dc.creatorJara, Claudia
dc.creatorOyarzún Ampuero, Felipe
dc.creatorCarrión, Flavio
dc.creatorGonzález Echeverría, Esteban
dc.creatorCappelli, Claudio
dc.creatorCaviedes Fernández, Pablo
dc.date.accessioned2020-11-02T20:49:06Z
dc.date.available2020-11-02T20:49:06Z
dc.date.created2020-11-02T20:49:06Z
dc.date.issued2020
dc.identifierDiabetol Metab Syndr (2020) 12:66
dc.identifier10.1186/s13098-020-00573-9
dc.identifierhttps://repositorio.uchile.cl/handle/2250/177502
dc.description.abstractBackground: In type I diabetes mellitus (T1DM) pancreatic beta cells are destroyed. Treatment entails exogenous insulin administration and strict diet control, yet optimal glycemic control is hardly attainable. Islet transplant could be an alternative in patients with poor glycemic control, but inefficient islet purification and autoimmune response of patients is still a challenge. For these reasons, it is necessary to explore new cellular sources and immunological isolation methods oriented to develop T1DM cell-based therapies. Aims: We postulate human adipose-derived stem cell (hASC) as an adequate source to generate pancreatic islet cells in vitro, and to produce islet-like structures. Furthermore, we propose microencapsulation of these aggregates as an immunological isolation strategy. Methods hASC obtained from lipoaspirated fat tissue from human donors were differentiated in vitro to insulin (Ins) and glucagon (Gcg) producing cells. Then, insulin producing cells (IPC) and glucagon producing cells (GPC) were cocultured in low adhesion conditions to form cellular aggregates, and later encapsulated in a sodium alginate polymer. Expression of pancreatic lineage markers and secretion of insulin or glucagon in vitro were analyzed. Results: The results show that multipotent hASC efficiently differentiate to IPC and GPC, and express pancreatic markers, including insulin or glucagon hormones which they secrete upon stimulation (fivefold for insulin in IPC, and fourfold for glucagon, compared to undifferentiated cells). In turn, calculation of the Feret diameter and area of cellular aggregates revealed mean diameters of similar to 80 mu m, and 65% of the aggregates reached 4000 mu m(2) at 72 h of formation. IPC/GPC aggregates were then microencapsulated in sodium-alginate polymer microgels, which were found to be more stable when stabilized with Ba2+, yielding average diameters of similar to 300 mu m. Interestingly, Ba2+-microencapsulated aggregates respond to high external glucose with insulin secretion.
dc.languageen
dc.publisherBMC
dc.rightshttp://creativecommons.org/licenses/by-nc-nd/3.0/cl/
dc.rightsAttribution-NonCommercial-NoDerivs 3.0 Chile
dc.sourceDiabetology & Metabolic Syndrome
dc.subjectAdipose-derived mesenchymal stem cells
dc.subjectCellular aggregates
dc.subjectCellular differentiation
dc.subjectCell therapy
dc.subjectDiabetes
dc.subjectMicroencapsulation
dc.titleMicroencapsulation of cellular aggregates composed of differentiated insulin and glucagon-producing cells from human mesenchymal stem cells derived from adipose tissue
dc.typeArtículo de revista


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