Long P, Liu F, Piesco N P, Kapur R, Agarwal S
Department of Oral Medicine and Pathology, University of Pittsburgh, Pittsburgh, PA 15261-1964, USA.
Bone. 2002 Apr;30(4):547-52. doi: 10.1016/s8756-3282(02)00673-7.
Intracellular signals generated by mechanical strain profoundly affect the metabolic function of osteoblast-like periodontal ligament (PDL) cells, which reside between the tooth and alveolar bone. In response to applied mechanical forces, PDL cells synthesize bone-resorptive cytokines to induce bone resorption at sites exposed to compressive forces and deposit bone at sites exposed to tensile forces in an environment primed for catabolic processes. The intracellular mechanisms that regulate this bone remodeling remain unclear. Here, in an in vitro model system, we show that tensile strain is a critical determinant of PDL-cell metabolic functions. Equibiaxial tensile strain (TENS), when applied at low magnitudes, acts as a potent antagonist of interleukin (IL)-1beta actions and suppresses transcriptional regulation of multiple proinflammatory genes. This is evidenced by the fact that TENS at low magnitude: (i) inhibits recombinant human (rh)IL-1beta-dependent induction of cyclooxygenase-2 (COX-2) mRNA expression and production of prostaglandin estradiol (PGE2); (ii) inhibits rhIL-1beta-dependent induction matrix metalloproteinase-1 (MMP-1) and MMP-3 synthesis by suppressing their mRNA expression; (iii) abrogates rhIL-1beta-induced suppression of tissue inhibitor of metalloprotease-II (TIMP-II) expression; and (iv) reverses IL-1beta-dependent suppression of osteocalcin and alkaline phosphatase synthesis. Nevertheless, these actions of TENS were observed only in the presence of IL-1beta, as TENS alone failed to affect any of the aforementioned responses. The present findings are the first to show that intracellular signals generated by low-magnitude mechanical strain interfere with one or more critical step(s) in the signal transduction cascade of rhIL-1beta upstream of mRNA expression, while concurrently promoting the expression of osteogenic proteins in PDL cells.
由机械应变产生的细胞内信号深刻影响着位于牙齿和牙槽骨之间的成骨样牙周韧带(PDL)细胞的代谢功能。响应于施加的机械力,PDL细胞合成骨吸收细胞因子,以在暴露于压缩力的部位诱导骨吸收,并在为分解代谢过程做好准备的环境中,在暴露于拉伸力的部位沉积骨。调节这种骨重塑的细胞内机制仍不清楚。在这里,在一个体外模型系统中,我们表明拉伸应变是PDL细胞代谢功能的关键决定因素。当以低幅度施加时,等双轴拉伸应变(TENS)作为白细胞介素(IL)-1β作用的有效拮抗剂,并抑制多种促炎基因的转录调控。这一事实证明了低幅度的TENS:(i)抑制重组人(rh)IL-1β依赖性诱导的环氧合酶-2(COX-2)mRNA表达和前列腺素雌二醇(PGE2)的产生;(ii)通过抑制其mRNA表达来抑制rhIL-1β依赖性诱导的基质金属蛋白酶-1(MMP-1)和MMP-3合成;(iii)消除rhIL-1β诱导的金属蛋白酶组织抑制剂-II(TIMP-II)表达的抑制;以及(iv)逆转IL-1β依赖性对骨钙素和碱性磷酸酶合成的抑制。然而,仅在存在IL-1β的情况下才观察到TENS的这些作用,因为单独的TENS未能影响上述任何反应。本研究结果首次表明,低幅度机械应变产生的细胞内信号干扰了rhIL-1β mRNA表达上游信号转导级联中的一个或多个关键步骤,同时促进了PDL细胞中成骨蛋白的表达。