骨细胞
细胞生物学
Wnt信号通路
信号转导
成骨细胞
机械转化
间充质干细胞
骨细胞
化学
生物
体外
生物化学
作者
Faming Tian,Yongmei Wang,Daniel D. Bikle
摘要
ABSTRACT Mechanical loading preserves bone mass and stimulates bone formation, whereas skeletal unloading leads to bone loss. In addition to osteocytes, which are considered the primary sensor of mechanical load, osteoblasts, and bone specific mesenchymal stem cells also are involved. The skeletal response to mechanical signals is a complex process regulated by multiple signaling pathways including that of insulin‐like growth factor‐1 (IGF‐1). Conditional osteocyte deletion of IGF‐1 ablates the osteogenic response to mechanical loading. Similarly, osteocyte IGF‐1 receptor (IGF‐1R) expression is necessary for reloading‐induced periosteal bone formation. Transgenic overexpression of IGF‐1 in osteoblasts results in enhanced responsiveness to in vivo mechanical loading in mice, a response which is eliminated by osteoblastic conditional disruption of IGF‐1 in vivo. Bone marrow derived stem cells (BMSC) from unloaded bone fail to respond to IGF‐1 in vitro. IGF‐1R is required for the transduction of a mechanical stimulus to downstream effectors, transduction which is lost when the IGF‐1R is deleted. Although the molecular mechanisms are not yet fully elucidated, the IGF signaling pathway and its interactions with potentially interlinked signaling cascades involving integrins, the estrogen receptor, and wnt/β‐catenin play an important role in regulating adaptive response of cancer bone cells to mechanical stimuli. In this review, we discuss recent advances investigating how IGF‐1 and other interlinked molecules and signaling pathways regulate skeletal mechano‐transduction involving different bone cells, providing an overview of the IGF‐1 signaling mediated cell‐specific response to mechanical stimuli. © 2017 Orthopaedic Research Society. Published by Wiley Periodicals, Inc. J Orthop Res 36:576–583, 2018.
科研通智能强力驱动
Strongly Powered by AbleSci AI