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In Vitro Evaluation of a Nanoparticle-Based mRNA Delivery System for Cells in the Joint.
Sturm, Lisa; Schwemberger, Bettina; Menzel, Ursula; Häckel, Sonja; Albers, Christoph E; Plank, Christian; Rip, Jaap; Alini, Mauro; Traweger, Andreas; Grad, Sibylle; Basoli, Valentina.
Afiliação
  • Sturm L; Institute of Tendon and Bone Regeneration, Spinal Cord Injury & Tissue Regeneration Center Salzburg, Paracelsus Medical University, 5020 Salzburg, Austria.
  • Schwemberger B; Austrian Cluster for Tissue Regeneration, 1200 Vienna, Austria.
  • Menzel U; Institute of Tendon and Bone Regeneration, Spinal Cord Injury & Tissue Regeneration Center Salzburg, Paracelsus Medical University, 5020 Salzburg, Austria.
  • Häckel S; Austrian Cluster for Tissue Regeneration, 1200 Vienna, Austria.
  • Albers CE; AO Research Institute Davos, 7270 Davos Platz, Switzerland.
  • Plank C; Department of Orthopaedic Surgery and Traumatology, Inselspital, Bern University Hospital, University of Bern, 3010 Bern, Switzerland.
  • Rip J; Department of Orthopaedic Surgery and Traumatology, Inselspital, Bern University Hospital, University of Bern, 3010 Bern, Switzerland.
  • Alini M; ETHRIS GmbH, 82152 Planegg, Germany.
  • Traweger A; 20Med Therapeutics B.V., Galileiweg 8, 2333BD Leiden, The Netherlands.
  • Grad S; AO Research Institute Davos, 7270 Davos Platz, Switzerland.
  • Basoli V; Institute of Tendon and Bone Regeneration, Spinal Cord Injury & Tissue Regeneration Center Salzburg, Paracelsus Medical University, 5020 Salzburg, Austria.
Biomedicines ; 9(7)2021 Jul 08.
Article em En | MEDLINE | ID: mdl-34356857
Biodegradable and bioresponsive polymer-based nanoparticles (NPs) can be used for oligonucleotide delivery, making them a promising candidate for mRNA-based therapeutics. In this study, we evaluated and optimized the efficiency of a cationic, hyperbranched poly(amidoamine)s-based nanoparticle system to deliver tdTomato mRNA to primary human bone marrow stromal cells (hBMSC), human synovial derived stem cells (hSDSC), bovine chondrocytes (bCH), and rat tendon derived stem/progenitor cells (rTDSPC). Transfection efficiencies varied among the cell types tested (bCH 28.4% ± 22.87, rTDSPC 18.13% ± 12.07, hBMSC 18.23% ± 14.80, hSDSC 26.63% ± 8.81) and while an increase of NPs with a constant amount of mRNA generally improved the transfection efficiency, an increase of the mRNA loading ratio (2:50, 4:50, or 6:50 w/w mRNA:NPs) had no impact. However, metabolic activity of bCHs and rTDSPCs was significantly reduced when using higher amounts of NPs, indicating a dose-dependent cytotoxic response. Finally, we demonstrate the feasibility of transfecting extracellular matrix-rich 3D cell culture constructs using the nanoparticle system, making it a promising transfection strategy for musculoskeletal tissues that exhibit a complex, dense extracellular matrix.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2021 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2021 Tipo de documento: Article