Porous Silicon Nanoneedles Efficiently Deliver Adenine Base Editor to Correct a Recurrent Pathogenic <i>COL7A1</i> Variant in Recessive Dystrophic Epidermolysis Bullosa

S Salman Ahmad Mustfa (Centre for Craniofacial and Regenerative Biology King's College London London SE1 1UL UK) M Marija Dimitrievska (Centre for Craniofacial and Regenerative Biology King's College London London SE1 1UL UK) C Cong Wang (Key Laboratory of Preclinical Study for New Drugs of Gansu Province, School of Basic Medical Sciences & Research Unit of Peptide Science, Chinese Academy of Medical Sciences, 2019RU066) C Chenlei Gu (Centre for Craniofacial and Regenerative Biology King's College London London SE1 1UL UK) N Ningjia Sun (Centre for Craniofacial and Regenerative Biology King's College London London SE1 1UL UK) K Katarzyna Romańczuk (Hirszfeld Institute of Immunology and Experimental Therapy Polish Academy of Sciences Wroclaw 53‐114 Poland) P Pawel Karpinski (Department of Genetics Wroclaw Medical University Wroclaw 50‐367 Poland) Łukasz Łaczmański J John A. McGrath (St John's Institute of Dermatology School of Basic &amp; Medical Biosciences King's College London London SE1 1UL UK) J Joanna Jacków‐Malinowska (St John's Institute of Dermatology School of Basic &amp; Medical Biosciences King's College London London SE1 1UL UK) C Ciro Chiappini (Centre for Craniofacial and Regenerative Biology King's College London London SE1 1UL UK)

Abstract

Abstract Base editing, a CRISPR‐based genome editing technology, enables precise correction of single‐nucleotide variants, promising resolutive treatment for monogenic genetic disorders like recessive dystrophic epidermolysis bullosa (RDEB). However, the application of base editors in cell manufacturing is hindered by inconsistent efficiency and high costs, contributed by suboptimal delivery methods. Nanoneedles have emerged as an effective delivery approach, enabling highly efficient, non‐perturbing gene therapies both in vitro and in vivo. Here we demonstrate that nanoneedle delivery of an adenine base editor corrects a heterozygous single‐nucleotide pathogenic variant in COL7A1 in primary RDEB fibroblasts in vitro with 96.5% efficiency, without inducing off‐target variants. The nanoneedle delivery maintains cell viability and displays modest phenotypical alterations unlike conventional cationic lipid transfection. The nanoneedle‐mediated editing significantly increases the production and secretion of full‐length type VII collagen protein, contributing to restore functional fibroblasts phenotype by improving cell adhesion. These findings underscore the suitability and safety of nanoneedles for gene editing in a clinically relevant context of cell manufacturing, establishing a foundation for their use in cell therapies.

Article Details

Volume / Issue Vol. 37, Issue 17
Published April 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (11)

S

Salman Ahmad Mustfa

Centre for Craniofacial and Regenerative Biology King's College London London SE1 1UL UK

M

Marija Dimitrievska

Centre for Craniofacial and Regenerative Biology King's College London London SE1 1UL UK

C

Cong Wang

Key Laboratory of Preclinical Study for New Drugs of Gansu Province, School of Basic Medical Sciences & Research Unit of Peptide Science, Chinese Academy of Medical Sciences, 2019RU066

C

Chenlei Gu

Centre for Craniofacial and Regenerative Biology King's College London London SE1 1UL UK

N

Ningjia Sun

Centre for Craniofacial and Regenerative Biology King's College London London SE1 1UL UK

K

Katarzyna Romańczuk

Hirszfeld Institute of Immunology and Experimental Therapy Polish Academy of Sciences Wroclaw 53‐114 Poland

P

Pawel Karpinski

Department of Genetics Wroclaw Medical University Wroclaw 50‐367 Poland

Łukasz Łaczmański

J

John A. McGrath

St John's Institute of Dermatology School of Basic &amp; Medical Biosciences King's College London London SE1 1UL UK

J

Joanna Jacków‐Malinowska

St John's Institute of Dermatology School of Basic &amp; Medical Biosciences King's College London London SE1 1UL UK

C

Ciro Chiappini

Centre for Craniofacial and Regenerative Biology King's College London London SE1 1UL UK