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首页> 外文期刊>Journal of bone and mineral research: the official journal of the American Society for Bone and Mineral Research >Tail suspension induces bone loss in skeletally mature mice in the C57BL/6J strain but not in the C3H/HeJ strain.
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Tail suspension induces bone loss in skeletally mature mice in the C57BL/6J strain but not in the C3H/HeJ strain.

机译:尾部悬吊会在C57BL / 6J品系的骨骼成熟小鼠中诱发骨骼损失,但在C3H / HeJ品系中则不会。

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摘要

We assessed the effects of tail-suspension in two skeletal genetic backgrounds, the high C3H/HeJ (C3H) and low C57BL/6J (B6) bone masses inbred mice (male, 4-months old). Cancellous bone mass and structural parameters were evaluated in distal femoral metaphysis by three dimensional microcomputed tomography. Bone cellular activities were evaluated by histomorphometry and measurements of alkaline phosphatase activity (ALP) and osteocalcin in blood and deoxypyridinoline (D-pyr) in urine. In C3H mice, 2- and 3-week unloading experiments were performed. After an early and transient decrease in body weight, a 2-week suspension period resulted in stimulation of both bone formation rate by 45% and active osteoclastic surfaces by 19%. D-pyr did not change, but ALP and osteocalcin levels increased by 18% and 72%, respectively, in 2-week suspended mice, and osteocalcin remained elevated by 30% in the 3-week suspended mice. Such cellular modifications allowed the C3H mice to maintain their initial bone mass and trabecular structural parameters even after a 3-week suspension period. In B6 mice, 1- and 2-week unloading experiments were performed. Tail suspension resulted in decreased body weight during the first days followed by an incomplete recovery during the second week of unloading. The resorption activity was unaffected by any suspension time period, whereas a decrease of 42.5% in bone formation rate and of 21.5% in ALP were seen by the end of the first week of suspension, both values being restored after a 2-week suspension period. At this latter time, trabeculae were thinner, leading to a 24.5% cancellous bone loss. Trabecular number and connectivity, rod-plate index, and degree of anisotropy were not modified. We concluded that C3H mice constituted a unique model in which genetic background overwhelmed the usual effects of reduced biomechanical usage in bone, whereas B6 mice, compared with the standardized rat model, offered an alternative model of bone loss in a mature skeleton.
机译:我们评估了两个骨骼遗传背景中尾部悬吊的影响,即高C3H / HeJ(C3H)和低C57BL / 6J(B6)自交小鼠的骨量(雄性,四个月大)。通过三维显微计算机断层扫描评估股骨远端干meta端的松质骨质量和结构参数。通过组织形态计量学和血液中碱性磷酸酶活性(ALP)和骨钙素以及尿液中的脱氧吡啶啉(D-pyr)的测量来评估骨细胞的活性。在C3H小鼠中,进行了2周和3周的卸载实验。在体重较早而短暂的下降之后,悬浮期为2周导致骨形成率提高了45%,活性破骨细胞表面刺激了19%。 D-pyr不变,但2周悬浮小鼠的ALP和骨钙蛋白水平分别增加了18%和72%,而3周悬浮小鼠的骨钙蛋白仍然升高了30%。这种细胞修饰使C3H小鼠即使在3周的悬浮期后仍能保持其初始骨质量和小梁结构参数。在B6小鼠中,进行了1和2周的卸载实验。尾巴悬吊导致头几天体重下降,然后在卸载的第二周内恢复不完全。吸收活性不受任何悬浮时间的影响,而在悬浮第一周结束时,骨形成率降低了42.5%,ALP降低了21.5%,两个值在悬浮两周后都恢复了。在这之后的时间,小梁变薄,导致24.5%的松质骨丢失。骨小梁数目和连通性,杆板指数和各向异性程度均未修改。我们得出的结论是,C3H小鼠构成了一个独特的模型,其中遗传背景压倒了骨骼中生物力学使用减少的通常效果,而B6小鼠与标准大鼠模型相比,提供了成熟骨骼中骨丢失的另一种模型。

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