Pore geometry influences growth and cell adhesion of infrapatellar mesenchymal stem cells in biofabricated 3D thermoplastic scaffolds useful for cartilage tissue engineering
Creators
- 1. Excellence Research Unit "Modeling Nature" (MNat), University of Granada, Granada (Spain)
- 2. Department of Human Anatomy and Embryology, Faculty of Medicine, University of Granada, Granada (Spain)
- 3. Biopathology and Regenerative Medicine Institute (IBIMER), Centre for Biomedical Research (CIBM), University of Granada, Granada (Spain)
- 4. Instituto de Investigación Biosanitaria de Granada (ibs.GRANADA), University Hospitals of Granada-University of Granada, Granada (Spain)
- 5. Department of Orthopedic Surgery and Traumatology, Virgen de la Victoria University Hospital, 29010 Málaga (Spain)
Description
Highlights: • Porosity is a critical parameter for biomechanics and cell-biomaterial interactivity. • Pore size does not influence significance difference on cell proliferation. • Geometrical arrangements of porosities do not depend on the material characteristics. • Angles produced by the cross-sections of fibers are critical for cell proliferation. • Triangular pores showed optimal conditioning for MSCs in cartilage regeneration. The most pressing need in cartilage tissue engineering (CTE) is the creation of a biomaterial capable to tailor the complex extracellular matrix of the tissue. Despite the standardized used of polycaprolactone (PCL) for osteochondral scaffolds, the pronounced stiffness mismatch between PCL scaffold and the tissue it replaces remarks the biomechanical incompatibility as main limitation. To overcome it, the present work was focused in the design and analysis of several geometries and pore sizes and how they affect cell adhesion and proliferation of infrapatellar fat pad-derived mesenchymal stem cells (IPFP-MSCs) loaded in biofabricated 3D thermoplastic scaffolds. A novel biomaterial for CTE, the 1,4-butanediol thermoplastic polyurethane (b-TPUe) together PCL were studied to compare their mechanical properties. Three different geometrical patterns were included: hexagonal (H), square (S), and, triangular (T); each one was printed with three different pore sizes (PS): 1, 1.5 and 2 mm. Results showed differences in cell adhesion, cell proliferation and mechanical properties depending on the geometry, porosity and type of biomaterial used. Finally, the microstructure of the two optimal geometries (T1.5 and T2) was deeply analyzed using multiaxial mechanical tests, with and without perimeters, μCT for microstructure analysis, DNA quantification and degradation assays. In conclusion, our results evidenced that IPFP-MSCs-loaded b-TPUe scaffolds had higher similarity with cartilage mechanics and T1.5 was the best adapted morphology for CTE.
Availability note (English)
Available from http://dx.doi.org/10.1016/j.msec.2021.111933Additional details
Identifiers
- DOI
- 10.1016/j.msec.2021.111933;
- PII
- S0928493121000710;
Publishing Information
- Journal Title
- Materials Science and Engineering. C, Biomimetic Materials, Sensors and Systems
- Journal Volume
- 122
- Journal Page Range
- vp.
- ISSN
- 0928-4931
INIS
- Country of Publication
- Netherlands
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 54045645
- Subject category
- S36: MATERIALS SCIENCE; S60: APPLIED LIFE SCIENCES;
- Descriptors DEI
- BIOLOGICAL MATERIALS; BUTANEDIOLS; CELL PROLIFERATION; COMPUTERIZED TOMOGRAPHY; CROSS SECTIONS; DESIGN; DNA; FIBERS; GEOMETRY; MATRICES; MECHANICAL TESTS; MECHANICS; MICROSTRUCTURE; MORPHOLOGY; POLYURETHANES; POROSITY; STEM CELLS; THERMOPLASTICS
- Descriptors DEC
- ALCOHOLS; ANIMAL CELLS; DIAGNOSTIC TECHNIQUES; GLYCOLS; HYDROXY COMPOUNDS; MATERIALS; MATERIALS TESTING; MATHEMATICS; NUCLEIC ACIDS; ORGANIC COMPOUNDS; ORGANIC POLYMERS; PETROCHEMICALS; PETROLEUM PRODUCTS; PLASTICS; POLYAMIDES; POLYMERS; SOMATIC CELLS; SYNTHETIC MATERIALS; TESTING; TOMOGRAPHY
Optional Information
- Copyright
- Copyright (c) 2021 Elsevier B.V. All rights reserved.