器官培养
椎间盘
阿格里坎
体内
离体
细胞生物学
活力测定
蛋白多糖
体外
细胞外基质
医学
基质(化学分析)
细胞培养
病理
解剖
生物
生物化学
化学
遗传学
替代医学
骨关节炎
色谱法
关节软骨
作者
Daniel Haschtmann,Jivko Stoyanov,Ladina Ettinger,Lutz P. Nolte,Stephen J. Ferguson
出处
期刊:Spine
[Ovid Technologies (Wolters Kluwer)]
日期:2006-11-28
卷期号:31 (25): 2918-2925
被引量:71
标识
DOI:10.1097/01.brs.0000247954.69438.ae
摘要
In Brief Study Design. Ex vivo in vitro study evaluating a novel intervertebral disc/endplate culture system. Objectives. To establish a whole-organ intervertebral disc culture model for the study of disc degeneration in vitro, including the characterization of basic cell and organ function. Summary of Background Data. With current in vivo models for the study of disc and endplate degeneration, it remains difficult to investigate the complex disc metabolism and signaling cascades. In contrast, more controlled but simplified in vitro systems using isolated cells or disc fragments are difficult to culture due to the unconstrained conditions, with often-observed cell death or cell dedifferentiation. Therefore, there is a demand for a controlled culture model with preserved cell function that offers the possibility to investigate disc and endplate pathologies in a structurally intact organ. Methods. Naturally constrained intervertebral disc/endplate units from rabbits were cultured in multi-well plates. Cell viability, metabolic activity, matrix composition, and matrix gene expression profile were monitored using the Live/Dead® cell viability test (Invitrogen, Basel, Switzerland), tetrazolium salt reduction (WST-8), proteoglycan and deoxyribonucleic acid quantification assays, and quantitative polymerase chain reaction. Results. Viability and organ integrity were preserved for at least 4 weeks, while proteoglycan and deoxyribonucleic acid content decreased slightly, and matrix genes exhibited a degenerative profile with up-regulation of type I collagen and suppression of collagen type II and aggrecan genes. Additionally, cell metabolic activity was reduced to one third of the initial value. Conclusions. Naturally constrained intervertebral rabbit discs could be cultured for several weeks without losing cell viability. Structural integrity and matrix composition were retained. However, the organ responded to the artificial environment with a degenerative gene expression pattern and decreased metabolic rate. Therefore, the described system serves as a promising in vitro model to study disc degeneration in a whole organ. Current models to study disc degeneration consist of either in vivo animal experiments or of cultured fragmented disc material and isolated cells in vitro. The established novel disc/endplate system allows studying cell function and degenerative matrix metabolism and signaling in the entire organ with preserved viability.
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