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Physiological dynamic compression regulates central energy metabolism in primary human chondrocytes

机译:生理动态压缩在原发性人类软骨细胞中调节中央能量代谢

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Chondrocytes use the pathways of central metabolism to synthesize molecular building blocks and energy for cartilage homeostasis. An interesting feature of the in vivo chondrocyte environment is the cyclical loading generated in various activities (e.g., walking). However, it is unknown whether central metabolism is altered by mechanical loading. We hypothesized that physiological dynamic compression alters central metabolism in chondrocytes to promote production of amino acid precursors for matrix synthesis. We measured the expression of central metabolites (e.g., glucose, its derivatives, and relevant co-factors) for primary human osteoarthritic chondrocytes in response to 0-30 minutes of compression. To analyze the data, we used principal components analysis and ANOVA-simultaneous components analysis, as well as metabolic flux analysis. Compression-induced metabolic responses consistent with our hypothesis. Additionally, these data show that chondrocyte samples from different patient donors exhibit different sensitivity to compression. Most importantly, we find that grade IV osteoarthritic chondrocytes are capable of synthesizing non-essential amino acids and precursors in response to mechanical loading. These results suggest that further advances in metabolic engineering of chondrocyte mechanotransduction may yield novel translational strategies for cartilage repair.
机译:软骨细胞使用中枢代谢的途径合成软骨稳态的分子构建块和能量。体内软骨细胞环境的一个有趣特征是各种活动中产生的周期性装载(例如,行走)。然而,尚不清楚是否通过机械载荷改变了中枢代谢。我们假设生理动态压缩改变软骨细胞中的中央代谢,以促进氨基酸前体的基质合成。我们以响应于0-30分钟的压缩而测量了初级人骨关节炎软骨细胞的中央代谢物(例如,葡萄糖,其衍生物和相关的共源区)的表达。为了分析数据,我们使用主成分分析和ANOVA-同时分析分析,以及代谢通量分析。压缩诱导的代谢反应与我们的假设一致。另外,这些数据显示来自不同患者供体的软骨细胞样品对压缩表现出不同的敏感性。最重要的是,我们发现IV级骨关节炎软骨细胞能够响应机械负载合成非必需氨基酸和前体。这些结果表明软骨细胞机制的新代谢工程进一步进展,可产生软骨修复的新型平移策略。

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