Suppr超能文献

炎症会在分离的髓核细胞中引发不可逆的生物物理变化。

Inflammation induces irreversible biophysical changes in isolated nucleus pulposus cells.

作者信息

Maidhof Robert, Jacobsen Timothy, Papatheodorou Angelos, Chahine Nadeen O

机构信息

Center for Autoimmune and Musculoskeletal Diseases, The Feinstein Institute for Medical Research, North Shore-LIJ Health System, Manhasset, New York, United States of America.

Center for Autoimmune and Musculoskeletal Diseases, The Feinstein Institute for Medical Research, North Shore-LIJ Health System, Manhasset, New York, United States of America; Hofstra-North Shore LIJ School of Medicine, Hempstead, New York, United States of America.

出版信息

PLoS One. 2014 Jun 17;9(6):e99621. doi: 10.1371/journal.pone.0099621. eCollection 2014.

Abstract

Intervertebral disc degeneration is accompanied by elevated levels of inflammatory cytokines that have been implicated in disease etiology and matrix degradation. While the effects of inflammatory stimulation on disc cell metabolism have been well-studied, their effects on cell biophysical properties have not been investigated. The hypothesis of this study is that inflammatory stimulation alters the biomechanical properties of isolated disc cells and volume responses to step osmotic loading. Cells from the nucleus pulposus (NP) of bovine discs were isolated and treated with either lipopolysaccharide (LPS), an inflammatory ligand, or with the recombinant cytokine TNF-α for 24 hours. We measured cellular volume regulation responses to osmotic loading either immediately after stimulation or after a 1 week recovery period from the inflammatory stimuli. Cells from each group were tested under step osmotic loading and the transient volume-response was captured via time-lapse microscopy. Volume-responses were analyzed using mixture theory framework to investigate two biomechanical properties of the cell, the intracellular water content and the hydraulic permeability. Intracellular water content did not vary between treatment groups, but hydraulic permeability increased significantly with inflammatory treatment. In the 1 week recovery group, hydraulic permeability remained elevated relative to the untreated recovery control. Cell radius was also significantly increased both after 24 hours of treatment and after 1 week recovery. A significant linear correlation was observed between hydraulic permeability and cell radius in untreated cells at 24 hours and at 1-week recovery, though not in the inflammatory stimulated groups at either time point. This loss of correlation between cell size and hydraulic permeability suggests that regulation of volume change is disrupted irreversibly due to inflammatory stimulation. Inflammatory treated cells exhibited altered F-actin cytoskeleton expression relative to untreated cells. We also found a significant decrease in the expression of aquaporin-1, the predominant water channel in disc NP cells, with inflammatory stimulation. To our knowledge, this is the first study providing evidence that inflammatory stimulation directly alters the mechanobiology of NP cells. The cellular biophysical changes observed in this study are coincident with documented changes in the extracellular matrix induced by inflammation, and may be important in disease etiology.

摘要

椎间盘退变伴随着炎症细胞因子水平的升高,这些细胞因子与疾病病因和基质降解有关。虽然炎症刺激对椎间盘细胞代谢的影响已得到充分研究,但其对细胞生物物理特性的影响尚未得到研究。本研究的假设是,炎症刺激会改变分离的椎间盘细胞的生物力学特性以及对阶梯渗透负荷的体积反应。从牛椎间盘髓核(NP)中分离细胞,并用炎症配体脂多糖(LPS)或重组细胞因子TNF-α处理24小时。我们在刺激后立即或在炎症刺激1周恢复期后测量细胞对渗透负荷的体积调节反应。对每组细胞进行阶梯渗透负荷测试,并通过延时显微镜捕捉瞬时体积反应。使用混合理论框架分析体积反应,以研究细胞的两个生物力学特性,即细胞内水含量和水力传导率。各治疗组之间细胞内水含量没有差异,但炎症处理后水力传导率显著增加。在1周恢复期组中,相对于未处理的恢复对照组,水力传导率仍然升高。处理24小时后和1周恢复后细胞半径也显著增加。在24小时和1周恢复期的未处理细胞中,观察到水力传导率与细胞半径之间存在显著的线性相关性,尽管在两个时间点的炎症刺激组中均未观察到。细胞大小与水力传导率之间这种相关性的丧失表明,由于炎症刺激,体积变化的调节被不可逆地破坏了。与未处理的细胞相比,炎症处理的细胞表现出F-肌动蛋白细胞骨架表达的改变。我们还发现,炎症刺激后,椎间盘NP细胞中主要的水通道水通道蛋白-1的表达显著降低。据我们所知,这是第一项提供证据表明炎症刺激直接改变NP细胞力学生物学的研究。本研究中观察到的细胞生物物理变化与炎症引起的细胞外基质的记录变化一致,可能在疾病病因学中起重要作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8a5d/4061011/6ec08d36c01c/pone.0099621.g001.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验