Intratracheally administered LNA gapmer antisense oligonucleotides induce robust gene silencing in mouse lung fibroblasts

Author:

Shin Minwook1,Chan Io Long1,Cao Yuming2,Gruntman Alisha M345,Lee Jonathan1,Sousa Jacquelyn1,Rodríguez Tomás C1,Echeverria Dimas1ORCID,Devi Gitali1,Debacker Alexandre J1,Moazami Michael P1,Krishnamurthy Pranathi Meda1,Rembetsy-Brown Julia M1,Kelly Karen1,Yukselen Onur2,Donnard Elisa2,Parsons Teagan J67,Khvorova Anastasia16ORCID,Sontheimer Erik J168,Maehr René67,Garber Manuel26,Watts Jonathan K189ORCID

Affiliation:

1. RNA Therapeutics Institute, University of Massachusetts Chan Medical School , Worcester, MA 01605, USA

2. Program in Bioinformatics and Integrative Biology, University of Massachusetts Chan Medical School , Worcester, MA 01605, USA

3. Horae Gene Therapy Center, University of Massachusetts Chan Medical School , Worcester, MA 01605, USA

4. Department of Pediatrics, University of Massachusetts Chan Medical School , Worcester, MA 01605, USA

5. Department of Clinical Sciences, Cummings School of Veterinary Medicine at Tufts University , N. Grafton, MA 01536, USA

6. Program in Molecular Medicine, University of Massachusetts Chan Medical School , Worcester, MA 01605, USA

7. Diabetes Center of Excellence, University of Massachusetts Chan Medical School , Worcester, MA 01605, USA

8. Li Weibo Institute for Rare Diseases Research, University of Massachusetts Chan Medical School , Worcester, MA 01605, USA

9. Department of Biochemistry and Molecular Biotechnology, University of Massachusetts Chan Medical School , Worcester, MA 01605, USA

Abstract

Abstract The lung is a complex organ with various cell types having distinct roles. Antisense oligonucleotides (ASOs) have been studied in the lung, but it has been challenging to determine their effectiveness in each cell type due to the lack of appropriate analytical methods. We employed three distinct approaches to study silencing efficacy within different cell types. First, we used lineage markers to identify cell types in flow cytometry, and simultaneously measured ASO-induced silencing of cell-surface proteins CD47 or CD98. Second, we applied single-cell RNA sequencing (scRNA-seq) to measure silencing efficacy in distinct cell types; to the best of our knowledge, this is the first time scRNA-seq has been applied to measure the efficacy of oligonucleotide therapeutics. In both approaches, fibroblasts were the most susceptible to locally delivered ASOs, with significant silencing also in endothelial cells. Third, we confirmed that the robust silencing in fibroblasts is broadly applicable by silencing two targets expressed mainly in fibroblasts, Mfap4 and Adam33. Across independent approaches, we demonstrate that intratracheally administered LNA gapmer ASOs robustly induce gene silencing in lung fibroblasts. ASO-induced gene silencing in fibroblasts was durable, lasting 4–8 weeks after a single dose. Thus, lung fibroblasts are well aligned with ASOs as therapeutics.

Funder

Ono Pharma Foundation

Ellison Foundation of Lynn

National Institutes of Health

Nucleic Acid Chemistry Center

Publisher

Oxford University Press (OUP)

Subject

Genetics

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