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CRISPR-SONIC: targeted somatic oncogene knock-in enables rapid in vivo cancer modeling.


ABSTRACT: CRISPR/Cas9 has revolutionized cancer mouse models. Although loss-of-function genetics by CRISPR/Cas9 is well-established, generating gain-of-function alleles in somatic cancer models is still challenging because of the low efficiency of gene knock-in. Here we developed CRISPR-based Somatic Oncogene kNock-In for Cancer Modeling (CRISPR-SONIC), a method for rapid in vivo cancer modeling using homology-independent repair to integrate oncogenes at a targeted genomic locus. Using a dual guide RNA strategy, we integrated a plasmid donor in the 3'-UTR of mouse β-actin, allowing co-expression of reporter genes or oncogenes from the β-actin promoter. We showed that knock-in of oncogenic Ras and loss of p53 efficiently induced intrahepatic cholangiocarcinoma in mice. Further, our strategy can generate bioluminescent liver cancer to facilitate tumor imaging. This method simplifies in vivo gain-of-function genetics by facilitating targeted integration of oncogenes.

SUBMITTER: Mou H 

PROVIDER: S-EPMC6466773 | biostudies-literature | 2019 Apr

REPOSITORIES: biostudies-literature

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CRISPR-SONIC: targeted somatic oncogene knock-in enables rapid in vivo cancer modeling.

Mou Haiwei H   Ozata Deniz M DM   Smith Jordan L JL   Sheel Ankur A   Kwan Suet-Yan SY   Hough Soren S   Kucukural Alper A   Kennedy Zachary Z   Cao Yueying Y   Xue Wen W  

Genome medicine 20190416 1


CRISPR/Cas9 has revolutionized cancer mouse models. Although loss-of-function genetics by CRISPR/Cas9 is well-established, generating gain-of-function alleles in somatic cancer models is still challenging because of the low efficiency of gene knock-in. Here we developed CRISPR-based Somatic Oncogene kNock-In for Cancer Modeling (CRISPR-SONIC), a method for rapid in vivo cancer modeling using homology-independent repair to integrate oncogenes at a targeted genomic locus. Using a dual guide RNA st  ...[more]

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