Osteocyte differentiation and the formation of an interconnected cellular network in vitro

Extracellular matrix (ECM) stiffness and cell density can regulate osteoblast differentiation in two dimensional environments. However, it is not yet known how osteoblast-osteocyte differentiation is regulated within a 3D ECM environment, akin to that existing in vivo. In this study we test the hyp...

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Main Authors: MJ Mc Garrigle, CA Mullen, MG Haugh, MC Voisin, LM McNamara
Format: Article
Language:English
Published: AO Research Institute Davos 2016-05-01
Series:European Cells & Materials
Subjects:
Online Access:http://www.ecmjournal.org/papers/vol031/pdf/v031a21.pdf
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spelling doaj-5ce4d74b13524dfd8d45c43b7a138ad42020-11-24T21:41:40Zeng AO Research Institute DavosEuropean Cells & Materials1473-22622016-05-013132334010.22203/eCM.v031a21Osteocyte differentiation and the formation of an interconnected cellular network in vitroMJ Mc Garrigle CA MullenMG HaughMC VoisinLM McNamara0Centre for Biomechanics Research (BMEC), Biomedical Engineering, College of Engineering and Informatics, National University of Ireland, Galway, Ireland Extracellular matrix (ECM) stiffness and cell density can regulate osteoblast differentiation in two dimensional environments. However, it is not yet known how osteoblast-osteocyte differentiation is regulated within a 3D ECM environment, akin to that existing in vivo. In this study we test the hypothesis that osteocyte differentiation is regulated by a 3D cell environment, ECM stiffness and cell density. We encapsulated MC3T3-E1 pre-osteoblastic cells at varied cell densities (0.25, 1 and 2 × 106 cells/mL) within microbial transglutaminase (mtgase) gelatin hydrogels of low (0.58 kPa) and high (1.47 kPa) matrix stiffnesses. Cellular morphology was characterised from phalloidin-FITC and 4',6-diamidino-2-phenylindole (DAPI) dilactate staining. In particular, the expression of cell dendrites, which are phenotypic of osteocyte differentiation, were identified. Immunofluorescent staining for the osteocytes specific protein DMP-1 was conducted. Biochemical analyses were performed to determine cell number, alkaline phosphatase activity and mineralisation at 2.5 hours, 3, 21 and 56 days. We found that osteocyte differentiation and the formation of an interconnected network between dendritic cells was significantly increased within low stiffness 3D matrices, compared to cells within high stiffness matrices, at high cell densities. Moreover we saw that this network was interconnected, expressed DMP-1 and also connected with osteoblast-like cells at the matrix surface. This study shows for the first time the role of the 3D physical nature of the ECM and cell density for regulating osteocyte differentiation and the formation of the osteocyte network in vitro. Future studies could apply this method to develop 3D tissue engineered constructs with an osteocyte network in place.http://www.ecmjournal.org/papers/vol031/pdf/v031a21.pdfOsteoblastosteocyteinterconnected networkthree dimensionalcell densitymatrix stiffnessin vitro
collection DOAJ
language English
format Article
sources DOAJ
author MJ Mc Garrigle
CA Mullen
MG Haugh
MC Voisin
LM McNamara
spellingShingle MJ Mc Garrigle
CA Mullen
MG Haugh
MC Voisin
LM McNamara
Osteocyte differentiation and the formation of an interconnected cellular network in vitro
European Cells & Materials
Osteoblast
osteocyte
interconnected network
three dimensional
cell density
matrix stiffness
in vitro
author_facet MJ Mc Garrigle
CA Mullen
MG Haugh
MC Voisin
LM McNamara
author_sort MJ Mc Garrigle
title Osteocyte differentiation and the formation of an interconnected cellular network in vitro
title_short Osteocyte differentiation and the formation of an interconnected cellular network in vitro
title_full Osteocyte differentiation and the formation of an interconnected cellular network in vitro
title_fullStr Osteocyte differentiation and the formation of an interconnected cellular network in vitro
title_full_unstemmed Osteocyte differentiation and the formation of an interconnected cellular network in vitro
title_sort osteocyte differentiation and the formation of an interconnected cellular network in vitro
publisher AO Research Institute Davos
series European Cells & Materials
issn 1473-2262
publishDate 2016-05-01
description Extracellular matrix (ECM) stiffness and cell density can regulate osteoblast differentiation in two dimensional environments. However, it is not yet known how osteoblast-osteocyte differentiation is regulated within a 3D ECM environment, akin to that existing in vivo. In this study we test the hypothesis that osteocyte differentiation is regulated by a 3D cell environment, ECM stiffness and cell density. We encapsulated MC3T3-E1 pre-osteoblastic cells at varied cell densities (0.25, 1 and 2 × 106 cells/mL) within microbial transglutaminase (mtgase) gelatin hydrogels of low (0.58 kPa) and high (1.47 kPa) matrix stiffnesses. Cellular morphology was characterised from phalloidin-FITC and 4',6-diamidino-2-phenylindole (DAPI) dilactate staining. In particular, the expression of cell dendrites, which are phenotypic of osteocyte differentiation, were identified. Immunofluorescent staining for the osteocytes specific protein DMP-1 was conducted. Biochemical analyses were performed to determine cell number, alkaline phosphatase activity and mineralisation at 2.5 hours, 3, 21 and 56 days. We found that osteocyte differentiation and the formation of an interconnected network between dendritic cells was significantly increased within low stiffness 3D matrices, compared to cells within high stiffness matrices, at high cell densities. Moreover we saw that this network was interconnected, expressed DMP-1 and also connected with osteoblast-like cells at the matrix surface. This study shows for the first time the role of the 3D physical nature of the ECM and cell density for regulating osteocyte differentiation and the formation of the osteocyte network in vitro. Future studies could apply this method to develop 3D tissue engineered constructs with an osteocyte network in place.
topic Osteoblast
osteocyte
interconnected network
three dimensional
cell density
matrix stiffness
in vitro
url http://www.ecmjournal.org/papers/vol031/pdf/v031a21.pdf
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AT mcvoisin osteocytedifferentiationandtheformationofaninterconnectedcellularnetworkinvitro
AT lmmcnamara osteocytedifferentiationandtheformationofaninterconnectedcellularnetworkinvitro
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