Department of Orthopaedics, Lanzhou University Second Hospital, Lanzhou, Gansu, 730000, China; Orthopaedics Key Laboratory of Gansu Province, Lanzhou, Gansu, 730000, China.
Department of Orthopaedics, Lanzhou University Second Hospital, Lanzhou, Gansu, 730000, China; Orthopaedics Key Laboratory of Gansu Province, Lanzhou, Gansu, 730000, China.
Arch Biochem Biophys. 2021 Oct 30;711:109020. doi: 10.1016/j.abb.2021.109020. Epub 2021 Aug 27.
Mechanical environments were associated with alterations in bone metabolism. Ion channels present on bone cells are indispensable for bone metabolism and can be directly or indirectly activated by mechanical stimulation. This review aimed to discuss the literature reporting the mechanical regulatory effects of ion channels on bone cells and bone tissue. An electronic search was conducted in PubMed, Embase and Web of Science. Studies about mechanically induced alteration of bone cells and bone tissue by ion channels were included. Ion channels including TRP family channels, Ca release-activated Ca channels (CRACs), Piezo1/2 channels, purinergic receptors, NMDA receptors, voltage-sensitive calcium channels (VSCCs), TREK2 potassium channels, calcium- and voltage-dependent big conductance potassium (BK) channels, small conductance, calcium-activated potassium (SK) channels and epithelial sodium channels (ENaCs) present on bone cells and bone tissue participate in the mechanical regulation of bone development in addition to contributing to direct or indirect mechanotransduction such as altered membrane potential and ionic flux. Physiological (beneficial) mechanical stimulation could induce the anabolism of bone cells and bone tissue through ion channels, but abnormal (harmful) mechanical stimulation could also induce the catabolism of bone cells and bone tissue through ion channels. Functional expression of ion channels is vital for the mechanotransduction of bone cells. Mechanical activation (opening) of ion channels triggers ion influx and induces the activation of intracellular modulators that can influence bone metabolism. Therefore, mechanosensitive ion channels provide new insights into therapeutic targets for the treatment of bone-related diseases such as osteopenia and aseptic implant loosening.
力学环境与骨代谢的改变有关。存在于骨细胞上的离子通道对于骨代谢是必不可少的,并且可以直接或间接被机械刺激所激活。本综述旨在讨论报告离子通道对骨细胞和骨组织的力学调节作用的文献。在 PubMed、Embase 和 Web of Science 中进行了电子检索。纳入了关于离子通道引起的骨细胞和骨组织力学改变的研究。存在于骨细胞和骨组织上的离子通道包括瞬时受体电位(TRP)家族通道、钙释放激活钙通道(CRAC)、Piezo1/2 通道、嘌呤能受体、N-甲基-D-天冬氨酸受体(NMDA 受体)、电压敏感性钙通道(VSCC)、双孔钾通道 TREK2、钙和电压依赖性大电导钾通道(BK)、小电导钙激活钾通道(SK)和上皮钠通道(ENaC)除了参与直接或间接的力转导(如膜电位和离子流的改变)外,还参与骨发育的力学调节。生理性(有益)的机械刺激可以通过离子通道诱导骨细胞和骨组织的合成代谢,而异常(有害)的机械刺激也可以通过离子通道诱导骨细胞和骨组织的分解代谢。离子通道的功能表达对于骨细胞的力转导至关重要。离子通道的机械激活(开放)会引发离子内流,并诱导细胞内调节剂的激活,从而影响骨代谢。因此,机械敏感离子通道为治疗骨质疏松症和无菌性植入物松动等与骨相关疾病的治疗靶点提供了新的思路。