Gelatin methacryloyl granular scaffolds for localized mRNA delivery

Author:

Carvalho Bruna Gregatti12ORCID,Nakayama Aya1,Miwa Hiromi3,Han Sang Won4,de la Torre Lucimara Gaziola2ORCID,Di Carlo Dino3,Lee Junmin56,Kim Han‐Jun178,Khademhosseini Ali1ORCID,de Barros Natan Roberto1ORCID

Affiliation:

1. Terasaki Institute for Biomedical Innovation (TIBI) Los Angeles California USA

2. Department of Materials and Bioprocess Engineering, School of Chemical Engineering University of Campinas (UNICAMP) Campinas Brazil

3. Department of Bioengineering University of California at Los Angeles (UCLA) Los Angeles California USA

4. Department of Biophysics, Paulista School of Medicine Federal University of São Paulo (UNIFESP) Campinas Brazil

5. Department of Materials Science and Engineering Pohang University of Science and Technology (POSTECH) Pohang Republic of Korea

6. Institute for Convergence Research and Education in Advanced Technology Yonsei University Incheon Republic of Korea

7. College of Pharmacy Korea University Pohang Republic of Korea

8. Centre for Biomaterials, Cellular and Molecular Theranostics (CBCMT) Vellore Institute of Technology (VIT) Vellore India

Abstract

AbstractMessenger RNA (mRNA) therapy is the intracellular delivery of mRNA to produce desired therapeutic proteins. Developing strategies for local mRNA delivery is still required where direct intra‐articular injections are inappropriate for targeting a specific tissue. The mRNA delivery efficiency depends on protecting nucleic acids against nuclease‐mediated degradation and safe site‐specific intracellular delivery. Herein, novel mRNA‐releasing matrices based on RGD‐moiety‐rich gelatin methacryloyl (GelMA) microporous annealed particle (MAP) scaffolds are reported. GelMA concentration in aerogel‐based microgels (µgels) produced through a microfluidic process, MAP stiffnesses, and microporosity are crucial parameters for cell adhesion, spreading, and proliferation. After being loaded with mRNA complexes, MAP scaffolds composed of 10% GelMA µgels display excellent cell viability with increasing cell infiltration, adhesion, proliferation, and gene transfer. The intracellular delivery is achieved by the sustained release of mRNA complexes from MAP scaffolds and cell adhesion on mRNA‐releasing scaffolds. These findings highlight that hybrid systems can achieve efficient protein expression by delivering mRNA complexes, making them promising mRNA‐releasing biomaterials for tissue engineering.

Funder

National Institutes of Health

Kementerian Pendidikan

Korea University

Coordenação de Aperfeiçoamento de Pessoal de Nível Superior

Fundação de Amparo à Pesquisa do Estado de São Paulo

National Research Foundation of Korea

Publisher

Wiley

Subject

General Medicine,General Chemistry

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