Engineered Extracellular Vesicles from Human Skin Cells Induce Pro‐β‐Cell Conversions in Pancreatic Ductal Cells

Author:

Ortega-Pineda Lilibeth1,Rincon-Benavides Maria Angelica12,Cuellar-Gaviria Tatiana Z.1,Kordowski Mia2,Guilfoyle Elizabeth1,Anaparthi Amrita Lakshmi1,Lemmerman Luke R.1,Lawrence William3,Buss Jill L.4,Deng Binbin5,Blackstone Britani N.6,Salazar-Puerta Ana1,McComb David W.5,Powell Heather167,Gallego-Perez Daniel18910,Higuita-Castro Natalia18910ORCID

Affiliation:

1. Department of Biomedical Engineering The Ohio State University Columbus OH 43210 USA

2. Biophysics -Graduate Program The Ohio State University Columbus OH 43210 USA

3. Biomedical Science Graduate Program The Ohio State University Columbus OH 43210 USA

4. Department of Hematology and the Bloomfield Center for Leukemia Outcomes Research The Ohio State University Columbus OH 43210 USA

5. Center for Electron Microscopy and Analysis (CEMAS) The Ohio State University Columbus OH 43212 USA

6. Department of Materials Science and Engineering The Ohio State University Columbus OH 43210 USA

7. Shriners Hospitals-Ohio Dayton OH 45404 USA

8. Department of Surgery The Ohio State University Columbus OH 43210 USA

9. Dorothy M. Davis Heart and Lung Research Institute The Ohio State University Columbus OH 43210 USA

10. Gene Therapy Institute The Ohio State University Columbus OH 43210 USA

Abstract

Direct nuclear reprogramming has the potential to enable the development of β cell replacement therapies for diabetes that do not require the use of progenitor/stem cell populations. However, despite their promise, current approaches to β cell‐directed reprogramming rely heavily on the use of viral vectors. Herein, the use of extracellular vesicles (EVs) derived from human dermal fibroblasts (HDFs) is explored as novel nonviral carriers of endocrine cell‐patterning transcription factors, to transfect and transdifferentiate pancreatic ductal epithelial cells (PDCs) into hormone‐expressing cells. Electrotransfection of HDFs with expression plasmids for Pdx1, Ngn3, and MafA (PNM) leads to the release of EVs loaded with PNM at the gene, mRNA, and protein levels. Exposing PDC cultures to PNM‐loaded EVs leads to successful transfection and increases PNM expression in PDCs, which ultimately result in endocrine cell‐directed conversions based on the expression of insulin/c‐peptide, glucagon, and glucose transporter 2 (Glut2). These findings are further corroborated in vivo in a mouse model following intraductal injection of PNM‐ versus sham‐loaded EVs. Collectively, these findings suggest that dermal fibroblast‐derived EVs can potentially serve as a powerful platform technology for the development and deployment of nonviral reprogramming‐based cell therapies for insulin‐dependent diabetes.

Publisher

Wiley

Subject

General Medicine

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