CRISPR-Cas9-Mediated Genome Editing in Leishmania donovani

被引:120
作者
Zhang, Wen-Wei [1 ]
Matlashewski, Greg [1 ]
机构
[1] McGill Univ, Dept Microbiol & Immunol, Montreal, PQ, Canada
关键词
STRAND BREAK REPAIR; CAENORHABDITIS-ELEGANS; PLASMODIUM-FALCIPARUM; AFRICAN TRYPANOSOMES; DRUG-RESISTANCE; HUMAN-CELLS; RNA; SYSTEM; DNA; CRISPR/CAS9;
D O I
10.1128/mBio.00861-15
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
The prokaryotic CRISPR (clustered regularly interspaced short palindromic repeat)-Cas9, an RNA-guided endonuclease, has been shown to mediate efficient genome editing in a wide variety of organisms. In the present study, the CRISPR-Cas9 system has been adapted to Leishmania donovani, a protozoan parasite that causes fatal human visceral leishmaniasis. We introduced the Cas9 nuclease into L. donovani and generated guide RNA (gRNA) expression vectors by using the L. donovani rRNA promoter and the hepatitis delta virus (HDV) ribozyme. It is demonstrated within that L. donovani mainly used homology-directed repair (HDR) and microhomology-mediated end joining (MMEJ) to repair the Cas9 nuclease-created double-strand DNA break (DSB). The nonhomologous end-joining (NHEJ) pathway appears to be absent in L. donovani. With this CRISPR-Cas9 system, it was possible to generate knockouts without selection by insertion of an oligonucleotide donor with stop codons and 25-nucleotide homology arms into the Cas9 cleavage site. Likewise, we disrupted and precisely tagged endogenous genes by inserting a bleomycin drug selection marker and GFP gene into the Cas9 cleavage site. With the use of Hammerhead and HDV ribozymes, a double-gRNA expression vector that further improved gene-targeting efficiency was developed, and it was used to make precise deletion of the 3-kb miltefosine transporter gene (LdMT). In addition, this study identified a novel single point mutation caused by CRISPR-Cas9 in LdMT (M381T) that led to miltefosine resistance, a concern for the only available oral anti-leishmanial drug. Together, these results demonstrate that the CRISPR-Cas9 system represents an effective genome engineering tool for L. donovani. IMPORTANCE Leishmania donovani is the causative agent of fatal visceral leishmaniasis. To understand Leishmania infection and pathogenesis and identify new drug targets for control of leishmaniasis, more-efficient ways to manipulate this parasite genome are required. In this study, we have implemented CRISPR-Cas9 genome-editing technology in L. donovani. Both single- and dual-gRNA expression vectors were developed using a strong RNA polymerase I promoter and ribozymes. With this system, it was possible to generate loss-of-function insertion and deletion mutations and introduce drug selection markers and the GFP sequence precisely into the L. donovani genome. These methods greatly improved the ability to manipulate this parasite genome and will help pave the way for high-throughput functional analysis of Leishmania genes. This study further revealed that double-stranded DNA breaks created by CRISPR-Cas9 were repaired by the homology-directed repair (HDR) pathway and microhomology-mediated end joining (MMEJ) in Leishmania.
引用
收藏
页数:14
相关论文
共 50 条
[31]   Advances in CRISPR/Cas9-mediated genome editing on vegetable crops [J].
Tian, Shou-Wei ;
Xing, Si-Nian ;
Xu, Yong .
IN VITRO CELLULAR & DEVELOPMENTAL BIOLOGY-PLANT, 2021, 57 (04) :672-682
[32]   CRISPR/Cas9-mediated genome editing of Schistosoma mansoni acetylcholinesterase [J].
You, Hong ;
Mayer, Johannes U. ;
Johnston, Rebecca L. ;
Sivakumaran, Haran ;
Ranasinghe, Shiwanthi ;
Rivera, Vanessa ;
Kondrashova, Olga ;
Koufariotis, Lambros T. ;
Du, Xiaofeng ;
Driguez, Patrick ;
French, Juliet D. ;
Waddell, Nicola ;
Duke, Mary G. ;
Ittiprasert, Wannaporn ;
Mann, Victoria H. ;
Brindley, Paul J. ;
Jones, Malcolm K. ;
McManus, Donald P. .
FASEB JOURNAL, 2021, 35 (01)
[33]   CRISPR-Cas9-mediated editing of GmARM improves resistance to multiple stresses in soybean [J].
Luo, Tingting ;
Ma, Chongxuan ;
Fan, Yuanhang ;
Qiu, Zhendong ;
Li, Ming ;
Tian, Yusu ;
Shang, Yuzhuo ;
Liu, Chang ;
Cao, Qingqian ;
Peng, Yuhan ;
Zhang, Shuzhen ;
Liu, Shanshan ;
Song, Bo .
PLANT SCIENCE, 2024, 346
[34]   CRISPR-Cas9; an efficient tool for precise plant genome editing [J].
Islam, Waqar .
MOLECULAR AND CELLULAR PROBES, 2018, 39 :47-52
[35]   Genome Editing with CRISPR-Cas9: Can It Get Any Better? [J].
Haeussler, Maximilian ;
Concordet, Jean-Paul .
JOURNAL OF GENETICS AND GENOMICS, 2016, 43 (05) :239-250
[36]   CRISPR-Cas9 Knockin Mice for Genome Editing and Cancer Modeling [J].
Platt, Randall J. ;
Chen, Sidi ;
Zhou, Yang ;
Yim, Michael J. ;
Swiech, Lukasz ;
Kempton, Hannah R. ;
Dahlman, James E. ;
Parnas, Oren ;
Eisenhaure, Thomas M. ;
Jovanovic, Marko ;
Graham, Daniel B. ;
Jhunjhunwala, Siddharth ;
Heidenreich, Matthias ;
Xavier, Ramnik J. ;
Langer, Robert ;
Anderson, Daniel G. ;
Hacohen, Nir ;
Regev, Aviv ;
Feng, Guoping ;
Sharp, Phillip A. ;
Zhang, Feng .
CELL, 2014, 159 (02) :440-455
[37]   Cationic Polymer-Mediated CRISPR/Cas9 Plasmid Delivery for Genome Editing [J].
Zhang, Zhen ;
Wan, Tao ;
Chen, Yuxuan ;
Chen, Yu ;
Sun, Hongwei ;
Cao, Tianqi ;
Zhou Songyang ;
Tang, Guping ;
Wu, Chuanbin ;
Ping, Yuan ;
Xu, Fu-Jian ;
Huang, Junjiu .
MACROMOLECULAR RAPID COMMUNICATIONS, 2019, 40 (05)
[38]   Negative regulators of grain yield and mineral contents in rice: potential targets for CRISPR-Cas9-mediated genome editing [J].
Yadav, Banita ;
Majhi, Ashis ;
Phagna, Kanika ;
Meena, Mukesh Kumar ;
Ram, Hasthi .
FUNCTIONAL & INTEGRATIVE GENOMICS, 2023, 23 (04)
[39]   Programmed gRNA Removal System for CRISPR-Cas9-Mediated Multi-Round Genome Editing in Bacillus subtilis [J].
Lim, Hayeon ;
Choi, Soo-Keun .
FRONTIERS IN MICROBIOLOGY, 2019, 10
[40]   CRISPR-Cas9-mediated editing of BADH2 gene triggered fragrance revolution in rice [J].
Imran, Muhammad ;
Shafiq, Sarfraz ;
Tang, Xiangru .
PHYSIOLOGIA PLANTARUM, 2023, 175 (01)