利用原子力显微镜在小鼠和患者样本中早期检测老化软骨和骨关节炎。

Early detection of aging cartilage and osteoarthritis in mice and patient samples using atomic force microscopy.

作者信息

Stolz Martin, Gottardi Riccardo, Raiteri Roberto, Miot Sylvie, Martin Ivan, Imer Raphaël, Staufer Urs, Raducanu Aurelia, Düggelin Marcel, Baschong Werner, Daniels A U, Friederich Niklaus F, Aszodi Attila, Aebi Ueli

机构信息

M.E. Müller Institute for Structural Biology, Biozentrum University of Basel, Switzerland.

出版信息

Nat Nanotechnol. 2009 Mar;4(3):186-92. doi: 10.1038/nnano.2008.410. Epub 2009 Feb 1.

Abstract

The pathological changes in osteoarthritis--a degenerative joint disease prevalent among older people--start at the molecular scale and spread to the higher levels of the architecture of articular cartilage to cause progressive and irreversible structural and functional damage. At present, there are no treatments to cure or attenuate the degradation of cartilage. Early detection and the ability to monitor the progression of osteoarthritis are therefore important for developing effective therapies. Here, we show that indentation-type atomic force microscopy can monitor age-related morphological and biomechanical changes in the hips of normal and osteoarthritic mice. Early damage in the cartilage of osteoarthritic patients undergoing hip or knee replacements could similarly be detected using this method. Changes due to aging and osteoarthritis are clearly depicted at the nanometre scale well before morphological changes can be observed using current diagnostic methods. Indentation-type atomic force microscopy may potentially be developed into a minimally invasive arthroscopic tool to diagnose the early onset of osteoarthritis in situ.

摘要

骨关节炎是一种在老年人中普遍存在的退行性关节疾病,其病理变化始于分子水平,并蔓延至关节软骨结构的更高层次,从而导致渐进性和不可逆的结构与功能损伤。目前,尚无治愈或减缓软骨退化的治疗方法。因此,早期检测以及监测骨关节炎进展的能力对于开发有效的治疗方法至关重要。在此,我们表明压痕型原子力显微镜可以监测正常小鼠和骨关节炎小鼠髋关节中与年龄相关的形态和生物力学变化。使用这种方法同样可以检测接受髋关节或膝关节置换的骨关节炎患者软骨的早期损伤。在使用当前诊断方法能够观察到形态变化之前,衰老和骨关节炎引起的变化在纳米尺度上就已清晰呈现。压痕型原子力显微镜有可能被开发成为一种微创关节镜工具,用于原位诊断骨关节炎的早期发病。

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