在软骨内成骨过程中,肥大软骨细胞介导的软骨基质降解需要Runx2

Q1 Medicine
Harunur Rashid, Haiyan Chen, Amjad Javed
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引用次数: 12

摘要

RUNX2转录因子是软骨和骨发育的关键调控因子。Runx2基因的缺失会导致软骨细胞肥大、软骨内骨化和围产期死亡。终末成熟的肥大软骨细胞调节软骨内成骨的关键步骤。重要的是,Runx2基因的表达始于静止软骨细胞,并逐渐增加,在肥大软骨细胞中达到最高水平。然而,RUNX2在软骨细胞肥大后的作用尚不清楚。为了回答这个问题,我们使用Col10-Cre系特异性地删除了肥大软骨细胞中的Runx2基因。肥厚软骨细胞中缺乏Runx2基因(Runx2HC/HC)的小鼠存活,但表现为肢体侏儒症。有趣的是,在Runx2HC/HC小鼠生长板中,肥大软骨细胞带的长度增加了一倍。在突变小鼠中,促凋亡Bax的表达显著降低,而抗凋亡Bcl2的表达保持不变,导致Bcl2/Bax比值增加4倍。与此一致,Runx2HC/HC增生性软骨细胞凋亡显著减少。Runx2HC/HC小鼠向骨干区延伸的长骨中存在大量软骨基质。这并不是因为软骨基质的合成增强,因为在Runx2HC/HC和WT幼崽中,2型胶原和聚集蛋白的表达是相当的。我们的qPCR分析表明,软骨基质数量的增加是由于软骨降解酶(如金属蛋白酶和聚合酶)以及金属蛋白酶的组织抑制剂的表达受损。此外,Runx2HC/HC小鼠沿软骨岛的TRAP阳性破软骨细胞显著减少。同样,qPCR数据显示Runx2HC/HC幼崽的Rankl/Opg比值降低了81%,这抑制了软骨细胞的分化。最后,我们使用micro-CT和Von Kossa评估Runx2HC/HC小鼠软骨基质的增加是否可以作为骨和矿物沉积的模板。与同窝的小鼠相比,突变小鼠的骨小梁骨量显著增加。总之,我们的研究结果揭示了Runx2在软骨内成骨过程中肥大软骨细胞凋亡和软骨基质降解中的新作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Runx2 is required for hypertrophic chondrocyte mediated degradation of cartilage matrix during endochondral ossification

Runx2 is required for hypertrophic chondrocyte mediated degradation of cartilage matrix during endochondral ossification

Runx2 is required for hypertrophic chondrocyte mediated degradation of cartilage matrix during endochondral ossification

Runx2 is required for hypertrophic chondrocyte mediated degradation of cartilage matrix during endochondral ossification

The RUNX2 transcription factor is a key regulator for the development of cartilage and bone. Global or resting chondrocyte-specific deletion of the Runx2 gene results in failure of chondrocyte hypertrophy, endochondral ossification, and perinatal lethality. The terminally mature hypertrophic chondrocyte regulates critical steps of endochondral ossification. Importantly, expression of the Runx2 gene starts in the resting chondrocyte and increases progressively, reaching the maximum level in hypertrophic chondrocytes. However, the RUNX2 role after chondrocyte hypertrophy remains unknown. To answer this question, we deleted the Runx2 gene specifically in hypertrophic chondrocytes using the Col10-Cre line. Mice lacking the Runx2 gene in hypertrophic chondrocytes (Runx2HC/HC) survive but exhibit limb dwarfism. Interestingly, the length of the hypertrophic chondrocyte zone is doubled in the growth plate of Runx2HC/HC mice. Expression of pro-apoptotic Bax decreased significantly while anti-apoptotic Bcl2 remains unchanged leading to a four-fold increase in the Bcl2/Bax ratio in mutant mice. In line with this, a significant reduction in apoptosis of Runx2HC/HC hypertrophic chondrocyte is noted. A large amount of cartilage matrix is present in the long bones that extend toward the diaphyseal region of Runx2HC/HC mice. This is not due to enhanced synthesis of the cartilage matrix as the expression of both collagen type 2 and aggrecan were comparable among Runx2HC/HC and WT littermates. Our qPCR analysis demonstrates the increased amount of cartilage matrix is due to impaired expression of cartilage degrading enzymes such as metalloproteinase and aggrecanase as well as tissue inhibitor of metalloproteinases. Moreover, a significant decrease of TRAP positive chondroclasts was noted along the cartilage islands in Runx2HC/HC mice. Consistently, qPCR data showed an 81% reduction in the Rankl/Opg ratio in Runx2HC/HC littermates, which is inhibitory for chondroclast differentiation. Finally, we assess if increase cartilage matrix in Runx2HC/HC mice serves as a template for bone and mineral deposition using micro-CT and Von Kossa. The mutant mice exhibit a significant increase in trabecular bone mass compared to littermates. In summary, our findings have uncovered a novel role of Runx2 in apoptosis of hypertrophic chondrocytes and degradation of cartilage matrix during endochondral ossification.

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来源期刊
Matrix Biology Plus
Matrix Biology Plus Medicine-Histology
CiteScore
9.00
自引率
0.00%
发文量
25
审稿时长
105 days
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