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Preclinical Assessment of a Gene-Editing Approach in a Mouse Model of Mitochondrial Neurogastrointestinal Encephalomyopathy

  • Marta Parés
  • , Cristina Fornaguera
  • , Ferran Vila-Julià
  • , Sejin Oh
  • , Steven H.Y. Fan
  • , Ying K. Tam
  • , Natalia Comes
  • , Francisco Vidal
  • , Ramon Martí
  • , Salvador Borrós
  • , Jordi Barquinero*
  • *Corresponding author for this work

Research output: Indexed journal article Articlepeer-review

14 Citations (Scopus)

Abstract

Mitochondrial neurogastrointestinal encephalomyopathy (MNGIE) is a rare disease caused by recessive mutations in the TYMP gene, which encodes the enzyme thymidine phosphorylase (TP). In this study, the efficient integration of a TYMP transgene into introns of the Tymp and Alb loci of hepatocytes in a murine model of MNGIE was achieved by the coordinated delivery and activity of CRISPR/Cas9 and a TYMP cDNA. CRISPR/Cas9 was delivered either as mRNA using lipid nanoparticle (LNP) or polymeric nanoparticle, respectively, or in an AAV2/8 viral vector; the latter was also used to package the TYMP cDNA. Insertion of the cDNA template downstream of the Tymp and Alb promoters ensured transgene expression. The best in vivo results were obtained using LNP carrying the CRISPR/Cas9 mRNAs. Treated mice showed a consistent long-term (1 year) reduction in plasma nucleoside (thymidine and deoxyuridine) levels that correlated with the presence of TYMP mRNA and functional enzyme in liver cells. In mice with an edited Alb locus, the transgene produced a hybrid Alb-hTP protein that was secreted, with supraphysiological levels of TP activity detected in the plasma. Equivalent results were obtained in mice edited at the Tymp locus. Finally, some degree of gene editing was found in animals treated only with AAV vectors containing the DNA templates, in the absence of nucleases, although there was no impact on plasma nucleoside levels. Overall, these results demonstrate the feasibility of liver-directed genome editing in the long-term correction of MNGIE, with several advantages over other methods.

Original languageEnglish
Pages (from-to)1210-1223
Number of pages14
JournalHuman Gene Therapy
Volume32
Issue number19-20
DOIs
Publication statusPublished - Oct 2021

Keywords

  • CRISPR/Cas9
  • MNGIE
  • gene editing
  • lipid nanoparticles
  • mitochondrial diseases
  • thymidine phosphorylase

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