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Crielaard, H.

Publications and source records attributed to Crielaard, H..

2 recordsLinked to original sources

Community Challenge towards Consensus on Characterization of Biological Tissue: C4Bios First Findings

This study investigates methodological variability across various expert laboratories worldwide, with regards to characterizing the mechanical properties of biological tissues. Two testing rounds were conducted on the specific use case of uniaxial tensile testing of porcine aorta. In the first round, 24 labs were invited to apply their established methods to assess inter-laboratory variability. This revealed significant methodological diversity and associated variability in the stress-stretch results, underscoring the necessity for a standardized approach. In the second round, a consensus protocol was collaboratively developed and adopted by 19 labs in an attempt to minimize variability. This involved standardized sample preparation and uniformity in testing protocol, including the use of a common cutting and thickness measurement tool. Despite protocol harmonization, significant variability persisted across labs, which could not be solely attributed to inherent biological differences in tissue samples. These results illustrate the challenges in unifying testing methods across different research settings, underlining the necessity for further refinement of testing practices. Enhancing consistency in biomechanical experiments is pivotal when comparing results across studies, as well as when using the resulting material properties for in silico simulations in medical research.

bioengineering↗

The Effect of Mechanical Stimuli on the Phenotypic Plasticity of Induced Pluripotent Stem Cell-Derived Vascular Smooth Muscle Cells in a 3D Hydrogel

IntroductionVascular smooth muscle cells (VSMCs) play a pivotal role in vascular homeostasis, with dysregulation leading to vascular complications. Human induced pluripotent stem cell (hiPSC)-derived VSMCs offer prospects for personalized disease modeling and regenerative strategies. Current research lacks comparative studies on the impact of 3D substrate properties under cyclic strain on phenotype adaptation in hiPSC-derived VSMCs. Here we investigated the potential of human mural cells derived from hiPSC-derived organoids (ODMCs) to undergo phenotypical adaptation under various biological and 3D mechanical stimuli. Methods and resultsODMCs were cultured in 2D conditions with synthetic or contractile differentiation medium, or 3D Gelatin Methacryloyl (GelMa) substrates with varying degrees of functionalization and percentages to modulate material stiffness, elasticity, and crosslink density. Cells in 3D substrates were exposed to cyclic unidirectional strain. Phenotype characterization was conducted using specific markers through immunofluorescence and gene expression analysis. Under static 2D culture, ODMCs derived from hiPSCs exhibited a VSMC phenotype, expressing key mural markers, and demonstrated a level of phenotypic plasticity like primary human vSMCs. In static 3D culture, higher substrate stiffness, lower elasticity and higher crosslink density promoted a contractile phenotype in ODMCs and vSMCs. Dynamic stimulation in 3D substrate promoted a switch towards a contractile phenotype in both cell types. ConclusionOur study demonstrates a phenotypic plasticity of human ODMCs in response to 2D biological and 3D mechanical stimuli that equals that of primary human vSMCs. These findings may contribute to the advancement of tailored approaches for vascular disease modelling and regenerative strategies

cell biology↗