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Artificial cell membrane binding thrombin constructs drive in situ fibrin hydrogel formation

dc.contributor.authorDeller, Robert C.en
dc.contributor.authorRichardson, Thomasen
dc.contributor.authorRichardson, Rebeccaen
dc.contributor.authorBevan, Lauraen
dc.contributor.authorZampetakis, Ioannisen
dc.contributor.authorScarpa, Fabrizioen
dc.contributor.authorPerriman, Adam W.en
dc.date.accessioned2026-03-27T17:40:37Z
dc.date.available2026-03-27T17:40:37Z
dc.date.issued2019-12-01en
dc.description.abstractCell membrane re-engineering is emerging as a powerful tool for the development of next generation cell therapies, as it allows the user to augment therapeutic cells to provide additional functionalities, such as homing, adhesion or hypoxia resistance. To date, however, there are few examples where the plasma membrane is re-engineered to display active enzymes that promote extracellular matrix protein assembly. Here, we report on a self-contained matrix-forming system where the membrane of human mesenchymal stem cells is modified to display a novel thrombin construct, giving rise to spontaneous fibrin hydrogel nucleation and growth at near human plasma concentrations of fibrinogen. The cell membrane modification process is realised through the synthesis of a membrane-binding supercationic thrombin-polymer surfactant complex. Significantly, the resulting robust cellular fibrin hydrogel constructs can be differentiated down osteogenic and adipogenic lineages, giving rise to self-supporting monoliths that exhibit Young’s moduli that reflect their respective extracellular matrix compositions.en
dc.description.sponsorshipCompeting interests: A.W.P. is the Founder, a Director and a shareholder of CytoSeek, a company engaged in the development of cell membrane reengineering. Work in the Perriman laboratories at the University of Bristol is supported in part by CytoSeek. The remaining authors declare no competing interests. We would like to thank the EPSRC (EP/K026720/1) for support for RCD and AWP. R.R. for support by a BHF Intermediate Fellowship (FS/15/2/31225) and the BHF Oxbridge Centre of Regenerative Medicine (RM/13/03/30159). We wish to acknowledge the assistance of the Wolfson Bioimaging Facility for imaging expertise, Andrew Herman and Lorena Sueiro Ballesteros for cell sorting in the University of Bristol, Faculty of Biomedical Sciences Flow Cytometry Facility and Benjamin Carter for assistance in constructing Fig. 1.en
dc.description.statusPeer-revieweden
dc.format.extent10en
dc.identifier.issn2041-1723en
dc.identifier.otherPubMed:31015421en
dc.identifier.otherORCID:/0000-0003-2205-9364/work/209602494en
dc.identifier.scopus85064947266en
dc.identifier.urihttps://hdl.handle.net/1885/733807918
dc.language.isoenen
dc.provenanceCC BY 4.0en
dc.rights ©2019 The Author(s).en
dc.sourceNature Communicationsen
dc.titleArtificial cell membrane binding thrombin constructs drive in situ fibrin hydrogel formationen
dc.typeJournal articleen
dspace.entity.typePublicationen
local.contributor.affiliationDeller, Robert C.; University of Bristolen
local.contributor.affiliationRichardson, Thomas; University of Bristolen
local.contributor.affiliationRichardson, Rebecca; University of Bristolen
local.contributor.affiliationBevan, Laura; University of Bristolen
local.contributor.affiliationZampetakis, Ioannis; University of Bristolen
local.contributor.affiliationScarpa, Fabrizio; University of Bristolen
local.contributor.affiliationPerriman, Adam W.; School of Cellular and Molecular Medicineen
local.identifier.citationvolume10en
local.identifier.doi10.1038/s41467-019-09763-0en
local.identifier.pure422eaebe-5ef5-4bd1-b9f0-dc0c9baeae08en
local.identifier.urlhttps://www.scopus.com/pages/publications/85064947266en
local.type.statusPublisheden

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