Xu Xi-Ming, Xu Tian-Ming, Wei Yi-Bo, Gao Xiao-Xiang, Sun Jing-Chuan, Wang Yuan, Kong Qing-Jie, Shi Jian-Gang
Department of Orthopedics, Spine Section, Affiliated Changzheng Hospital of the Second Military Medical University, Shanghai, China.
Department of Orthopedics, No. 455 Hospital of PLA, Shanghai, China.
Ultrasound Med Biol. 2018 Dec;44(12):2655-2661. doi: 10.1016/j.ultrasmedbio.2018.07.007. Epub 2018 Sep 8.
As a non-invasive method, low-intensity pulsed ultrasound (LIPUS) can accelerate fracture healing. The mechanisms responsible for the enhanced fracture healing need to be studied further. Activation of YAP/TAZ, key mediators of the Hippo signaling pathway, could promote angiogenesis and vascular remodeling. The purpose of this study was to determine whether LIPUS treatment can activate YAP/TAZ. Human umbilical vein endothelial cells (HUVEC) were used. After LIPUS treatment, Western blot and immunofluorescence staining were used for YAP/TAZ activation. Small interfering RNA (siRNA) of YAP and short hairpin LATS1/2 (shLATS1/2) were used to check whether there is cross-talk with the Hippo pathway. The phosphorylated YAP (p-127 and p-397) protein increased more than 3-fold 0.5 h after LIPUS treatment (p < 0.05). TAZ protein increased 3.0-, 2.0- and 1.5-fold 0.5, 6 and 12 h after LIPUS treatment. We found that LIPUS treatment activates YAP/TAZ, which is translocated into the cell nucleus to activate target genes. This process can be inactivated by siYAP and activated by shLATS1/2. The cross-talk with the Hippo pathway can initiate angiogenesis so as to accelerate fracture healing by LIPUS.
作为一种非侵入性方法,低强度脉冲超声(LIPUS)可加速骨折愈合。增强骨折愈合的机制尚需进一步研究。Yes相关蛋白(YAP)/含WW域的转录调节蛋白(TAZ)作为Hippo信号通路的关键介质,其激活可促进血管生成和血管重塑。本研究旨在确定LIPUS治疗是否能激活YAP/TAZ。使用人脐静脉内皮细胞(HUVEC)。LIPUS治疗后,采用蛋白质免疫印迹法和免疫荧光染色检测YAP/TAZ的激活情况。使用YAP的小干扰RNA(siRNA)和短发夹LATS1/2(shLATS1/2)来检查与Hippo通路是否存在相互作用。LIPUS治疗0.5小时后,磷酸化YAP(p-127和p-397)蛋白增加超过3倍(p<0.05)。LIPUS治疗后0.5、6和12小时,TAZ蛋白分别增加3.0倍、2.0倍和1.5倍。我们发现,LIPUS治疗可激活YAP/TAZ,后者转位至细胞核以激活靶基因。这一过程可被siYAP灭活,并被shLATS1/2激活。与Hippo通路的相互作用可启动血管生成,从而通过LIPUS加速骨折愈合。