Efficient CRISPR/Cas9-assisted gene targeting enables rapid and precise genetic manipulation of mammalian neural stem cells

被引:80
作者
Bressan, Raul Bardini [1 ]
Dewari, Pooran Singh [1 ]
Kalantzaki, Maria [1 ]
Gangoso, Ester [1 ]
Matjusaitis, Mantas [1 ]
Garcia-Diaz, Claudia [1 ]
Blin, Carla [1 ]
Grant, Vivien [1 ]
Bulstrode, Harry [1 ]
Gogolok, Sabine
Skarnes, William C. [2 ]
Pollard, Steven M. [1 ]
机构
[1] Univ Edinburgh, MRC Ctr Regenerat Med, Edinburgh, Midlothian, Scotland
[2] Wellcome Trust Sanger Inst, Cambridge, England
来源
DEVELOPMENT | 2017年 / 144卷 / 04期
基金
英国生物技术与生命科学研究理事会;
关键词
Neural stem cell; CRISPR/Cas9; Genome editing; Gene targeting; Epitope tagging; Homologous recombination; Glioblastoma; Transcription factor; GENOME-WIDE; ADHERENT CULTURE; NS CELLS; IN-VITRO; BRAIN; GLIOBLASTOMA; GLIOMA; PLURIPOTENT; SCREENS; SPECIFICITIES;
D O I
10.1242/dev.140855
中图分类号
Q [生物科学];
学科分类号
090105 [作物生产系统与生态工程];
摘要
Mammalian neural stem cell (NSC) lines provide a tractable model for discovery across stem cell and developmental biology, regenerative medicine and neuroscience. They can be derived from foetal or adult germinal tissues and continuously propagated in vitro as adherent monolayers. NSCs are clonally expandable, genetically stable, and easily transfectable - experimental attributes compatible with targeted genetic manipulations. However, gene targeting, which is crucial for functional studies of embryonic stem cells, has not been exploited to date in NSC lines. Here, we deploy CRISPR/Cas9 technology to demonstrate a variety of sophisticated genetic modifications via gene targeting in both mouse and human NSC lines, including: (1) efficient targeted transgene insertion at safe harbour loci (Rosa26 and AAVS1); (2) biallelic knockout of neurodevelopmental transcription factor genes; (3) simple knock-in of epitope tags and fluorescent reporters (e. g. Sox2-V5 and Sox2-mCherry); and (4) engineering of glioma mutations (TP53 deletion; H3F3A point mutations). These resources and optimised methods enable facile and scalable genome editing in mammalian NSCs, providing significant new opportunities for functional genetic analysis.
引用
收藏
页码:635 / 648
页数:14
相关论文
共 53 条
[1]
A bivalent chromatin structure marks key developmental genes in embryonic stem cells [J].
Bernstein, BE ;
Mikkelsen, TS ;
Xie, XH ;
Kamal, M ;
Huebert, DJ ;
Cuff, J ;
Fry, B ;
Meissner, A ;
Wernig, M ;
Plath, K ;
Jaenisch, R ;
Wagschal, A ;
Feil, R ;
Schreiber, SL ;
Lander, ES .
CELL, 2006, 125 (02) :315-326
[2]
The Somatic Genomic Landscape of Glioblastoma [J].
Brennan, Cameron W. ;
Verhaak, Roel G. W. ;
McKenna, Aaron ;
Campos, Benito ;
Noushmehr, Houtan ;
Salama, Sofie R. ;
Zheng, Siyuan ;
Chakravarty, Debyani ;
Sanborn, J. Zachary ;
Berman, Samuel H. ;
Beroukhim, Rameen ;
Bernard, Brady ;
Wu, Chang-Jiun ;
Genovese, Giannicola ;
Shmulevich, Ilya ;
Barnholtz-Sloan, Jill ;
Zou, Lihua ;
Vegesna, Rahulsimham ;
Shukla, Sachet A. ;
Ciriello, Giovanni ;
Yung, W. K. ;
Zhang, Wei ;
Sougnez, Carrie ;
Mikkelsen, Tom ;
Aldape, Kenneth ;
Bigner, Darell D. ;
Van Meir, Erwin G. ;
Prados, Michael ;
Sloan, Andrew ;
Black, Keith L. ;
Eschbacher, Jennifer ;
Finocchiaro, Gaetano ;
Friedman, William ;
Andrews, David W. ;
Guha, Abhijit ;
Iacocca, Mary ;
O'Neill, Brian P. ;
Foltz, Greg ;
Myers, Jerome ;
Weisenberger, Daniel J. ;
Penny, Robert ;
Kucherlapati, Raju ;
Perou, Charles M. ;
Hayes, D. Neil ;
Gibbs, Richard ;
Marra, Marco ;
Mills, Gordon B. ;
Lander, Eric ;
Spellman, Paul ;
Wilson, Richard .
