bioRxiv Science⌕ Search

Biology subjects

Amadeo, F.

Publications and source records attributed to Amadeo, F..

2 recordsLinked to original sources

Multicentre comparison of biological and functional properties of mesenchymal stromal cells from different sources cultivated using a harmonised manufacturing workflow

BackgroundMesenchymal stromal cells (MSCs), commonly sourced from adipose tissue, bone marrow and umbilical cord, have been widely used in many medical conditions due to their therapeutic potential. Yet, the still limited understanding of the underlying mechanisms of action hampers clinical translation. Clinical potency can vary considerably depending on tissue source, donor attributes, but importantly, also culture conditions. Lack of standard procedures hinders inter-study comparability and delays the progression of the field. The aim of this study was A-to assess the impact on MSC characteristics when different laboratories performed analysis on the same MSC material using harmonised culture conditions and B-to understand source-specific differences. MethodsThree independent institutions performed a head-to-head comparison of human-derived adipose (A-), bone marrow (BM-), and umbilical cord (UC-) MSCs using harmonised culture conditions. In each centre, cells from one specific tissue source were isolated and later distributed across the network to assess their biological properties, including cell expansion, immune phenotype, and tri-lineage differentiation (part A). To assess tissue specific function, angiogenic and immunomodulatory properties and the in vivo biodistribution were compared in one expert lab (part B). ResultsBy implementing a harmonised manufacturing workflow, we obtained largely reproducible results across three independent laboratories in part A of our study. Unique growth patterns and differentiation potential were observed for each tissue source, with similar trends observed between centres. Immune phenotyping verified expression of typical MSC surface markers and absence of contaminating surface markers. Depending on the established protocols in the different laboratories, quantitative data varied slightly. Functional experiments in part B concluded that conditioned media from BM-MSCs significantly enhanced tubulogenesis and endothelial migration in vitro. In contrast, immunomodulatory studies reported superior immunosuppressive abilities for A-MSCs. Biodistribution studies in healthy mice showed lung entrapment after administration of all three types of MSCs, with a significantly faster clearance of BM-MSCs. ConclusionThese results show the heterogeneous behaviour and regenerative properties of MSCs as a reflection of intrinsic tissue-origin properties while providing evidence that the use of standardised culture procedures can reduce but not eliminate inter-lab and operator differences. HighlightsIn this study, we have: - Provided a harmonised manufacturing workflow that has demonstrated reproducible results across three independent laboratories when expanding MSCs. - Defined a multi-assay matrix capable of identifying functional differences in terms of angiogenesis, wound healing abilities and immunosuppressive properties. - Demonstrated similar in vivo biodistribution properties regardless of cell origin.

cell biology↗

Comparison between optical tissue clearing methods for detecting administered mesenchymal stromal cells in mouse lungs

Optical tissue clearing of lung tissue enables the intact lung to be imaged using fluorescence microscopy. Several clearing protocols have been developed in recent years, including the Clear, Unobstructed Brain/Body Imaging Cocktails and Computational analysis (CUBIC), stabilised 3D imaging of solvent-cleared organs (s-DISCO) and Ethyl cinnamate (ECi) methods. Here we compared these protocols with the aim of determining the biodistribution of mesenchymal stroma cells (MSCs) and understanding how they interact with host cells in the mouse lung. First, we evaluated how each method affected the size, morphology, and transparency of the lungs. Then, we compared the preservation of the fluorescence of the protein tdTomato expressed by the MSCs, and of the organic dye Evans Blue which labels the vasculature. In addition, we tested the compatibility of the methods with immunofluorescence staining. We found that CUBIC clearing is the only method that enables direct imaging of fluorescently labelled MSCs in the lungs thereby allowing the study of the MSC interaction with endothelial and immune cells when combined with immunofluorescence staining. Overall, 3D imaging of CUBIC cleared lungs confirmed that injected MSCs are initially retained in the pulmonary microvasculature, and that most cells are eliminated from the lungs within the first 24 h. Summary statementWe present a tissue clearing approach to visualize exogenous MSCs in the mouse lung and study their effects in the host.

physiology↗