• 1Department of Orthopaedics, 2Orthopaedic Cellular&;
  • Molecular Biology Laboratory, Laboratory of Institute of Health Sciences, Shanghai Institutes for Biological Sciences, the Ninth People’s Hospital, Medical College of Shanghai Jiaotong University, Shanghai, 200011, P.R.China.;
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Objective To investigate the effects of flow shear stress and mass transport on the construction of largescale tissue engineered bone using a perfusion bioreactor. Methods Bone marrow (20 mL) was harvested from the il iac crest
of the healthy volunteer, and then hBMSCs were isolated, cultured and identified. The hBMSCs at passage 3 were seeded on the critical-size β-TCP scaffold and cultured in a perfusion bioreactor for 28 days. Different flow shear stress (1 ×, 2 × and 3 ×) and different mass transport (3, 6 and 9 mL/min) were exerted on the cells seeded on the scaffold by changing the viscosity of media or perfusion flow rate. The cell prol iferation and ALP activity of cells seeded on the scaffold were detected, and histology observation and morphology measurement of cell/scaffold complex were conducted. Results When the perfusion flow rabe was 3 mL/min, the cell viabil ity of 2 × group was higher than that of other groups (P  lt; 0.05). When the flow shear stress was 3 ×, no significant differences were found among 3, 6 and 9 mL/min in cell viabil ity (P  gt; 0.05). When the perfusion flow rate was 3 mL/min, the activity of ALP of 2 × and 3 × groups was higher than that of 1 × group (P  lt; 0.05). When the flow shear stress was 3 ×, the activity of ALP of 6 mL/min group was the highest (P  lt; 0.05). After 28 days of perfusion culture, the ECM of all the groups distributed throughout the scaffold, and the formation and mineral ization of ECM was improved with the increase of flow shear stress when the perfusion flow rate was 3 mL/min. However, the increase of perfusion flow rate decreased the mineral ization of ECM when the flow shear stress was 3 ×. Conclusion As two important fluid dynamics parameters affecting the construction of large-scale tissue engineered bone, the flow shear stress and the mass transport should be measured during
the process of constructing large-scale tissue engineered bone so as to maximize their roles.

Citation: LI Deqiang,DAI Kerong,TANG Tingting,LU Jianxi. EXPERIMENTAL STUDY OF THE EFFECTS OF FLUID DYNAMICS ON THE CONSTRUCTION OF LARGESCALE TISSUE ENGINEERED BONE. Chinese Journal of Reparative and Reconstructive Surgery, 2009, 23(4): 478-482. doi: Copy