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PMID: 17518620 Published · ppublish English Comparative Study Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, Non-P.H.S.

Extended-term culture of bone cells in a compartmentalized bioreactor.

Tissue engineering ·Vol. 12 ·No. 11 ·2006-11-00 ·Pages 3045-54

Dhurjati R, Liu X, Gay CV, Mastro AM, Vogler EA

Abstract

A specialized bioreactor is used to grow mineralizing, collagenous tissue up to 150 microm thick from an inoculum of isolated murine (mouse calvaria MC3T3-E1, American Type Culture Collection (ATCC) CRL-2593) or human (hFOB 1.19 ATCC CRL-11372) fetal osteoblasts over uninterrupted culture periods longer than 120 days (4 months). Proliferation and phenotypic progression of an osteogenic-cell monolayer into a tissue consisting of 6 or more cell layers of mature osteoblasts in the bioreactor was compared with cell performance in conventional tissue-culture polystyrene (TCPS) controls. Cells in the bioreactor basically matched results obtained in TCPS over a 15-day culture interval, but loss of insoluble extracellular matrix and an approximate doubling of apoptosis rates in TCPS after 30 days indicated that progressive instability of cultures maintained in TCPS with periodic refeeding but without subculture. In contrast, stable cultures were maintained in the bioreactor for more than 120 days, suggesting that extended-term tissue maintenance is feasible with little or no special technique. Transmission electron microscopy ultramorphology of tissue derived from hFOB 1.19 recovered from the bioreactor after only 15 days of culture showed evidence of osteocytic-like processes and gap junctions between cells like those observed in vivo, in addition to elaboration of the usual osteoblastic markers such as alkaline phosphatase activity and mineralization (alizarin red). Thus, the bioreactor design based on the principle of simultaneous growth and dialysis was shown to create an extraordinarily stable peri-cellular environment that better simulates the in vivo condition than conventional tissue culture. The bioreactor shows promise as a tool for the in vitro study of osteogenesis and osteopathology.

MeSH Terms
3T3 Cells Alkaline Phosphatase/metabolism Animals Apoptosis Biomarkers/metabolism Bioreactors Bone and Bones/cytology,metabolism,physiology,ultrastructure Calcification, Physiologic/physiology Cell Culture Techniques Dialysis Electron Probe Microanalysis Equipment Design Extracellular Matrix/metabolism,physiology,ultrastructure Feasibility Studies Fetus Gap Junctions/ultrastructure Humans Mice Osteoblasts/cytology,metabolism,physiology,ultrastructure Polystyrenes/chemistry Time Factors
Chemicals
Biomarkers Polystyrenes Alkaline Phosphatase
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Dhurjati Ravi
Department of Materials Science and Engineering, Pennsylvania State University, University Park, Pennsylvania 16802, USA.
Liu Xiaomei
Gay Carol V
Mastro Andrea M
Vogler Erwin A
Article Info
Journal
Tissue engineering
Abbr.
Tissue Eng
ISSN
1076-3279
Published
2006-11-00
Pages
3045-54
Language
English
Region
United States
NLM ID
9505538
Subset
IM
Grants
NIA NIH HHS · AG13087-10 · United States
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