ptx3组装的细胞周围透明质酸基质在骨折愈合和异位骨化过程中增强软骨内骨化。

Bone Pub Date : 2024-12-26 DOI:10.1016/j.bone.2024.117385
Wei Dong, Chang Yang, Donghua Guo, Meie Jia, Yan Wang, Jiawei Wang
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引用次数: 0

摘要

软骨内成骨(EO)是骨折愈合和外伤性异位骨化(HO)的关键过程,涉及软骨基质的合成和矿化。与细胞外基质不同,富含透明质酸(HA)的细胞外基质(PCM)直接包裹软骨细胞,作为细胞外信号接收的前线并进行动态重塑。penttraxin 3 (PTX3)是一种分泌的糖蛋白,促进HA基质的组装和重塑。然而,目前尚不清楚PTX3是否通过调节软骨细胞中富含ha的PCM组装来影响EO,从而影响骨折愈合和外伤性HO。本研究表明,PTX3缺乏会损害骨折愈合并抑制创伤性HO,但不影响小鼠生长板的发育。PTX3在软骨细胞基质合成和成熟过程中表达上调,并定位于富含ha的PCM。PTX3以依赖血清和tsg -6的方式促进富含ha的PCM的组装,促进CD44受体聚集,激活FAK/AKT信号通路,促进软骨细胞基质的合成和成熟。局部注射PTX3/TSG-6基质蛋白混合物可有效促进小鼠骨折愈合。综上所述,ptx3组装的富含ha的PCM通过CD44/FAK/AKT信号通路促进软骨细胞基质的合成和成熟。这一机制促进了小鼠骨折愈合和创伤性HO过程中的EO。
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PTX3-assembled pericellular hyaluronan matrix enhances endochondral ossification during fracture healing and heterotopic ossification.

Endochondral ossification (EO) is a pivotal process during fracture healing and traumatic heterotopic ossification (HO), involving the cartilaginous matrix synthesis and mineralization. Unlike the extracellular matrix, the hyaluronan (HA)-rich pericellular matrix (PCM) directly envelops chondrocytes, serving as the frontline for extracellular signal reception and undergoing dynamic remodeling. Pentraxin 3 (PTX3), a secreted glycoprotein, facilitates HA matrix assembly and remodeling. However, it remains unclear whether PTX3 affects EO by regulating HA-rich PCM assembly of chondrocytes, thereby impacting fracture healing and traumatic HO. This study demonstrates that PTX3 deficiency impairs fracture healing and inhibits traumatic HO, but dose not affect growth plate development in mice. PTX3 expression is up-regulated during chondrocyte matrix synthesis and maturation and is localized in the HA-rich PCM. PTX3 promotes the assembly of HA-rich PCM in a serum- and TSG6-dependent manner, fostering CD44 receptor clustering, activating the FAK/AKT signaling pathway, and promoting chondrocyte matrix synthesis and maturation. Local injection of PTX3/TSG6 matrix protein mixture effectively promotes fracture healing in mice. In conclusion, PTX3-assembled HA-rich PCM promotes chondrocyte matrix synthesis and maturation via CD44/FAK/AKT signaling. This mechanism facilitates EO during fracture healing and traumatic HO in mice.

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