CELL, 2013, 155 (02) :462-477
[3]
Bmi1 controls tumor development in an ink4a/Arf-independent manner in a mouse model for glioma [J].
Bruggeman, Sophia W. M. ;
Hulsman, Danielle ;
Tanger, Ellen ;
Buckle, Tessa ;
Blom, Marleen ;
Zevenhoven, John ;
van Tellingen, Olaf ;
van Lohuizen, Maarten .
CANCER CELL, 2007, 12 (04) :328-341
[4]
Campos P. B., 2009, JOVE-J VIS EXP, V31, P1512
[5]
Gene targeting in mice: functional analysis of the mammalian genome for the twenty-first century [J].
Capecchi, MR .
NATURE REVIEWS GENETICS, 2005, 6 (06) :507-512
[6]
Glioblastoma Stem Cells Respond to Differentiation Cues but Fail to Undergo Commitment and Terminal Cell-Cycle Arrest [J].
Caren, Helena ;
Stricker, Stefan H. ;
Bulstrode, Harry ;
Gagrica, Sladjana ;
Johnstone, Ewan ;
Bartlett, Thomas E. ;
Feber, Andrew ;
Wilson, Gareth ;
Teschendorff, Andrew E. ;
Bertone, Paul ;
Beck, Stephan ;
Pollard, Steven M. .
STEM CELL REPORTS, 2015, 5 (05) :829-842
[7]
The transcriptional network for mesenchymal transformation of brain tumours [J].
Carro, Maria Stella ;
Lim, Wei Keat ;
Alvarez, Mariano Javier ;
Bollo, Robert J. ;
Zhao, Xudong ;
Snyder, Evan Y. ;
Sulman, Erik P. ;
Anne, Sandrine L. ;
Doetsch, Fiona ;
Colman, Howard ;
Lasorella, Anna ;
Aldape, Ken ;
Califano, Andrea ;
Iavarone, Antonio .
NATURE, 2010, 463 (7279) :318-U68
[8]
A novel function of the proneural factor Ascl1 in progenitor proliferation identified by genome-wide characterization of its targets [J].
Castro, Diogo S. ;
Martynoga, Ben ;
Parras, Carlos ;
Ramesh, Vidya ;
Pacary, Emilie ;
Johnston, Caroline ;
Drechsel, Daniela ;
Lebel-Potter, Melanie ;
Garcia, Laura Galinanes ;
Hunt, Charles ;
Dolle, Dirk ;
Bithell, Angela ;
Ettwiller, Laurence ;
Buckley, Noel ;
Guillemot, Francois .
GENES & DEVELOPMENT, 2011, 25 (09) :930-945
[9]
Tracking and transforming neocortical progenitors by CRISPR/Cas9 gene targeting and piggyBac transposase lineage labeling [J].
Chen, Fuyi ;
Rosiene, Joel ;
Che, Alicia ;
Becker, Albert ;
LoTurco, Joseph .
DEVELOPMENT, 2015, 142 (20) :3601-3611
[10]
Analysis of off-target effects of CRISPR/Cas-derived RNA-guided endonucleases and nickases [J].
Cho, Seung Woo ;
Kim, Sojung ;
Kim, Yongsub ;
Kweon, Jiyeon ;
Kim, Heon Seok ;
Bae, Sangsu ;
Kim, Jin-Soo .
GENOME RESEARCH, 2014, 24 (01) :132-141