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Smink, A. M.

Publications and source records attributed to Smink, A. M..

2 recordsLinked to original sources

Secretome analysis of human and rat pancreatic islets co-cultured with adipose-derived stromal cells reveals a signature with enhanced regenerative capacities

Pancreatic islet transplantation (PIT), a promising treatment for Type 1 Diabetes (T1D), encounters challenges in the pre- and post-transplantation phases. Co-culturing or co-transplantation of islets with mesenchymal stromal cells (MSC), known for their regenerative properties, emerged as a potential solution and was shown to increase islet function and improve PIT outcomes. This study explored the changes in the islets secretion signature (secretome) when co-cultured with adipose-derived stromal cells (ASC), an MSC subtype. The secretome profile of islets and co-cultures under various stressors, i.e., cytokines, high glucose, hypoxia, and a combination of hypoxia and high glucose, was investigated. The results shed light on the potential mechanisms through which ASC support islets functional survival. Co-culturing pancreatic islets with ASC induced substantial proteomic changes, impacting pathways crucial for energy metabolism, angiogenesis, extracellular matrix organization, and immune responses. The analysis of key signaling molecules (VEGF, PDGF, bFGF, Collagen I alpha 1, IL-1, and IL-10) revealed alterations influenced by the culturing conditions and the presence of the ASC. In vitro functional assays using the secretomes also demonstrated their potential to differentially influence angiogenic processes, enhance collagen deposition, and modulate the immune system based on the conditions in which they were generated. These findings offer valuable insights into the potential of ASC co-culturing to address challenges in PIT, paving the way for enhanced therapeutic interventions in T1D and regenerative medicine. HighlightsO_LIBoth in-silico and in-vitro data support that co-culturing pancreatic islets with ASC enhances islet function. C_LIO_LICo-culturing islets with ASC induces changes in the secretome, impacting pathways related to energy metabolism, angiogenesis, extracellular matrix organization, and immune response. C_LIO_LIKey signaling molecules, including VEGF, PDGF, bFGF, Collagen I alpha 1, IL-1, and IL-10, are differentially affected by various co-culturing conditions. C_LI

cell biology↗

Modulating adipose-derived stromal cells' secretomes by culture conditions: effects on angiogenesis, collagen deposition, and immunomodulation.

The secretome of adipose-derived stromal cells (ASC) presents a promising avenue for cell-free therapies due to their rich mixture of bioactive molecules. Different culture conditions can modulate the composition of this mixture, but how this affects the functional properties of the secretome remains to be investigated. This study investigated the in vitro effects of normoxia, cytokines, high glucose, hypoxia, and hypoxia + high glucose-derived ASC secretomes on angiogenesis (tube formation assay), collagen deposition (Picrosirius-Red staining), and immunomodulation (One-way Mixed Lymphocyte Reaction in combination with an antibody-mediated cell-dependent cytotoxicity assay). The data showed that normoxia and hypoxia-derived secretomes consistently exhibited potent proangiogenic effects in both human and rat models. These secretomes also demonstrated positive influences on collagen deposition and immunomodulation. Interestingly, the human ASC hypoxia + high glucose-derived secretome emerged as a stimulator of collagen deposition and modulator of the immune system. Conversely, cytokines and high glucose-derived secretomes have shown less strong effects in almost all functional parameters. In conclusion, our findings indicate that modulating culturing conditions results in secretomes with different functional properties and emphasizes the multifaceted role of ASC secretomes in regenerative processes.

cell biology↗