Advanced Bioreactor with Controlled Application of Multi-Dimensional Strain For Tissue Engineering
- 1 December 2002
- journal article
- research article
- Published by ASME International in Journal of Biomechanical Engineering
- Vol. 124 (6) , 742-749
- https://doi.org/10.1115/1.1519280
Abstract
Advanced bioreactors are essential for meeting the complex requirements of in vitro engineering functional skeletal tissues. To address this need, we have developed a computer controlled bench-top bioreactor system with capability to apply complex concurrent mechanical strains to three-dimensional matrices independently housed in 24 reactor vessels, in conjunction with enhanced environmental and fluidic control. We demonstrate the potential of this new system to address needs in tissue engineering, specifically toward the development of a tissue engineered anterior cruciate ligament from human bone-marrow stromal cells (hBMSC), where complex mechanical and biochemical environment control is essential to tissue function. Well-controlled mechanical strains (resolution of for translational and for rotational strain) and dissolved oxygen tension (between could be applied to the developing tissue, while maintaining temperature at about developing tissue over prolonged periods of operation. A total of 48 reactor vessels containing cell culture medium and silk fiber matrices were run for up to 21 days under rotational and 2 mm translational deformations at 0.0167 Hz with only one succumbing to contamination due to a leak at an medium outlet port. Twenty-four silk fiber matrices seeded with human bone marrow stromal cells (hBMSCs) housed within reactor vessels were maintained at constant temperature pH and over 14 days in culture. The system supported cell spreading and growth on the silk fiber matrices based on SEM characterization, as well as the differentiation of the cells into ligament-like cells and tissue (Altman et al., 2001).
Keywords
This publication has 18 references indexed in Scilit:
- New pulsatile bioreactor for fabrication of tissue‐engineered patchesJournal of Biomedical Materials Research, 2001
- A versatile shear and compression apparatus for mechanical stimulation of tissue culture explantsJournal of Biomechanics, 2000
- Cyclic mechanical strain regulates the development of engineered smooth muscle tissueNature Biotechnology, 1999
- Rapid and Reversible Regulation of Collagen XII Expression by Changes in Tensile StressExperimental Cell Research, 1999
- Cyclic Traction Machine for Long-Term Culture of Fibroblast-Populated Collagen GelsAnnals of Biomedical Engineering, 1999
- Bioreactor cultivation conditions modulate the composition and mechanical properties of tissue‐engineered cartilageJournal of Orthopaedic Research, 1999
- Tensile Load and the Metabolism of Anterior Cruciate Ligament CellsClinical Orthopaedics and Related Research, 1998
- Culture of organized cell communitiesAdvanced Drug Delivery Reviews, 1998
- Mechanical Forces And Growth Factors Utilized In Tissue EngineeringPublished by Elsevier ,1998
- Tenascin-C expression by fibroblasts is elevated in stressed collagen gels.The Journal of cell biology, 1994