Sound-induced morphogenesis of multicellular systems for rapid orchestration of vascular networks.

biofabrication morphogenesis multicellular systems sound patterning vascular networks

Journal

Biofabrication
ISSN: 1758-5090
Titre abrégé: Biofabrication
Pays: England
ID NLM: 101521964

Informations de publication

Date de publication:
16 10 2020
Historique:
received: 25 06 2020
accepted: 25 09 2020
pubmed: 26 9 2020
medline: 27 1 2022
entrez: 25 9 2020
Statut: epublish

Résumé

Morphogenesis, a complex process, ubiquitous in developmental biology and many pathologies, is based on self-patterning of cells. Spatial patterns of cells, organoids, or inorganic particles can be forced on demand using acoustic surface standing waves, such as the Faraday waves. This technology allows tuning of parameters (sound frequency, amplitude, chamber shape) under contactless, fast and mild culture conditions, for morphologically relevant tissue generation. We call this method Sound Induced Morphogenesis (SIM). In this work, we use SIM to achieve tight control over patterning of endothelial cells and mesenchymal stem cells densities within a hydrogel, with the endpoint formation of vascular structures. Here, we first parameterize our system to produce enhanced cell density gradients. Second, we allow for vasculogenesis after SIM patterning control and compare our controlled technology against state-of-the-art microfluidic culture systems, the latter characteristic of pure self-organized patterning and uniform initial density. Our sound-induced cell density patterning and subsequent vasculogenesis requires less cells than the microfluidic chamber. We advocate for the use of SIM for rapid, mild, and reproducible morphogenesis induction and further explorations in the regenerative medicine and cell therapy fields.

Identifiants

pubmed: 32977317
doi: 10.1088/1758-5090/abbb9c
doi:

Substances chimiques

Hydrogels 0

Types de publication

Journal Article Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Informations de copyright

Creative Commons Attribution license.

Auteurs

Dalila Petta (D)

AO Research Institute Davos, Clavadelerstrasse 8, 7270, Davos Platz, Switzerland.
Regenerative Medicine Technologies Lab, Ente Ospedaliero Cantonale (EOC), Via Tesserete 46, 6900, Lugano, Switzerland.

Valentina Basoli (V)

AO Research Institute Davos, Clavadelerstrasse 8, 7270, Davos Platz, Switzerland.

Daniele Pellicciotta (D)

AO Research Institute Davos, Clavadelerstrasse 8, 7270, Davos Platz, Switzerland.

Riccardo Tognato (R)

AO Research Institute Davos, Clavadelerstrasse 8, 7270, Davos Platz, Switzerland.

Jan Barcik (J)

AO Research Institute Davos, Clavadelerstrasse 8, 7270, Davos Platz, Switzerland.

Chiara Arrigoni (C)

Regenerative Medicine Technologies Lab, Ente Ospedaliero Cantonale (EOC), Via Tesserete 46, 6900, Lugano, Switzerland.

Elena Della Bella (ED)

AO Research Institute Davos, Clavadelerstrasse 8, 7270, Davos Platz, Switzerland.

Angela Rita Armiento (AR)

AO Research Institute Davos, Clavadelerstrasse 8, 7270, Davos Platz, Switzerland.

Christian Candrian (C)

Regenerative Medicine Technologies Lab, Ente Ospedaliero Cantonale (EOC), Via Tesserete 46, 6900, Lugano, Switzerland.
Unità di Traumatologia e Ortopedia, Ente Ospedaliero Cantonale (EOC), Via Tesserete 46, 6900, Lugano, Switzerland.

R Geoff Richards (RG)

AO Research Institute Davos, Clavadelerstrasse 8, 7270, Davos Platz, Switzerland.

Mauro Alini (M)

AO Research Institute Davos, Clavadelerstrasse 8, 7270, Davos Platz, Switzerland.

Matteo Moretti (M)

Regenerative Medicine Technologies Lab, Ente Ospedaliero Cantonale (EOC), Via Tesserete 46, 6900, Lugano, Switzerland.
Cell and Tissue Engineering Laboratory, IRCCS Istituto Ortopedico Galeazzi, via Galeazzi, 4, 20161, Milan, Italy.

David Eglin (D)

AO Research Institute Davos, Clavadelerstrasse 8, 7270, Davos Platz, Switzerland.

Tiziano Serra (T)

AO Research Institute Davos, Clavadelerstrasse 8, 7270, Davos Platz, Switzerland.

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Classifications MeSH