Oxygen gradients in tissue‐engineered Pegt/Pbt cartilaginous constructs: Measurement and modeling

氧气张力 软骨 氧气 扩散 极限氧浓度 化学 聚合物 软骨细胞 生物物理学 体外 材料科学 生物医学工程 解剖 热力学 生物化学 生物 有机化学 物理 医学
作者
Jos Malda,Jeroen Rouwkema,Dirk E. Martens,Elodie Comte,Floor K. Kooy,J. Tramper,Clemens van Blitterswijk,Jens Riesle
出处
期刊:Biotechnology and Bioengineering [Wiley]
卷期号:86 (1): 9-18 被引量:315
标识
DOI:10.1002/bit.20038
摘要

Abstract The supply of oxygen within three‐dimensional tissue‐engineered (TE) cartilage polymer constructs is mainly by diffusion. Oxygen consumption by cells results in gradients in the oxygen concentration. The aims of this study were, firstly, to identify the gradients within TE cartilage polymer constructs and, secondly, to predict the profiles during in vitro culture. A glass microelectrode system was adapted and used to penetrate cartilage and TE cartilaginous constructs, yielding reproducible measurements with high spatial resolution. Cartilage polymer constructs were cultured for up to 41 days in vitro. Oxygen concentrations, as low as 2–5%, were measured within the center of these constructs. At the beginning of in vitro culture, the oxygen gradients were steeper in TE constructs in comparison to native tissue. Nevertheless, during the course of culture, oxygen concentrations approached the values measured in native tissue. A mathematical model was developed which yields oxygen profiles within cartilage explants and TE constructs. Model input parameters were assessed, including the diffusion coefficient of cartilage (2.2 × 10 −9 ) + (0.4 × 10 −9 m 2 s −1 ), 70% of the diffusion coefficient of water and the diffusion coefficient of constructs (3.8 × 10 −10 m 2 s −1 ). The model confirmed that chondrocytes in polymer constructs cultured for 27 days have low oxygen requirements (0.8 × 10 −19 mol m −3 s −1 ), even lower than chondrocytes in native cartilage. The ability to measure and predict local oxygen tensions offers new opportunities to obtain more insight in the relation between oxygen tension and chondrogenesis. © 2004 Wiley Periodicals, Inc.
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