Enhancement of lacrimal gland cell function by decellularized lacrimal gland derived hydrogel.

decellularized extracellular matrix dry eye disease hydrogel in vitro model lacrimal gland tissue engineering

Journal

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

Informations de publication

Date de publication:
19 Jan 2024
Historique:
medline: 19 1 2024
pubmed: 19 1 2024
entrez: 19 1 2024
Statut: aheadofprint

Résumé

Sustainable treatment of aqueous deficient dry eye (ADDE) represents an unmet medical need and therefore requires new curative and regenerative approaches based on appropriate in vitro models. die Verringerung Tissue specific hydrogels retain the individual biochemical composition of the extracellular matrix and thus promote the inherent cell´s physiological function. Hence, we created a decellularized lacrimal gland (LG) hydrogel (dLG-HG) meeting the requirements for a bioink as the basis of a LG model with potential for in vitro ADDE studies. Varying hydrolysis durations were compared to obtain dLG-HG with best possible physical and ultrastructural properties while preserving of the original biochemical composition. A particular focus was placed on dLG-HG´s impact on viability and functionality of LG associated cell types with relevance for a future in vitro model in comparison to the unspecific single component hydrogel collagen type-I (Col) and the common cell culture substrate Matrigel. Proliferation of LG epithelial cells (EpC), LG mesenchymal stem cells, and endothelial cells cultured on dLG-HG was enhanced compared to culture on Matrigel. Most importantly with respect to a functional in vitro model, the secretion capacity of EpC cultured on dLG-HG was higher than that of EpC cultured on Col or Matrigel. In addition to these promising cell related properties, a rapid MMP-dependent biodegradation was observed, which on the one hand suggests a lively cell-matrix interaction, but on the other hand seriously limits the cultivation period. Concluding, dLG-HG possesses decisive properties for the tissue engineering of a LG in vitro model such as cytocompatibility and promotion of secretion, making it superior to unspecific cell culture substrates. However, deceleration of biodegradation should be addressed in future experiments.

Identifiants

pubmed: 38241707
doi: 10.1088/1758-5090/ad2082
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Informations de copyright

Creative Commons Attribution license.

Auteurs

Katharina E Wiebe-Ben Zakour (KE)

Department of Ophthalmology, Medical Faculty and University Hospital Düsseldorf, Heinrich Heine University Duesseldorf, Moorenstrasse 5, Duesseldorf, 40225, GERMANY.

Sema Kaya (S)

Department of Ophthalmology, Medical Faculty and University Hospital Düsseldorf, Heinrich Heine University Duesseldorf, Moorenstrasse 5, Duesseldorf, 40225, GERMANY.

Julia C Matros (JC)

Institute of Pharmaceutics and Biopharmaceutics, Heinrich Heine University Düsseldorf, Universitaetsstrasse 1, Dusseldorf, 40225, GERMANY.

Micheal C Hacker (MC)

Institute of Pharmaceutics and Biopharmaceutics, Heinrich Heine University Düsseldorf, Universitaetsstrasse 1, Dusseldorf, 40225, GERMANY.

Amina Cheikh-Rouhou (A)

Department of Ophthalmology, Medical Faculty and University Hospital Düsseldorf, Heinrich Heine University Duesseldorf, Moorenstrasse 5, Duesseldorf, 40225, GERMANY.

Kristina Spaniol (K)

Department of Ophthalmology, Medical Faculty and University Hospital Düsseldorf, Heinrich Heine University Duesseldorf, Moorenstrasse 5, Duesseldorf, 40225, GERMANY.

Gerd Geerling (G)

Department of Ophthalmology, Medical Faculty and University Hospital Düsseldorf, Heinrich Heine University Duesseldorf, Moorenstrasse 5, Duesseldorf, 40225, GERMANY.

Joana Witt (J)

Department of Ophthalmology, Medical Faculty and University Hospital Düsseldorf, Heinrich Heine University Duesseldorf, Moorenstrasse 5, Duesseldorf, 40225, GERMANY.

Classifications MeSH