Matsumoto T, Nakayama K, Kodama Y, Fuse H, Nakamura T, Fukumoto S
First Department of Internal Medicine, University of Tokushima School of Medicine, Japan.
Bone. 1998 May;22(5 Suppl):89S-93S. doi: 10.1016/s8756-3282(98)00018-0.
In order to delineate the influence of mechanical unloading on the formation and resorption of trabecular and cortical bone, the effects of mechanical unloading on the volume, structure, and turnover of hindlimbs were examined using tail-suspended rapidly growing rats. In addition, to clarify the mechanism of how mechanical stimulation affects bone formation, the influence of reloading on the messenger ribonucleic acid (mRNA) expression of genes related to differentiation or proliferation of bone cells was examined. Tail suspension of 5-week-old rats for 14 days caused a suppression of the increase in the diameter, subperiosteal area, and bone mineral density (BMD) of the femur. The suppression of the increase in femoral BMD was composed of an early impairment in the gain of BMD at the femoral metaphysis, which is rich in trabecular bone, and a sustained reduction in the gain of BMD at the femoral diaphysis, which is rich in cortical bone. The early reduction in the increase of BMD at the metaphysis was due to an enhancement of bone resorption, whereas a sustained reduction of periosteal bone formation appeared to play an important role in the suppression of gain in cortical bone mass and size by mechanical unloading. Mechanical reloading of the hind limbs after 14 days of tail suspension caused a transient increase within 2 h of the expression of cyclooxygenase (COX)-2 in intraosseous cells, composed mainly of osteocytes, and in the expression of c-fos in periosteal cells. However, because the COX-2 expression in osteocytes was not enhanced after 20 min of reloading when the c-fos expression was already increased in periosteal cells, the enhancement of c-fos expression does not appear to be mediated by an increased production of prostaglandins in the osteocytes. It is suggested that mechanical unloading causes an impairment of periosteal bone formation by impairing the expression of c-fos in periosteal cells. The intercellular signaling cascade that mediates the enhancement of c-fos expression in periosteal cells in response to mechanical stimulation remains to be elucidated.
为了阐明机械卸载对小梁骨和皮质骨形成与吸收的影响,我们使用尾部悬吊快速生长的大鼠,研究了机械卸载对后肢骨体积、结构和转换的影响。此外,为了阐明机械刺激影响骨形成的机制,我们研究了再加载对与骨细胞分化或增殖相关基因的信使核糖核酸(mRNA)表达的影响。5周龄大鼠尾部悬吊14天导致股骨直径、骨膜下面积和骨矿物质密度(BMD)增加受到抑制。股骨BMD增加的抑制由富含小梁骨的股骨干骺端BMD增加的早期受损以及富含皮质骨的股骨干BMD增加的持续降低组成。干骺端BMD增加的早期降低是由于骨吸收增强,而骨膜骨形成的持续降低似乎在机械卸载抑制皮质骨质量和大小增加中起重要作用。尾部悬吊14天后对后肢进行机械再加载,导致主要由骨细胞组成的骨内细胞中环氧合酶(COX)-2表达以及骨膜细胞中c-fos表达在2小时内短暂增加。然而,由于在骨膜细胞中c-fos表达已经增加时,再加载20分钟后骨细胞中的COX-2表达并未增强,因此c-fos表达的增强似乎不是由骨细胞中前列腺素产生增加介导的。提示机械卸载通过损害骨膜细胞中c-fos的表达导致骨膜骨形成受损。介导骨膜细胞中c-fos表达响应机械刺激而增强的细胞间信号级联仍有待阐明。