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衰老对小鼠软骨生物力学和软骨细胞原位钙信号的影响。

Impacts of aging on murine cartilage biomechanics and chondrocyte in situ calcium signaling.

机构信息

School of Biomedical Engineering, Science and Health Systems, Drexel University, Philadelphia, PA 19104, United States.

Department of Mechanical Engineering, University of Delaware, Newark, DE 19716, United States.

出版信息

J Biomech. 2022 Nov;144:111336. doi: 10.1016/j.jbiomech.2022.111336. Epub 2022 Oct 3.

Abstract

Aging is the most prominent risk factor for osteoarthritis onset, but the etiology of aging-associated cartilage degeneration is not fully understood. Recent studies by Guilak and colleagues have highlighted the crucial roles of cell-matrix interactions in cartilage homeostasis and disease. This study thus quantified aging-associated changes in cartilage biomechanics and chondrocyte intracellular calcium signaling, [Ca], activities in wild-type mice at 3, 12 and 22 months of age. In aged mice, articular cartilage exhibits reduced staining of sulfated glycosaminoglycans (sGAGs), indicating decreased aggrecan content. On cartilage surface, collagen fibrils undergo significant thickening while retaining their transverse isotropic architecture, and exhibit signs of fibril crimping in the 22-month group. These compositional and structural changes contribute to a significant decrease in cartilage modulus at 22 months of age (0.55 ± 0.25 MPa, mean ± 95 % CI, n = 8) relative to those at 3 and 12 months (1.82 ± 0.48 MPa and 1.45 ± 0.46 MPa, respectively, n ≥ 8). Despite the decreases in sGAG content and tissue modulus, chondrocytes do not exhibit significantly demoted [Ca] activities in situ, in both physiological (isotonic) and osmotically instigated (hypo- and hypertonic) conditions. At 12 months of age, there exists a sub-population of chondrocytes with hyper-active [Ca] responses under hypotonic stimuli, possibly indicating a phenotypic shift of chondrocytes during aging. Together, these results yield new insights into aging-associated biomechanical and mechanobiological changes of murine cartilage, providing a benchmark for elucidating the molecular mechanisms of age-related changes in cell-matrix interactions.

摘要

衰老是骨关节炎发病的最主要危险因素,但衰老相关软骨退变的病因尚未完全明了。Guilak 等最近的研究强调了细胞-基质相互作用在软骨稳态和疾病中的关键作用。因此,本研究在 3、12 和 22 月龄的野生型小鼠中,定量分析了与衰老相关的软骨生物力学和软骨细胞细胞内钙信号[Ca2+]变化。在老年小鼠中,关节软骨硫酸化糖胺聚糖(sGAG)染色减少,表明聚集蛋白聚糖含量降低。在软骨表面,胶原纤维虽然保持横向各向同性结构,但明显变厚,并在 22 月龄组出现纤维卷曲的迹象。这些组成和结构的变化导致软骨模量在 22 月龄时显著降低(0.55 ± 0.25 MPa,平均值 ± 95%置信区间,n = 8),与 3 月龄和 12 月龄相比(分别为 1.82 ± 0.48 MPa 和 1.45 ± 0.46 MPa,n ≥ 8)。尽管 sGAG 含量和组织模量降低,但在生理(等渗)和渗透压诱发(低渗和高渗)条件下,原位软骨细胞[Ca2+]活性并没有明显降低。在 12 月龄时,存在一群软骨细胞在低渗刺激下具有过度活跃的[Ca2+]反应,这可能表明软骨细胞在衰老过程中的表型转变。总之,这些结果为研究与衰老相关的软骨生物力学和力学生物学变化提供了新的见解,为阐明细胞-基质相互作用与年龄相关变化的分子机制提供了基准。

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