Wnt3a involved in the mechanical loading on improvement of bone remodeling and angiogenesis in a postmenopausal osteoporosis mouse model

破骨细胞 骨质疏松症 成骨细胞 血管生成 去卵巢大鼠 骨重建 骨愈合 内分泌学 WNT3A型 内科学 骨吸收 医学 癌症研究 化学 解剖 信号转导 Wnt信号通路 雌激素 受体 体外 生物化学
作者
Xinle Li,Daquan Liu,Jie Li,Shuang Yang,Jinfeng Xu,Hiroki Yokota,Ping Zhang
出处
期刊:The FASEB Journal [Wiley]
卷期号:33 (8): 8913-8924 被引量:51
标识
DOI:10.1096/fj.201802711r
摘要

ABSTRACT Osteoporosis is a major health problem, making bones fragile and susceptible to fracture. Previous works showed that mechanical loading stimulated bone formation and accelerated fracture healing. Focusing on the role of Wnt3a (wingless/integrated 3a), this study was aimed to assess effects of mechanical loading to the spine, using ovariectomized (OVX) mice as a model of osteoporosis. Two‐week daily application of this novel loading (4N, 10Hz, 5 min/d) altered bone remodeling with an increase in Wnt3a. Spinal loading promoted osteoblast differentiation, endothelial progenitor cell migration, and tube formation and inhibited osteoclast formation, migration, and adhesion. A transient silencing of Wnt3a altered the observed loading effects. Spinal loading significantly increased bone mineral density, bone mineral content, and bone area per tissue area. The loaded OVX group showed a significant increase in the number of osteoblasts and reduction in osteoclast surface/bone surface. Though expression of osteoblastic genes was increased, the levels of osteoclastic genes were decreased by loading. Spinal loading elevated a microvascular volume as well as VEGF expression. Collectively, this study supports the notion that Wnt3a‐mediated signaling involves in the effect of spinal loading on stimulating bone formation, inhibiting bone resorption, and promoting angiogenesis in OVX mice. It also suggests that Wnt3a might be a potential therapeutic target for osteoporosis treatment. —Li, X., Liu, D., Li, J., Yang, S., Xu, J., Yokota, H., Zhang, P. Wnt3a involved in the mechanical loading on improvement of bone remodeling and angiogenesis in a postmenopausal osteoporosis mouse model. FASEB J. 33, 8913–8924 (2019). www.fasebj.org
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