East Carolina University, Greenville, NC, USA.
Nagoya University Graduate School of Medicine, Nagoya, Japan.
Matrix Biol. 2019 May;78-79:32-46. doi: 10.1016/j.matbio.2018.02.005. Epub 2018 Feb 6.
The story of hyaluronan in articular cartilage, pericellular hyaluronan in particular, essentially is also the story of aggrecan. Without properly tethered aggrecan, the load bearing function of cartilage is compromised. The anchorage of aggrecan to the cell surface only occurs due to the binding of aggrecan to hyaluronan-with hyaluronan tethered either to a hyaluronan synthase or by multivalent binding to CD44. In this review, details of hyaluronan synthesis are discussed including how HAS2 production of hyaluronan is necessary for normal chondrocyte development and matrix assembly, how an abundance or deficit of pericellular hyaluronan alters chondrocyte metabolism, and whether hyaluronan size matters or changes with aging or disease. The biomechanical role and matrix assembly function of hyaluronan in addition to the functions of hyaluronidases are discussed. The turnover of hyaluronan is considered including mechanisms by which its turnover, at least in part, is mediated by endocytosis by chondrocytes and regulated by aggrecan degradation. Differences between turnover and clearance of newly synthesized hyaluronan and aggrecan versus the half-life of hyaluronan remaining within the inter-territorial matrix of cartilage are discussed. The release of neutral pH-acting hyaluronidase activity remains one unanswered question concerning the loss of cartilage hyaluronan in osteoarthritis. Signaling events driven by changes in hyaluronan-chondrocyte interactions may involve a chaperone function of CD44 with other receptors/cofactors as well as the changes in hyaluronan production functioning as a metabolic rheostat.
透明质酸在关节软骨中的作用,尤其是细胞周透明质酸的作用,实质上也是聚集蛋白聚糖的作用。如果聚集蛋白聚糖没有正确固定,软骨的承重功能就会受到损害。聚集蛋白聚糖与细胞表面的锚定仅发生在聚集蛋白聚糖与透明质酸结合的情况下,透明质酸要么与透明质酸合酶结合,要么通过与 CD44 的多价结合而结合。在这篇综述中,讨论了透明质酸合成的细节,包括 HAS2 产生的透明质酸对正常软骨细胞发育和基质组装的必要性,细胞周透明质酸的丰度或缺乏如何改变软骨细胞代谢,以及透明质酸的大小是否重要或随年龄或疾病而变化。讨论了透明质酸的生物力学作用和基质组装功能,以及透明质酸酶的功能。还考虑了透明质酸的周转率,包括其周转率至少部分由软骨细胞内吞作用介导以及由聚集蛋白聚糖降解调节的机制。新合成的透明质酸和聚集蛋白聚糖的周转率与半衰期之间的差异,以及透明质酸在软骨内区域基质中半衰期的差异。关于软骨中透明质酸丢失的骨关节炎问题,中性 pH 作用的透明质酸酶活性的释放仍然是一个未解决的问题。透明质酸-软骨细胞相互作用变化引起的信号事件可能涉及 CD44 的伴侣功能以及与其他受体/共因子的结合,以及透明质酸产生的变化作为代谢变阻器的功能。