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超咬合可上调 CCL2 和 CCR2 缺陷型小鼠中的 CCL3 表达。

Hyperocclusion up-regulates CCL3 expression in CCL2- and CCR2-deficient mice.

机构信息

Department of Physiological Science and Molecular Biology, Fukuoka Dental College, Tamura, Sawara-ku, Fukuoka, Japan.

出版信息

J Dent Res. 2013 Jan;92(1):65-70. doi: 10.1177/0022034512467803. Epub 2012 Nov 9.

Abstract

UNLABELLED

Excessive mechanical stress (MS) during hyperocclusion is known to result in disappearance of the alveolar hard line, enlargement of the periodontal ligament (PDL) space, and destruction of alveolar bone, leading to occlusal traumatism. We have recently reported that MS induces predominantly C-C chemokine ligand (CCL) 2 expression in PDL tissues, leading, via C-C chemokine receptor (CCR) 2, to MS-dependent osteoclastogenesis in alveolar bone. Thus, we hypothesize that ablation of the CCL2/CCR2 signaling pathway should suppress MS-induced osteoclastogenesis-associated chemokines and alleviate occlusal traumatism. We examined the effect of MS on chemokine expression and osteoclastogenesis using in vivo and in vitro hyperocclusion models with CCL2-deficient (CCL2((-/-))) and CCR2-deficient (CCR2((-/-))) mice. Compared with that in wild-type mice, expression of CCL3 in PDL cells and TRAP-positive cells in alveolar bone from CCL2((-/-)) and CCR2((-/-)) mice was up-regulated, even in the absence of MS. Furthermore, the expression of CCL3 and TRAP-positive cells was significantly increased after both 4 and 7 days of hyperocclusal MS loading in CCL2((-/-)) and CCR2((-/-)) mice. Hyperocclusion induced compensatory CCL3 expression and promoted osteoclastogenesis to counterbalance deficient CCL2/CCR2 signaling, suggesting that co-expression of CCL3 with CCL2 may precipitate synergistic, MS-dependent alveolar bone destruction during occlusal traumatism.

ABBREVIATIONS

MS, mechanical stress; PDL, periodontal ligament; CCL2, CC chemokine ligand 2 (MCP-1; monocyte chemoattractant protein-1); CCR2, CC chemokine receptor 2; CCL3, CC chemokine ligand 3 (MIP-1α); CCL5, CC chemokine ligand 5 (RANTES).

摘要

未加标签

已知在咬合过度期间,过度的机械应力(MS)会导致牙槽硬板消失、牙周韧带(PDL)空间扩大和牙槽骨破坏,导致咬合创伤。我们最近报道,MS 主要诱导 PDL 组织中 C-C 趋化因子配体(CCL)2 的表达,通过 C-C 趋化因子受体(CCR)2,导致牙槽骨中 MS 依赖性破骨细胞生成。因此,我们假设 CCL2/CCR2 信号通路的消融应该抑制 MS 诱导的破骨细胞生成相关趋化因子并减轻咬合创伤。我们使用 CCL2 缺陷(CCL2((-/-)))和 CCR2 缺陷(CCR2((-/-)))小鼠的体内和体外咬合过度模型来检查 MS 对趋化因子表达和破骨细胞生成的影响。与野生型小鼠相比,CCL2((-/-))和 CCR2((-/-))小鼠的 PDL 细胞中的 CCL3 表达和牙槽骨中的 TRAP 阳性细胞增加,即使在没有 MS 的情况下也是如此。此外,在 CCL2((-/-))和 CCR2((-/-))小鼠中,在咬合过度的 MS 加载 4 天和 7 天后,CCL3 的表达和 TRAP 阳性细胞均显著增加。咬合过度诱导代偿性 CCL3 表达并促进破骨细胞生成以抵消 CCL2/CCR2 信号的缺失,这表明 CCL3 与 CCL2 的共表达可能在咬合创伤期间协同引发 MS 依赖性牙槽骨破坏。

缩写

MS,机械应力;PDL,牙周韧带;CCL2,CC 趋化因子配体 2(MCP-1;单核细胞趋化蛋白-1);CCR2,CC 趋化因子受体 2;CCL3,CC 趋化因子配体 3(MIP-1α);CCL5,CC 趋化因子配体 5(RANTES)。

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