PEER-REVIEWED PUBLICATION

2019

Effect of Topography and Physical Stimulus on hMSC Phenotype Using a 3D In Vitro Model

Kumar D, Cain SA, et al.

Nanomaterials

University of Manchester, University of Oxford, University of Liverpool

RESEARCH SUMMARY
This communication reports a comparative 3D in vitro model examining how scaffold architecture (aligned electrospun PCL nanofibres alone vs nanofibre/collagen hydrogel laminate composites) and cyclic tensile loading jointly regulate human mesenchymal stem cell (hMSC) phenotype over 7 days. Across conditions, hMSCs in contact with aligned fibres oriented parallel to fibre direction, indicating strong topographical guidance. In laminate composites, static culture promoted hMSC migration from the fibre/gel interface into the collagen layer (up to ~500 µm by day 7) and reduced alignment, whereas cyclic tensile stimulation maintained cells predominantly at the fibre/gel interface and preserved alignment cues. Gene expression analysis (qRT-PCR) showed stimulus-dependent lineage-associated responses: mechanically loaded composites upregulated RUNX2 (osteogenic), VEGF (angiogenic), and TNC (tenogenic) relative to static composites and loaded fibres, while cartilage markers (SOX9,COL2A1) and elastin (ELN) showed limited or no benefit from the composite environment. Overall, the results highlight that combining microstructural organization with controlled mechanical loading can steer MSC localization and bias multi-lineage phenotypic signaling in composite scaffolds.

CELLSCALE INSTRUMENT USED

MechanoCulture T6

hMSC-seeded aligned PCL electrospun fibre mats (with or without an overlaid type I collagen hydrogel layer forming a laminate composite) were mounted in a CellScale Mechanoculture MCT6 loading system (MechanoCulture T6) and subjected to cyclic uniaxial tensile loading at 5% strain and 1 Hz for 1 h/day over a 7-day culture period. This controlled cyclic stretch was used to compare mechanically stimulated versus static scaffolds and quantify loading-driven effects on MSC localization at the fibre/gel interface, cytoskeletal alignment (confocal), and lineage-associated gene expression (RUNX2,VEGF,TNC).
AUTHORS

Deepak Kumar, Stuart A. Cain, Lucy A. Bosworth.

PUBLICATION DETAILS
JOURNAL

Nanomaterials

YEAR

2019

INSTITUTIONS

University of Manchester, University of Oxford, University of Liverpool

COUNTRIES

United Kingdom

INSTRUMENT USED

MechanoCulture T6

TESTING METHODS

Hydrated and Temperature Controlled TestingTensile Testing

RESEARCH APPLICATIONS

MechanotransductionScaffold Mechanical TestingStem Cell MechanobiologyTendon Tissue Engineering & Ligament Mechanics

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