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Development
2014 May 01;14110:2165-71. doi: 10.1242/dev.105072.
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Highly efficient targeted mutagenesis in axolotl using Cas9 RNA-guided nuclease.
Flowers GP, Timberlake AT, McLean KC, Monaghan JR, Crews CM.
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Among tetrapods, only urodele salamanders, such as the axolotl Ambystoma mexicanum, can completely regenerate limbs as adults. The mystery of why salamanders, but not other animals, possess this ability has for generations captivated scientists seeking to induce this phenomenon in other vertebrates. Although many recent advances in molecular biology have allowed limb regeneration and tissue repair in the axolotl to be investigated in increasing detail, the molecular toolkit for the study of this process has been limited. Here, we report that the CRISPR-Cas9 RNA-guided nuclease system can efficiently create mutations at targeted sites within the axolotl genome. We identify individual animals treated with RNA-guided nucleases that have mutation frequencies close to 100% at targeted sites. We employ this technique to completely functionally ablate EGFP expression in transgenic animals and recapitulate developmental phenotypes produced by loss of the conserved gene brachyury. Thus, this advance allows a reverse genetic approach in the axolotl and will undoubtedly provide invaluable insight into the mechanisms of salamanders' unique regenerative ability.
Bubner,
Use of real-time PCR for determining copy number and zygosity in transgenic plants.
2004, Pubmed
Bubner,
Use of real-time PCR for determining copy number and zygosity in transgenic plants.
2004,
Pubmed Campbell,
Gene expression profile of the regeneration epithelium during axolotl limb regeneration.
2011,
Pubmed Fu,
High-frequency off-target mutagenesis induced by CRISPR-Cas nucleases in human cells.
2013,
Pubmed Gaj,
ZFN, TALEN, and CRISPR/Cas-based methods for genome engineering.
2013,
Pubmed
,
Xenbase Ginzinger,
Gene quantification using real-time quantitative PCR: an emerging technology hits the mainstream.
2002,
Pubmed Hayashi,
Transcription activator-like effector nucleases efficiently disrupt the target gene in Iberian ribbed newts (Pleurodeles waltl), an experimental model animal for regeneration.
2014,
Pubmed Holman,
Microarray analysis of microRNA expression during axolotl limb regeneration.
2012,
Pubmed Hwang,
Efficient genome editing in zebrafish using a CRISPR-Cas system.
2013,
Pubmed Hwang,
Heritable and precise zebrafish genome editing using a CRISPR-Cas system.
2013,
Pubmed Ishibashi,
Highly efficient bi-allelic mutation rates using TALENs in Xenopus tropicalis.
2012,
Pubmed
,
Xenbase Khattak,
Germline transgenic methods for tracking cells and testing gene function during regeneration in the axolotl.
2013,
Pubmed
,
Xenbase Khattak,
Generation of transgenic axolotls (Ambystoma mexicanum).
2009,
Pubmed
,
Xenbase Khattak,
Foamy virus for efficient gene transfer in regeneration studies.
2013,
Pubmed Knapp,
Comparative transcriptional profiling of the axolotl limb identifies a tripartite regeneration-specific gene program.
2013,
Pubmed Lei,
Efficient targeted gene disruption in Xenopus embryos using engineered transcription activator-like effector nucleases (TALENs).
2012,
Pubmed
,
Xenbase Marcellini,
Evolution of Brachyury proteins: identification of a novel regulatory domain conserved within Bilateria.
2003,
Pubmed
,
Xenbase Martin,
Regulation of canonical Wnt signaling by Brachyury is essential for posterior mesoderm formation.
2008,
Pubmed Monaghan,
Visualization of retinoic acid signaling in transgenic axolotls during limb development and regeneration.
2012,
Pubmed
,
Xenbase Monaghan,
Gene expression patterns specific to the regenerating limb of the Mexican axolotl.
2012,
Pubmed Monaghan,
Microarray and cDNA sequence analysis of transcription during nerve-dependent limb regeneration.
2009,
Pubmed Roy,
Regeneration in axolotls: a model to aim for!
2008,
Pubmed Smith,
Genic regions of a large salamander genome contain long introns and novel genes.
2009,
Pubmed Smith,
Sal-Site: integrating new and existing ambystomatid salamander research and informational resources.
2005,
Pubmed Sobkow,
A germline GFP transgenic axolotl and its use to track cell fate: dual origin of the fin mesenchyme during development and the fate of blood cells during regeneration.
2006,
Pubmed Stewart,
Comparative RNA-seq analysis in the unsequenced axolotl: the oncogene burst highlights early gene expression in the blastema.
2013,
Pubmed Whited,
Inducible genetic system for the axolotl.
2012,
Pubmed Whited,
Pseudotyped retroviruses for infecting axolotl in vivo and in vitro.
2013,
Pubmed Wu,
De novo transcriptome sequencing of axolotl blastema for identification of differentially expressed genes during limb regeneration.
2013,
Pubmed