editing tools and their applications to sustainable agriculture
    Elarabi, Nagwa I.
    Hesham, Abd El-Latif
    El-Beltagi, Hossam S.
    Rezk, Adel A.
    Shalaby, Tarek A.
    Al-Saikhan, Mohamed S.
    Mohamed, Amal A.
    Abdelhadi, Abdelhadi A.
    NOTULAE BOTANICAE HORTI AGROBOTANICI CLUJ-NAPOCA, 2024, 52 (01)
  • [25] Genome Editing Technology and Its Application to Metabolic Engineering in Rice
    Sukegawa, Satoru
    Toki, Seiichi
    Saika, Hiroaki
    RICE, 2022, 15 (01)
  • [26] Plant genome editing: ever more precise and wide reaching
    Sukegawa, Satoru
    Saika, Hiroaki
    Toki, Seiichi
    PLANT JOURNAL, 2021, 106 (05) : 1208 - 1218
  • [27] An efficient mRNA delivery system for genome editing in plants
    Qiu, Fengti
    Xue, Chenxiao
    Liu, Jinxing
    Li, Boshu
    Gao, Qiang
    Liang, Ronghong
    Chen, Kunling
    Gao, Caixia
    PLANT BIOTECHNOLOGY JOURNAL, 2025,
  • [28] How to talk about genome editing
    Starr, Sandy
    BRITISH MEDICAL BULLETIN, 2018, 126 (01) : 5 - 12
  • [29] SWISS: multiplexed orthogonal genome editing in plants with a Cas9 nickase and engineered CRISPR RNA scaffolds
    Li, Chao
    Zong, Yuan
    Jin, Shuai
    Zhu, Haocheng
    Lin, Dexing
    Li, Shengnan
    Qiu, Jin-Long
    Wang, Yanpeng
    Gao, Caixia
    GENOME BIOLOGY, 2020, 21 (01)
  • [30] Application and development of genome editing technologies to the Solanaceae plants
    Yamamoto, Tsuyoshi
    Kashojiya, Sachiko
    Kamimura, Saori
    Kameyama, Takato
    Ariizumi, Tohru
    Ezura, Hiroshi
    Miura, Kenji
    PLANT PHYSIOLOGY AND BIOCHEMISTRY, 2018, 131 : 37 - 46