Systemic in utero gene editing as a treatment for cystic fibrosis

A Adele S. Ricciardi (Department of Bioengineering) C Christina Barone (Department of Pediatrics, Yale University) R Rachael Putman (Department of Biomedical Engineering, Yale University) E Elias Quijano (Department of Genetics, Yale University) A Anisha Gupta (Department of Therapeutic Radiology, Yale University) R Richard Nguyen (Department of Pediatrics, Yale University) H Hanna Mandl (Department of Biomedical Engineering, Yale University) A Alexandra S. Piotrowski-Daspit (Department of Biomedical Engineering, Yale University) F Francesc Lopez-Giraldez V Valerie Luks (Department of Surgery, Yale University) M Mollie R. Freedman-Weiss (Department of Surgery, Yale University) J James Farrelly (Department of Surgery, Yale University) S Samantha Ahle (Department of Surgery, Yale University) A Anna Y. Lynn (Department of Biomedical Engineering, Yale University) P Peter M. Glazer (Department of Therapeutic Radiology, Yale University) W W. Mark Saltzman (Department of Biomedical Engineering, Yale University) D David H. Stitelman (Department of Surgery, Yale University) M Marie E. Egan (Department of Pediatrics, Yale University)

Abstract

In utero gene editing has the potential to modify disease-causing genes in multiple developing tissues before birth, possibly allowing for normal organ development, disease improvement, and conceivably, cure. In cystic fibrosis (CF), a disease that arises from mutations in the CF transmembrane conductance regulator ( CFTR ) gene, there are signs of multiorgan disease affecting the function of the respiratory, gastrointestinal, and reproductive systems already present at birth. Thus, treating CF patients early is crucial for preventing or delaying irreversible organ damage. Here, we demonstrate proof-of-concept of multiorgan mutation correction in CF using peptide nucleic acids encapsulated in polymeric nanoparticles and delivered systemically in utero. In utero editing was associated with sustained postnatal CFTR activity, at a level similar to that of wild-type mice, in both respiratory and gastrointestinal tissues, without detection of off-target mutations in partially homologous loci. This work suggests that systemic in utero gene editing represents a viable strategy for treating monogenic diseases before birth that impact multiple tissue types.

Article Details

Volume / Issue Vol. 122, Issue 24
Published June 17, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (18)

A

Adele S. Ricciardi

Department of Bioengineering

C

Christina Barone

Department of Pediatrics, Yale University

R

Rachael Putman

Department of Biomedical Engineering, Yale University

E

Elias Quijano

Department of Genetics, Yale University

A

Anisha Gupta

Department of Therapeutic Radiology, Yale University

R

Richard Nguyen

Department of Pediatrics, Yale University

H

Hanna Mandl

Department of Biomedical Engineering, Yale University

A

Alexandra S. Piotrowski-Daspit

Department of Biomedical Engineering, Yale University

F

Francesc Lopez-Giraldez

V

Valerie Luks

Department of Surgery, Yale University

M

Mollie R. Freedman-Weiss

Department of Surgery, Yale University

J

James Farrelly

Department of Surgery, Yale University

S

Samantha Ahle

Department of Surgery, Yale University

A

Anna Y. Lynn

Department of Biomedical Engineering, Yale University

P

Peter M. Glazer

Department of Therapeutic Radiology, Yale University

W

W. Mark Saltzman

Department of Biomedical Engineering, Yale University

D

David H. Stitelman

Department of Surgery, Yale University

M

Marie E. Egan

Department of Pediatrics, Yale University