6533b860fe1ef96bd12c3a11
RESEARCH PRODUCT
3d collagen hydrogel promotes in vitro langerhans islets vascularization through ad-mvfs angiogenic activity
Carmelo BrunoSimona CamporaSalvatrice RigogliusoMonica SalamoneAldo NicosiaGiulio Ghersisubject
0301 basic medicineMMP2QH301-705.5Angiogenesis0206 medical engineeringMedicine (miscellaneous)Adipose tissue3D coculture02 engineering and technologyRegenerative medicineGeneral Biochemistry Genetics and Molecular BiologyArticleExtracellular matrix03 medical and health sciencesmedicineBiology (General)Islet of LangerhansTransplantationChemistry020601 biomedical engineeringCell biologyTransplantationMicrovascular fragments030104 developmental biologymedicine.anatomical_structureBasal laminaAngiogenesisStem cell3D coculture; Angiogenesis; Islet of Langerhans; Microvascular fragments; Transplantationdescription
Adipose derived microvascular fragments (ad-MVFs) consist of effective vascularization units able to reassemble into efficient microvascular networks. Because of their content in stem cells and related angiogenic activity, ad-MVFs represent an interesting tool for applications in regenerative medicine. Here we show that gentle dissociation of rat adipose tissue provides a mixture of ad-MVFs with a length distribution ranging from 33–955 μm that are able to maintain their original morphology. The isolated units of ad-MVFs that resulted were able to activate transcriptional switching toward angiogenesis, forming tubes, branches, and entire capillary networks when cultured in 3D collagen type-I hydrogel. The proper involvement of metalloproteases (MMP2/MMP9) and serine proteases in basal lamina and extracellular matrix ECM degradation during the angiogenesis were concurrently assessed by the evaluation of alpha-smooth muscle actin (αSMA) expression. These results suggest that collagen type-I hydrogel provides an adequate 3D environment supporting the activation of the vascularization process. As a proof of concept, we exploited 3D collagen hydrogel for the setting of ad-MVF–islet of Langerhans coculture to improve the islets vascularization. Our results suggest potential employment of the proposed in vitro system for regenerative medicine applications, such as the improving of the islet of Langerhans engraftment before transplantation.
year | journal | country | edition | language |
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2021-06-27 |