Low-cost, versatile, and highly reproducible microfabrication pipeline to generate 3D-printed customised cell culture devices with complex designs

Hagemann, Cathleen, Bailey, Matthew C.D., Carraro, Eugenia et al. (15 more authors) (2024) Low-cost, versatile, and highly reproducible microfabrication pipeline to generate 3D-printed customised cell culture devices with complex designs. PLoS Biology. e3002503. ISSN 1544-9173

Abstract

Metadata

Item Type: Article
Authors/Creators:
  • Hagemann, Cathleen
  • Bailey, Matthew C.D.
  • Carraro, Eugenia
  • Stankevich, Ksenia S. (ksenia.stankevich@york.ac.uk)
  • Lionello, Valentina Maria
  • Khokhar, Noreen
  • Suklai, Pacharaporn
  • Moreno-Gonzalez, Carmen
  • O’Toole, Kelly
  • Konstantinou, George
  • Dix, Christina L.
  • Joshi, Sudeep
  • Giagnorio, Eleonora
  • Bergholt, Mads S.
  • Spicer, Christopher D. ORCID logo https://orcid.org/0000-0001-8787-578X
  • Imbert, Albane
  • Tedesco, Francesco Saverio
  • Serio, Andrea
Copyright, Publisher and Additional Information: © 2024 Hagemann et al.
Dates:
  • Accepted: 17 January 2024
  • Published: 13 March 2024
Institution: The University of York
Academic Units: The University of York > Faculty of Sciences (York) > Chemistry (York)
Funding Information:
FunderGrant number
LEVERHULME TRUSTRPG-2022-174
WELLCOME TRUST225257/Z/22/Z
Depositing User: Pure (York)
Date Deposited: 22 Mar 2024 12:00
Last Modified: 22 Mar 2024 12:00
Published Version: https://doi.org/10.1371/journal.pbio.3002503
Status: Published
Refereed: Yes
Identification Number: https://doi.org/10.1371/journal.pbio.3002503
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Description: journal.pbio.3002503

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