Titel (eng)

CRISPR/Cas9-Mediated Targeting of BPV-1-Transformed Primary Equine Sarcoid Fibroblasts

Autor*in

Anne Monod   University of Bern

Kerstin Hahn   University of Bern

Sven Rottenberg   University of Bern

Vinzenz Gerber   University of Bern

Christian Wenker   Zoo Basel

Denise Howald   University of Bern

Maarten Haspeslagh   Ghent University

Christoph Koch   University of Bern

Christoph Jindra   University of Veterinary Medicine Vienna

Verlag

MDPI

Beschreibung (eng)

Equine sarcoids (EqS) are fibroblast-derived skin tumors associated with bovine papillomavirus 1 and 2 (BPV-1 and -2). Based on Southern blotting, the BPV-1 genome was not found to be integrated in the host cell genome, suggesting that EqS pathogenesis does not result from insertional mutagenesis. Hence, CRISPR/Cas9 implies an interesting tool for selectively targeting BPV-1 episomes or genetically anchored suspected host factors. To address this in a proof-of-concept study, we confirmed the exclusive episomal persistence of BPV-1 in EqS using targeted locus amplification (TLA). To investigate the CRISPR/Cas9-mediated editing of BPV-1 episomes, primary equine fibroblast cultures were established and characterized. In the EqS fibroblast cultures, CRISPR-mediated targeting of the episomal E5 and E6 oncogenes as well as the BPV-1 long control region was successful and resulted in a pronounced reduction of the BPV-1 load. Moreover, the deletion of the equine Vimentin (VIM), which is highly expressed in EqS, considerably decreased the number of BPV-1 episomes. Our results suggest CRISPR/Cas9-based gene targeting may serve as a tool to help further unravel the biology of EqS pathogenesis.

Sprache des Objekts

Englisch

Datum

2023

Rechte

Creative Commons Lizenzvertrag
Dieses Werk bzw. dieser Inhalt steht unter einer
CC BY 4.0 - Creative Commons Namensnennung 4.0 International Lizenz.

CC BY 4.0 International

http://creativecommons.org/licenses/by/4.0/

Klassifikation

Bovine Papillomavirus Type-1; Vimentin Intermediate-Filaments; In-Vitro; Gene-Expression; Dna; Cells; Vivo; E6; Establishment; Inactivation

Mitglied in der/den Collection(s) (1)

o:605 Publikationen / Veterinärmedizinische Universität Wien