Efficient CRISPR Mutagenesis in Sturgeon Demonstrates Its Utility in Large, Slow-Maturing Vertebrates

被引:5
作者
Stundl, Jan [1 ,2 ,3 ]
Soukup, Vladimir [1 ]
Franek, Roman [3 ]
Pospisilova, Anna [1 ]
Psutkova, Viktorie [1 ]
Psenicka, Martin [3 ]
Cerny, Robert [1 ]
Bronner, Marianne E. [2 ]
Medeiros, Daniel Meulemans [4 ]
Jandzik, David [1 ,5 ]
机构
[1] Charles Univ Prague, Dept Zool, Fac Sci, Prague, Czech Republic
[2] CALTECH, Div Biol & Biol Engn, Pasadena, CA 91125 USA
[3] Univ South Bohemia Ceske Budejovice, Fac Fisheries & Protect Waters, South Bohemian Res Ctr Aquaculture & Biodivers Hy, Vodnany, Czech Republic
[4] Univ Colorado, Dept Ecol & Evolutionary Biol, Boulder, CO 80309 USA
[5] Comenius Univ, Dept Zool, Fac Nat Sci, Bratislava, Slovakia
基金
美国国家卫生研究院; 美国国家科学基金会;
关键词
CRISPR; Cas9; targeted mutagenesis; non-teleost fish; sturgeon; vertebrates; development; evolution; evo-devo; TARGETED GENE DISRUPTION; IMMUNE-SYSTEM; SPOTTED GAR; EVOLUTION; HAGFISH; LAMPREY; EMBRYOS; EXPRESSION; DROSOPHILA; BACTERIA;
D O I
10.3389/fcell.2022.750833
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
In the last decade, the CRISPR/Cas9 bacterial virus defense system has been adapted as a user-friendly, efficient, and precise method for targeted mutagenesis in eukaryotes. Though CRISPR/Cas9 has proven effective in a diverse range of organisms, it is still most often used to create mutant lines in lab-reared genetic model systems. However, one major advantage of CRISPR/Cas9 mutagenesis over previous gene targeting approaches is that its high efficiency allows the immediate generation of near-null mosaic mutants. This feature could potentially allow genotype to be linked to phenotype in organisms with life histories that preclude the establishment of purebred genetic lines; a group that includes the vast majority of vertebrate species. Of particular interest to scholars of early vertebrate evolution are several long-lived and slow-maturing fishes that diverged from two dominant modern lineages, teleosts and tetrapods, in the Ordovician, or before. These early-diverging or "basal" vertebrates include the jawless cyclostomes, cartilaginous fishes, and various non-teleost ray-finned fishes. In addition to occupying critical phylogenetic positions, these groups possess combinations of derived and ancestral features not seen in conventional model vertebrates, and thus provide an opportunity for understanding the genetic bases of such traits. Here we report successful use of CRISPR/Cas9 mutagenesis in one such non-teleost fish, sterlet Acipenser ruthenus, a small species of sturgeon. We introduced mutations into the genes Tyrosinase, which is needed for melanin production, and Sonic hedgehog, a pleiotropic developmental regulator with diverse roles in early embryonic patterning and organogenesis. We observed disruption of both loci and the production of consistent phenotypes, including both near-null mutants' various hypomorphs. Based on these results, and previous work in lamprey and amphibians, we discuss how CRISPR/Cas9 F0 mutagenesis may be successfully adapted to other long-lived, slow-maturing aquatic vertebrates and identify the ease of obtaining and injecting eggs and/or zygotes as the main challenges.
引用
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页数:15
相关论文
共 88 条
[11]   Connectivity of vertebrate genomes: Paired-related homeobox (Prrx) genes in spotted gar, basal teleosts, and tetrapods [J].
Braasch, Ingo ;
Guiguen, Yann ;
Loker, Ryan ;
Letaw, John H. ;
Ferrara, Allyse ;
Bobe, Julien ;
Postlethwait, John H. .
COMPARATIVE BIOCHEMISTRY AND PHYSIOLOGY C-TOXICOLOGY & PHARMACOLOGY, 2014, 163 :24-36
[12]  
Brand M., 2002, ZEBRAFISH PRACTICAL
[13]   Maximizing mutagenesis with solubilized CRISPR-Cas9 ribonucleoprotein complexes [J].
Burger, Alexa ;
Lindsay, Helen ;
Felker, Anastasia ;
Hess, Christopher ;
Anders, Carolin ;
Chiavacci, Elena ;
Zaugg, Jonas ;
Weber, Lukas M. ;
Catena, Raul ;
Jinek, Martin ;
Robinson, Mark D. ;
Mosimann, Christian .
DEVELOPMENT, 2016, 143 (11) :2025-2037
[14]  
Chebanov M.S., 2011, FAO FISH AQUAC TECH, V558, P303
[15]   Dynamic Imaging of Genomic Loci in Living Human Cells by an Optimized CRISPR/Cas System [J].
Chen, Baohui ;
Gilbert, Luke A. ;
Cimini, Beth A. ;
Schnitzbauer, Joerg ;
Zhang, Wei ;
Li, Gene-Wei ;
Park, Jason ;
Blackburn, Elizabeth H. ;
Weissman, Jonathan S. ;
Qi, Lei S. ;
Huang, Bo .
CELL, 2013, 155 (07) :1479-1491
[16]   Efficient Gene Transfer and Gene Editing in Sterlet (Acipenser ruthenus) [J].
Chen, Ji ;
Wang, Wei ;
Tian, Zhaohui ;
Dong, Ying ;
Dong, Tian ;
Zhu, Hua ;
Zhu, Zuoyan ;
Hu, Hongxia ;
Hu, Wei .
FRONTIERS IN GENETICS, 2018, 9
[17]   Embryonic Development of Cuban Gar (Atractosteus tristoechus) Under Laboratory Conditions [J].
Comabella, Y. ;
Canabal, J. ;
Hurtado, A. ;
Garcia-Galano, T. .
ANATOMIA HISTOLOGIA EMBRYOLOGIA, 2014, 43 (06) :495-502
[18]   Multiplex Genome Engineering Using CRISPR/Cas Systems [J].
Cong, Le ;
Ran, F. Ann ;
Cox, David ;
Lin, Shuailiang ;
Barretto, Robert ;
Habib, Naomi ;
Hsu, Patrick D. ;
Wu, Xuebing ;
Jiang, Wenyan ;
Marraffini, Luciano A. ;
Zhang, Feng .
SCIENCE, 2013, 339 (6121) :819-823
[19]   Evolution of gastrulation in the ray-finned (actinopterygian) fishes [J].
Cooper, Mark S. ;
Virta, Valerie C. .
JOURNAL OF EXPERIMENTAL ZOOLOGY PART B-MOLECULAR AND DEVELOPMENTAL EVOLUTION, 2007, 308B (05) :591-608
[20]   Highly Efficient Knockout of a Squid Pigmentation Gene [J].
Crawford, Karen ;
Quiroz, Juan F. Diaz ;
Koenig, Kristen M. ;
Ahuja, Namrata ;
Albertin, Caroline B. ;
Rosenthal, Joshua J. C. .
CURRENT BIOLOGY, 2020, 30 (17) :3484-+