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Lipedema is a chronic, progressive disease of adipose tissue with unknown etiology. Based on the relevance of the stromal vascular fraction (SVF) cell population in lipedema, we performed a thorough characterization of subcutaneous adipose tissue, SVF isolated thereof and the sorted populations of endothelial cells (EC), pericytes and cultured adipose-derived stromal/stem cells (ASC) of early-stage lipedema patients. We employed histological and gene expression analysis and investigated the endothelial barrier by immunofluorescence and analysis of endothelial permeability in vitro. Although there were no significant differences in histological stainings, we found altered gene expression of factors relevant for local estrogen metabolism (aromatase), preadipocyte commitment (ZNF423) and immune cell infiltration (CD11c) in lipedema on the tissue level, as well as in distinct cellular subpopulations. Machine learning analysis of immunofluorescence images of CD31 and ZO-1 revealed a morphological difference in the cellular junctions of EC cultures derived from healthy and lipedema individuals. Furthermore, the secretome of lipedema-derived SVF cells was sufficient to significantly increase leakiness of healthy human primary EC, which was also reflected by decreased mRNA expression of VE-cadherin. Here, we showed for the first time that the secretome of SVF cells creates an environment that triggers endothelial barrier dysfunction in early-stage lipedema. Moreover, since alterations in gene expression were detected on the cellular and/or tissue level, the choice of sample material is of high importance in elucidating this complex disease.
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Adipose tissue derived stromal vascular fraction (SVF) has emerged as cell therapeutic applicable by point-of-care one-step procedures in autologous settings. Even a mechanical isolation, completed within minutes, is typically followed by multiple steps such as cell washing, filtration, erythrocyte lysis and cryopreservation, which may impact the cell isolate in terms of cell amounts and quality. Using the BioMicroMill, a straightforward device providing mechanically isolated SVF suited for multiple therapeutic doses, we aimed to evaluate the impact of relevant processing steps during isolation and cryopreservation on cell quantity and quality in terms of viability, the presence of regenerative cells, pro-regenerative secretome, vascular network formation. The mechanical isolation yielded in the mean 3.4 × 105 ± 1.42 × 105 SVF cells per ml of lipoaspirate with a mean viability of 38% ± 7.2%. It comprised a heterogeneous mixture of single cells, cell aggregates, extracellular matrix, and microvascular fragments enriched from adipose tissue, providing functionally relevant cell populations (CD31, CD34, CD90, CD105). Adipose-derived stromal cells (ASC) exhibited robust outgrowth, proliferation, and differentiation capacity in vitro. The SVF showed pronounced paracrine activity (IL-10, VEGF-A, HGF, IL-6, IL-8, MCP-1), including proangiogenic factors, and supported 3D vascular network formation, demonstrating strong proangiogenic potential. However, all additional SVF processing steps substantially influenced total cell yield, with cumulative cell losses (erylysis 68% ± 16%, filtration 67% ± 16%, washing 54% ± 9%) but no loss of viability or ASC attachment and proliferation in vitro was observed. In contrast to other processing steps, filtration substantially altered SVF composition towards single cells, which was also reflected in an altered paracrine activity (significant increase in IL-10 and reduction to minimal levels of HGF). Furthermore, despite further cell loss (mean 47% ± 16%), cryopreservation maintained functional cell populations including ASC, paracrine activity and support of 3D network formation in vitro. Taken together, our data demonstrate that processing steps can influence both cell yield and quality. Accordingly, protocol selection should be guided by the intended application and the required functional properties and therefore warrants careful consideration.
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Lipedema is a chronic, progressive disease of adipose tissue with lack of consistent diagnostic criteria. The aim of this study was a thorough comparative characterization of extracellular microRNAs (miRNAs) from the stromal vascular fraction (SVF) of healthy and lipedema adipose tissue. For this, we analyzed 187 extracellular miRNAs in concentrated conditioned medium (cCM) and specifically in small extracellular vesicles (sEVs) enriched thereof by size exclusion chromatography. No significant difference in median particle size and concentration was observed between sEV fractions in healthy and lipedema. We found the majority of miRNAs located predominantly in cCM compared to sEV enriched fraction. Surprisingly, hierarchical clustering of the most variant miRNAs showed that only sEVmiRNA profiles - but not cCMmiRNAs - were impacted by lipedema. Seven sEVmiRNAs (miR-16-5p, miR-29a-3p, miR-24-3p, miR-454-p, miR-144-5p, miR-130a-3p, let-7c-5p) were differently regulated in lipedema and healthy individuals, whereas only one cCMmiRNA (miR-188-5p) was significantly downregulated in lipedema. Comparing SVF from healthy and lipedema patients, we identified sEVs as the lipedema relevant miRNA fraction. This study contributes to identify the potential role of SVF secreted miRNAs in lipedema.
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