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本文引用的文献

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The influence of scaffold elasticity on germ layer specification of human embryonic stem cells.支架弹性对人类胚胎干细胞胚层特化的影响。
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Differences between chondrocytes and bone marrow-derived chondrogenic cells.软骨细胞与骨髓来源的软骨细胞的差异。
Tissue Eng Part A. 2011 Dec;17(23-24):2919-29. doi: 10.1089/ten.tea.2010.0732. Epub 2011 Sep 6.
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Changes in mechanics and composition of human talar cartilage anlagen during fetal development.人距骨软骨原基在胎儿发育过程中力学和组成的变化。
Osteoarthritis Cartilage. 2011 Oct;19(10):1199-209. doi: 10.1016/j.joca.2011.07.013. Epub 2011 Jul 29.
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Effects of hypertonic (NaCl) two-dimensional and three-dimensional culture conditions on the properties of cartilage tissue engineered from an expanded mature bovine chondrocyte source.高渗(NaCl)二维和三维培养条件对源于扩增成熟牛软骨细胞的软骨组织工程特性的影响。
Tissue Eng Part C Methods. 2011 Nov;17(11):1041-9. doi: 10.1089/ten.tec.2011.0212. Epub 2011 Jul 28.
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Mechanical phenotyping of mouse embryonic stem cells: increase in stiffness with differentiation.小鼠胚胎干细胞的力学表型分析:分化过程中硬度增加。
Cell Reprogram. 2011 Aug;13(4):371-80. doi: 10.1089/cell.2011.0028. Epub 2011 Jul 5.
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Chondrogenic differentiation of neonatal human dermal fibroblasts encapsulated in alginate beads with hydrostatic compression under hypoxic conditions in the presence of bone morphogenetic protein-2.在缺氧条件下,在骨形态发生蛋白-2 的存在下,将包封在藻酸盐珠中的新生儿人真皮成纤维细胞进行静水压力压缩,以实现其软骨分化。
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Mesenchymal and mechanical mechanisms of secondary cartilage induction.间质和机械机制在二次软骨诱导中的作用。
Dev Biol. 2011 Aug 1;356(1):28-39. doi: 10.1016/j.ydbio.2011.05.003. Epub 2011 May 11.
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Chondroprotective effects of pulsed electromagnetic fields on human cartilage explants.脉冲电磁场对人软骨外植体的软骨保护作用。
Bioelectromagnetics. 2011 Oct;32(7):543-51. doi: 10.1002/bem.20663. Epub 2011 Mar 15.
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Mechanical influences on morphogenesis of the knee joint revealed through morphological, molecular and computational analysis of immobilised embryos.通过对固定胚胎的形态学、分子和计算分析揭示膝关节形态发生的力学影响。
PLoS One. 2011 Feb 28;6(2):e17526. doi: 10.1371/journal.pone.0017526.
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Spatiotemporal changes in cell adhesiveness during vertebrate limb morphogenesis.脊椎动物肢体形态发生过程中细胞黏附性的时空变化。
Dev Dyn. 2011 May;240(5):969-78. doi: 10.1002/dvdy.22552. Epub 2011 Feb 2.

力学驱动的软骨发生:从胚胎到成年。

Biomechanics-driven chondrogenesis: from embryo to adult.

机构信息

Department of Biomedical Engineering, University of California-Davis, Davis, California 95616, USA.

出版信息

FASEB J. 2012 Sep;26(9):3614-24. doi: 10.1096/fj.12-207241. Epub 2012 Jun 6.

DOI:10.1096/fj.12-207241
PMID:22673579
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3425829/
Abstract

Biomechanics plays a pivotal role in articular cartilage development, pathophysiology, and regeneration. During embryogenesis and cartilage maturation, mechanical stimuli promote chondrogenesis and limb formation. Mechanical loading, which has been characterized using computer modeling and in vivo studies, is crucial for maintaining the phenotype of cartilage. However, excessive or insufficient loading has deleterious effects and promotes the onset of cartilage degeneration. Informed by the prominent role of biomechanics, mechanical stimuli have been harnessed to enhance redifferentiation of chondrocytes and chondroinduction of other cell types, thus providing new chondrocyte cell sources. Biomechanical stimuli, such as hydrostatic pressure or compression, have been used to enhance the functional properties of neocartilage. By identifying pathways involved in mechanical stimulation, chemical equivalents that mimic mechanical signaling are beginning to offer exciting new methods for improving neocartilage. Harnessing biomechanics to improve differentiation, maintenance, and regeneration is emerging as pivotal toward producing functional neocartilage that could eventually be used to treat cartilage degeneration.

摘要

生物力学在关节软骨的发育、病理生理学和再生中起着关键作用。在胚胎发生和软骨成熟过程中,机械刺激促进了软骨生成和肢体形成。机械加载已通过计算机建模和体内研究进行了表征,对于维持软骨表型至关重要。然而,过度或不足的加载会产生有害影响,并促进软骨退化的发生。受生物力学重要作用的启发,人们已经利用机械刺激来增强软骨细胞的再分化和其他细胞类型的软骨诱导,从而提供新的软骨细胞来源。已经使用诸如静水压力或压缩等机械刺激来增强新软骨的功能特性。通过鉴定涉及机械刺激的途径,模仿机械信号的化学等效物开始为改善新软骨提供令人兴奋的新方法。利用生物力学来改善分化、维持和再生正在成为产生功能性新软骨的关键,最终可用于治疗软骨退化。