Predicting cell viability within tissue scaffolds under equiaxial strain: multi-scale finite element model of collagen–cardiomyocytes constructs
Explore this paper's citation graph
Summary
This study has merged two powerful analysis tools, namely finite element analysis and stochastic analysis, to understand the mechanical strain within the tissue scaffold and residing cells and to predict the cell viability upon applying mechanical strains.
- Type
- article
- Published
- 2017-01-16
- Cited by
- 6
- References
- 78
- OpenAlex
- https://openalex.org/W2575480580
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:3791799
Keywords
Finite element method, Scaffold, Tissue engineering, Viability assay, Biomedical engineering
References
- Mechanical stress induces the expression of high molecular mass heat shock protein in human chondrocytic cell line CS-OKB.
- Is random close packing of spheres well defined?
- The Stimulation of the Cardiac Differentiation of Mesenchymal Stem Cells in Tissue Constructs that Mimic Myocardium Structure and Biomechanics
- Adhesive and mechanical regulation of mesenchymal stem cell differentiation in human bone marrow and periosteum-derived progenitor cells
- From single fiber to macro-level mechanics: A structural finite-element model for elastomeric fibrous biomaterials
- A New Constitutive Framework for Arterial Wall Mechanics and a Comparative Study of Material Models
- Quantification of Hepatitis C Virus Cell-to-Cell Spread Using a Stochastic Modeling Approach
- Effect of Mechanical Loading on Three-Dimensional Cultures of Embryonic Stem Cell-Derived Cardiomyocytes
- Three-dimensional simulation of anisotropic cell-driven collagen gel compaction
- The elastic field outside an ellipsoidal inclusion
- Three-dimensional finite element modeling of pericellular matrix and cell mechanics in the nucleus pulposus of the intervertebral disk based on in situ morphology
- Random Heterogeneous Media: Microstructure and Improved Bounds on Effective Properties
- Biophysical signals controlling cell fate decisions: how do stem cells really feel?
- Strain-time cell-death threshold for skeletal muscle in a tissue-engineered model system for deep tissue injury.
- Mechanical unloading reverses transverse tubule remodelling and normalizes local Ca2+-induced Ca2+release in a rodent model of heart failure
- Fibers in the extracellular matrix enable long-range stress transmission between cells.
- Human Ventricular Unloading Induces Cardiomyocyte Proliferation
- Three-dimensional systolic strain patterns in the normal human left ventricle: characterization with tagged MR imaging.
- Incorporation of experimentally-derived fiber orientation into a structural constitutive model for planar collagenous tissues.
- Fibrocartilage Tissue Engineering: The Role of the Stress Environment on Cell Morphology and Matrix Expression
Cited by
- Creating homogenous strain distribution within 3D cell‐encapsulated constructs using a simple and cost‐effective uniaxial tensile bioreactor: Design and validation study
- Equiaxial Strain Modulates Adipose-derived Stem Cell Differentiation within 3D Biphasic Scaffolds towards Annulus Fibrosus
- Utilization of Finite Element Analysis for Articular Cartilage Tissue Engineering
- Impact of Digestive Inflammatory Environment and Genipin Crosslinking on Immunomodulatory Capacity of Injectable Musculoskeletal Tissue Scaffold
- Tumor removal limits prostate cancer cell dissemination in bone and osteoblasts induce cancer cell dormancy through focal adhesion kinase
- A Comprehensive Exploration of Polymeric 3D Sponges for Regeneration of Bone
- Tumor removal limits prostate cancer cell dissemination in bone and osteoblasts induce cancer cell dormancy through focal adhesion kinase
Related papers
- 3D bioprinting of tissue engineering scaffold for cell culture
- Nanofibrous scaffold engineering using electrospinning.
- [Strategies to choose scaffold materials for tissue engineering].
- Bioengineering of a scaffold-less three-dimensional tissue using net mould
- Design, fabrication and application of tissue engineering used cells scaffold
- Fibrous scaffolds for tissue engineering