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机械刺激对 SW1353 软骨细胞代谢组学图谱的影响:剪切和压缩。

Effects of mechanical stimulation on metabolomic profiles of SW1353 chondrocytes: shear and compression.

机构信息

Department of Chemistry & Biochemistry and Molecular Biosciences Program, Montana State University, Bozeman, MT 59717, USA.

Department of Mechanical & Industrial Engineering, Montana State University, Bozeman, MT 59717, USA.

出版信息

Biol Open. 2022 Jan 15;11(1). doi: 10.1242/bio.058895. Epub 2022 Feb 3.

Abstract

Mechanotransduction is a biological phenomenon where mechanical stimuli are converted to biochemical responses. A model system for studying mechanotransduction are the chondrocytes of articular cartilage. Breakdown of this tissue results in decreased mobility, increased pain, and reduced quality of life. Either disuse or overloading can disrupt cartilage homeostasis, but physiological cyclical loading promotes cartilage homeostasis. To model this, we exposed SW1353 cells to cyclical mechanical stimuli, shear and compression, for different durations of time (15 and 30 min). By utilizing liquid chromatography-mass spectroscopy (LC-MS), metabolomic profiles were generated detailing metabolite features and biological pathways that are altered in response to mechanical stimulation. In total, 1457 metabolite features were detected. Statistical analyses identified several pathways of interest. Taken together, differences between experimental groups were associated with inflammatory pathways, lipid metabolism, beta-oxidation, central energy metabolism, and amino acid production. These findings expand our understanding of chondrocyte mechanotransduction under varying loading conditions and time periods. This article has an associated First Person interview with the first author of the paper.

摘要

力转导是一种生物学现象,其中机械刺激被转化为生化反应。研究力转导的模型系统是关节软骨的软骨细胞。这种组织的破坏会导致活动能力下降、疼痛增加和生活质量降低。无论是废用还是超负荷都可能破坏软骨的内稳态,但生理周期性负荷可促进软骨内稳态。为此,我们使 SW1353 细胞经受周期性机械刺激,剪切和压缩,持续不同的时间(15 和 30 分钟)。通过利用液相色谱-质谱(LC-MS),生成了代谢组学图谱,详细说明了响应机械刺激而改变的代谢物特征和生物学途径。总共检测到 1457 种代谢物特征。统计分析确定了几个感兴趣的途径。总的来说,实验组之间的差异与炎症途径、脂质代谢、β-氧化、中心能量代谢和氨基酸生成有关。这些发现扩展了我们对不同加载条件和时间段下软骨细胞力转导的理解。本文有该论文第一作者的相关第一人称采访。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/29d2/8822358/f0a8b3dd00b5/biolopen-11-058895-g1.jpg

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