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Remote Magnetic Nanoparticle Manipulation Enables the Dynamic Patterning of Cardiac Tissues.
Zwi-Dantsis, Limor; Wang, Brian; Marijon, Camille; Zonetti, Simone; Ferrini, Arianna; Massi, Lucia; Stuckey, Daniel J; Terracciano, Cesare M; Stevens, Molly M.
Afiliação
  • Zwi-Dantsis L; Department of Materials, Department of Bioengineering, Institute of Biomedical Engineering, Imperial College London, Prince Consort Road, London, SW7 2AZ, UK.
  • Wang B; National Heart & Lung Institute, Imperial College London, The Hammersmith Hospital, Du Cane Road, London, W12 0NN, UK.
  • Marijon C; Department of Materials, Department of Bioengineering, Institute of Biomedical Engineering, Imperial College London, Prince Consort Road, London, SW7 2AZ, UK.
  • Zonetti S; Department of Electrical and Electronic Engineering, Imperial College London, South Kensington Campus, London, SW7 2AZ, UK.
  • Ferrini A; National Heart & Lung Institute, Imperial College London, The Hammersmith Hospital, Du Cane Road, London, W12 0NN, UK.
  • Massi L; Department of Materials, Department of Bioengineering, Institute of Biomedical Engineering, Imperial College London, Prince Consort Road, London, SW7 2AZ, UK.
  • Stuckey DJ; Centre for Advanced Biomedical Imaging, University College London, Gower Street, London, WC1E 6BT, UK.
  • Terracciano CM; National Heart & Lung Institute, Imperial College London, The Hammersmith Hospital, Du Cane Road, London, W12 0NN, UK.
  • Stevens MM; Department of Materials, Department of Bioengineering, Institute of Biomedical Engineering, Imperial College London, Prince Consort Road, London, SW7 2AZ, UK.
Adv Mater ; 32(6): e1904598, 2020 Feb.
Article em En | MEDLINE | ID: mdl-31833108
ABSTRACT
The ability to manipulate cellular organization within soft materials has important potential in biomedicine and regenerative medicine; however, it often requires complex fabrication procedures. Here, a simple, cost-effective, and one-step approach that enables the control of cell orientation within 3D collagen hydrogels is developed to dynamically create various tailored microstructures of cardiac tissues. This is achieved by incorporating iron oxide nanoparticles into human cardiomyocytes and applying a short-term external magnetic field to orient the cells along the applied field to impart different shapes without any mechanical support. The patterned constructs are viable and functional, can be detected by T2 *-weighted magnetic resonance imaging, and induce no alteration to normal cardiac function after grafting onto rat hearts. This strategy paves the way to creating customized, macroscale, 3D tissue constructs with various cell-types for therapeutic and bioengineering applications, as well as providing powerful models for investigating tissue behavior.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Colágeno / Engenharia Tecidual / Miócitos Cardíacos / Alicerces Teciduais / Nanopartículas de Magnetita Limite: Humans Idioma: En Revista: Adv Mater Assunto da revista: BIOFISICA / QUIMICA Ano de publicação: 2020 Tipo de documento: Article País de afiliação: Reino Unido

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Colágeno / Engenharia Tecidual / Miócitos Cardíacos / Alicerces Teciduais / Nanopartículas de Magnetita Limite: Humans Idioma: En Revista: Adv Mater Assunto da revista: BIOFISICA / QUIMICA Ano de publicação: 2020 Tipo de documento: Article País de afiliação: Reino Unido