Literature DB >> 32100748

Scaffold channel size influences stem cell differentiation pathway in 3-D printed silica hybrid scaffolds for cartilage regeneration.

Siwei Li1, Francesca Tallia1, Ali A Mohammed1, Molly M Stevens2, Julian R Jones1.   

Abstract

We report that 3-D printed scaffold channel size can direct bone marrow derived stem cell differentiation. Treatment of articular cartilage trauma injuries, such as microfracture surgery, have limited success because durability is limited as fibrocartilage forms. A scaffold-assisted approach, combining microfracture with biomaterials has potential if the scaffold can promote articular cartilage production and share load with cartilage. Here, we investigated human bone marrow derived stromal cell (hBMSC) differentiation in vitro in 3-D printed silica/poly(tetrahydrofuran)/poly(ε-caprolactone) hybrid scaffolds with specific channel sizes. Channel widths of ∼230 μm (210 ± 22 μm mean strut size, 42.4 ± 3.9% porosity) provoked hBMSC differentiation down a chondrogenic path, with collagen Type II matrix prevalent, indicative of hyaline cartilage. When pores were larger (∼500 μm, 229 ± 29 μm mean strut size, 63.8 ± 1.6% porosity) collagen Type I was dominant, indicating fibrocartilage. There was less matrix and voids in smaller channels (∼100 μm, 218 ± 28 μm mean strut size, 31.2 ± 2.9% porosity). Our findings suggest that a 200-250 μm pore channel width, in combination with the surface chemistry and stiffness of the scaffold, is optimal for cell-cell interactions to promote chondrogenic differentiation and enable the chondrocytes to maintain their phenotype.

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Year:  2020        PMID: 32100748     DOI: 10.1039/c9bm01829h

Source DB:  PubMed          Journal:  Biomater Sci        ISSN: 2047-4830            Impact factor:   6.843


  11 in total

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2.  Precision 3D printed meniscus scaffolds to facilitate hMSCs proliferation and chondrogenic differentiation for tissue regeneration.

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Journal:  J Nanobiotechnology       Date:  2021-12-02       Impact factor: 10.435

Review 3.  Innovative Concepts and Recent Breakthrough for Engineered Graft and Constructs for Bone Regeneration: A Literature Systematic Review.

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Journal:  Materials (Basel)       Date:  2022-01-31       Impact factor: 3.623

4.  Fabrication of channeled scaffolds through polyelectrolyte complex (PEC) printed sacrificial templates for tissue formation.

Authors:  Haoyu Wang; Xiaqing Zhou; Juan Wang; Xinping Zhang; Meifeng Zhu; Hongjun Wang
Journal:  Bioact Mater       Date:  2022-01-29

5.  Effect of Pore Size on Cell Behavior Using Melt Electrowritten Scaffolds.

Authors:  Yu Han; Meifei Lian; Qiang Wu; Zhiguang Qiao; Binbin Sun; Kerong Dai
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Review 6.  Enlightenment of Growth Plate Regeneration Based on Cartilage Repair Theory: A Review.

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Journal:  Front Bioeng Biotechnol       Date:  2021-06-03

7.  Quantifying 3D Strain in Scaffold Implants for Regenerative Medicine.

Authors:  Jeffrey N Clark; Saman Tavana; Agathe Heyraud; Francesca Tallia; Julian R Jones; Ulrich Hansen; Jonathan R T Jeffers
Journal:  Materials (Basel)       Date:  2020-09-03       Impact factor: 3.623

8.  Exploratory Full-Field Mechanical Analysis across the Osteochondral Tissue-Biomaterial Interface in an Ovine Model.

Authors:  Jeffrey N Clark; Agathe Heyraud; Saman Tavana; Talal Al-Jabri; Francesca Tallia; Brett Clark; Gordon W Blunn; Justin P Cobb; Ulrich Hansen; Julian R Jones; Jonathan R T Jeffers
Journal:  Materials (Basel)       Date:  2020-09-04       Impact factor: 3.623

9.  Numerical Simulations as Means for Tailoring Electrically Conductive Hydrogels Towards Cartilage Tissue Engineering by Electrical Stimulation.

Authors:  Julius Zimmermann; Thomas Distler; Aldo R Boccaccini; Ursula van Rienen
Journal:  Molecules       Date:  2020-10-16       Impact factor: 4.411

10.  Mussel-inspired extracellular matrix-mimicking hydrogel scaffold with high cell affinity and immunomodulation ability for growth factor-free cartilage regeneration.

Authors:  Donglin Gan; Yanan Jiang; Yuelin Hu; Xiao Wang; Qiguang Wang; Kefeng Wang; Chaoming Xie; Lu Han; Xiong Lu
Journal:  J Orthop Translat       Date:  2022-03-10       Impact factor: 5.191

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