Cytosine Deaminase Base Editing to Restore COL7A1 in Dystrophic Epidermolysis Bullosa Human: Murine Skin Model

Recessive dystrophic epidermolysis bullosa is a debilitating blistering skin disorder caused by loss-of-function mutations in COL7A1, which encodes type VII collagen, the main component of anchoring fibrils at the dermal−epidermal junction. Although conventional gene therapy approaches through viral...

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Veröffentlicht in:JID innovations 2023-05, Vol.3 (3), p.100191-100191, Article 100191
Hauptverfasser: Naso, Gaetano, Gkazi, Soragia Athina, Georgiadis, Christos, Jayarajan, Vignesh, Jacków, Joanna, Fleck, Roland, Allison, Leanne, Ogunbiyi, Olumide Kayode, McGrath, John Alexander, Ilic, Dusko, Di, Wei-Li, Petrova, Anastasia, Qasim, Waseem
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Sprache:eng
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Zusammenfassung:Recessive dystrophic epidermolysis bullosa is a debilitating blistering skin disorder caused by loss-of-function mutations in COL7A1, which encodes type VII collagen, the main component of anchoring fibrils at the dermal−epidermal junction. Although conventional gene therapy approaches through viral vectors have been tested in preclinical and clinical trials, they are limited by transgene size constraints and only support unregulated gene expression. Genome editing could potentially overcome some of these limitations, and CRISPR/Cas9 has already been applied in research studies to restore COL7A1 expression. The delivery of suitable repair templates for the repair of DNA cleaved by Cas9 is still a major challenge, and alternative base editing strategies may offer corrective solutions for certain mutations. We show highly targeted and efficient cytidine deamination and molecular correction of a defined recessive dystrophic epidermolysis bullosa mutation (c.425A>G), leading to restoration of full-length type VII collagen protein expression in primary human fibroblasts and induced pluripotent stem cells. Type VII collagen basement membrane expression and skin architecture were restored with de novo anchoring fibrils identified by electron microscopy in base-edited human recessive dystrophic epidermolysis bullosa grafts recovered from immunodeficient mice. The results show the potential and promise of emerging base editing technologies in tackling inherited disorders with well-defined single nucleotide mutations.
ISSN:2667-0267
2667-0267
DOI:10.1016/j.xjidi.2023.100191