Literature DB >> 26013960

Cell seeding density is a critical determinant for copolymer scaffolds-induced bone regeneration.

Mohammed A Yassin1, Knut N Leknes1, Torbjorn O Pedersen1, Zhe Xing1, Yang Sun2, Stein A Lie1, Anna Finne-Wistrand2, Kamal Mustafa1.   

Abstract

Constructs intended for bone tissue engineering (TE) are influenced by the initial cell seeding density. Therefore, the objective of this study was to determine the effect of bone marrow stromal stem cells (BMSCs) density loaded onto copolymer scaffolds on bone regeneration. BMSCs were harvested from rat's bone marrow and cultured in media with or without osteogenic supplements. Cells were seeded onto poly(l-lactide-co-ε-caprolactone) [poly(LLA-co-CL)] scaffolds at two different densities: low density (1 × 10(6) cells/scaffold) or high density (2 × 10(6) cells/scaffold) using spinner modified flasks and examined after 1 and 3 weeks. Initial attachment and spread of BMSC onto the scaffolds was recorded by scanning electron microscopy. Cell proliferation was assessed by DNA quantification and cell differentiation by quantitative real-time reverse transcriptase-polymerized chain reaction analysis (qRT-PCR). Five-millimeter rat calvarial defects (24 defects in 12 rats) were implanted with scaffolds seeded with either low or high density expanded with or without osteogenic supplements. Osteogenic supplements significantly increased cell proliferation (p < 0.001). Scaffolds seeded at high cell density exhibited higher mRNA expressions of Runx2 p = 0.001, Col1 p = 0.001, BMP2 p < 0.001, BSP p < 0.001, and OC p = 0.013. More bone was formed in response to high cell seeding density (p = 0.023) and high seeding density with osteogenic medium (p = 0.038). Poly (LLA-co-CL) scaffolds could be appropriate candidates for bone TE. The optimal number of cells to be loaded onto scaffolds is critical for promoting Extracellular matrix synthesis and bone formation. Cell seeding density and osteogenic supplements may have a synergistic effect on the induction of new bone.
© 2015 The Authors Journal of Biomedical Materials Research Part A Published by Wiley Periodicals, Inc.

Entities:  

Keywords:  bone marrow stromal cells; bone regeneration; cell seeding density; osteogenic supplements; polymer scaffolds

Mesh:

Substances:

Year:  2015        PMID: 26013960      PMCID: PMC4744655          DOI: 10.1002/jbm.a.35505

Source DB:  PubMed          Journal:  J Biomed Mater Res A        ISSN: 1549-3296            Impact factor:   4.396


  55 in total

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2.  Effect of seeding osteoprogenitor cells as dense clusters on cell growth and differentiation.

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Journal:  Tissue Eng       Date:  2001-12

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4.  Phenotypic and functional comparison of cultures of marrow-derived mesenchymal stem cells (MSCs) and stromal cells.

Authors:  M K Majumdar; M A Thiede; J D Mosca; M Moorman; S L Gerson
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5.  Comparative evaluation of in vivo osteogenic differentiation of fetal and adult mesenchymal stem cell in rat critical-sized femoral defect model.

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6.  Comparison of short-run cell seeding methods for poly(L-lactide-co-1,5-dioxepan-2-one) scaffold intended for bone tissue engineering.

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8.  Human bone cell cultures in biocompatibility testing. Part II: effect of ascorbic acid, beta-glycerophosphate and dexamethasone on osteoblastic differentiation.

Authors:  M J Coelho; M H Fernandes
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9.  Cell seeding density is a critical determinant for copolymer scaffolds-induced bone regeneration.

Authors:  Mohammed A Yassin; Knut N Leknes; Torbjorn O Pedersen; Zhe Xing; Yang Sun; Stein A Lie; Anna Finne-Wistrand; Kamal Mustafa
Journal:  J Biomed Mater Res A       Date:  2015-09-04       Impact factor: 4.396

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  13 in total

1.  Cell seeding density is a critical determinant for copolymer scaffolds-induced bone regeneration.

Authors:  Mohammed A Yassin; Knut N Leknes; Torbjorn O Pedersen; Zhe Xing; Yang Sun; Stein A Lie; Anna Finne-Wistrand; Kamal Mustafa
Journal:  J Biomed Mater Res A       Date:  2015-09-04       Impact factor: 4.396

2.  Combining in silico and in vitro models to inform cell seeding strategies in tissue engineering.

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4.  A Bioactive Hydrogel and 3D Printed Polycaprolactone System for Bone Tissue Engineering.

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6.  Orbital seeding of mesenchymal stromal cells increases osteogenic differentiation and bone-like tissue formation.

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7.  In vitro and in vivo analysis of the biocompatibility of two novel and injectable calcium phosphate cements.

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Review 8.  The cell in the ink: Improving biofabrication by printing stem cells for skeletal regenerative medicine.

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9.  Decellularized pulp matrix as scaffold for mesenchymal stem cell mediated bone regeneration.

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Review 10.  Emulating Human Tissues and Organs: A Bioprinting Perspective Toward Personalized Medicine.

Authors:  Ana Clotilde Fonseca; Ferry P W Melchels; Miguel J S Ferreira; Samuel R Moxon; Geoffrey Potjewyd; Tim R Dargaville; Susan J Kimber; Marco Domingos
Journal:  Chem Rev       Date:  2020-09-16       Impact factor: 60.622

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