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A large animal model of heritable pulmonary arterial hypertension using BMPR2 gene–edited sheep
Sanjeev A. Datar, Nicholas Werry, Austin R. Brown, Devon S. Fitzpatrick, Oluwafemi Falade, Josephine F. Trott, Rachel Hutchings, Elena K. Amin, Jessica M. Morgan, Hythem Nawaytou, Gail H. Deutsch, Eric G. Johnson, Omar A. Gonzales Viera, Thomas F. Bishop, Tara Urbano Beach, Bret R. McNabb, Eric D. Austin, Jeffery R. Fineman, Alison L. Van Eenennaam
Sanjeev A. Datar, Nicholas Werry, Austin R. Brown, Devon S. Fitzpatrick, Oluwafemi Falade, Josephine F. Trott, Rachel Hutchings, Elena K. Amin, Jessica M. Morgan, Hythem Nawaytou, Gail H. Deutsch, Eric G. Johnson, Omar A. Gonzales Viera, Thomas F. Bishop, Tara Urbano Beach, Bret R. McNabb, Eric D. Austin, Jeffery R. Fineman, Alison L. Van Eenennaam
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Research Article Cardiology Pulmonology Vascular biology

A large animal model of heritable pulmonary arterial hypertension using BMPR2 gene–edited sheep

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Abstract

Pulmonary arterial hypertension (PAH) is a rare vascular disorder characterized by elevated pressure in pulmonary arteries, eventually leading to right ventricular failure. Approximately 50% of pediatric disease and 20% of adult disease can be linked to a genetic mutation, with nearly 70% of these cases involving mutations in the bone morphogenetic protein receptor type 2 (BMPR2) locus. Investigations using rodent models have made substantial advances in our understanding of BMPR2 signaling; however, limited data exist regarding the onset and course of PAH, and etiologies for phenotypic expression in these patients remain unknown. In this work, we describe the development of an ovine model of heritable PAH. Because homozygous disruption of BMPR2 is embryonic lethal, we developed heterozygous BMPR2-edited (BMPR2+/–) sheep by using a PAM-disrupting synonymous single-stranded oligodeoxyribonucleotide alongside a single guide RNA and Cas9-mediated gene editing strategy. The resulting BMPR2+/– lambs demonstrated cardiac and pulmonary vascular pathology that are consistent with BMPR2 mutation–driven PAH observed in humans. Given the genetic and physiological similarities of BMPR2+/– sheep to humans with heritable PAH, this large animal model will serve as a vital platform for mechanistic molecular studies and will provide a much-needed preclinical model for extensive treatment evaluations.

Authors

Sanjeev A. Datar, Nicholas Werry, Austin R. Brown, Devon S. Fitzpatrick, Oluwafemi Falade, Josephine F. Trott, Rachel Hutchings, Elena K. Amin, Jessica M. Morgan, Hythem Nawaytou, Gail H. Deutsch, Eric G. Johnson, Omar A. Gonzales Viera, Thomas F. Bishop, Tara Urbano Beach, Bret R. McNabb, Eric D. Austin, Jeffery R. Fineman, Alison L. Van Eenennaam

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Figure 7

Editing sequence design.

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Editing sequence design.
Single guide RNA 1 (sgRNA1) (green) and sgRNA2 ...
Single guide RNA 1 (sgRNA1) (green) and sgRNA2 (blue) were targeted to exon 3 of BMPR2. sgRNA1 was used in production of gene-edited lambs, and sgRNA2 was used solely for in vitro testing (indicated by dotted box). Protospacer-adjacent motifs (PAMs) are indicated by underlining; mismatches relative to the Oar_v3.1 reference genome are indicated in bold. The location where sgRNA1 would be predicted to introduce a double-stranded break (DSB) is indicated by the green dashed line. Non-homologous end joining (NHEJ) repair of the DSB will repeatedly cleave and introduce indel mutations until the guide sequence is disrupted, while homology-directed repair (HDR) using the 99 bp single-stranded oligodeoxyribonucleotide (ssODN) will introduce a synonymous silent mutation, disrupting the PAM of sgRNA1 (CTT→CAT) and preventing further Cas9 activity. The additional PAM-disrupting mutation (CGG→CGA) towards the 3′ end of the ssODN was designed to disrupt the PAM of sgRNA2.

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ISSN 2379-3708

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