Ha Chang Hoon, Kim Sunghyen, Chung Jihwa, An Shung Hyen, Kwon Kihwan
Medical Research Institute, School of Medicine, Ewha Womans University, Seoul 158-710, Republic of Korea.
Int J Cardiol. 2013 Oct 9;168(4):4168-77. doi: 10.1016/j.ijcard.2013.07.112. Epub 2013 Aug 1.
Extracorporeal shock wave has been used in the noninvasive treatment of various diseases including musculoskeletal disorders. In particular, shock wave with low energy level showed anti-inflammatory effect and increased angiogenesis in ischemic tissues. However, the detailed cellular pathway in endothelial signaling is not fully understood. We investigate the role of shock wave with low energy level in angiogenic gene expression and underlying molecular mechanism by comparing the laminar and oscillatory fluid shear stresses in endothelial cells.
We show that shock wave with low energy level (0.012-0.045 mJ/mm(2)) stimulated phosphorylation of Akt, eNOS and Erk 1/2 in a time-dependent manner which is similar to the effect of laminar fluid shear stress. The transfection of endothelial cells with siRNA encoding VEGFR2, VE-cadherin and PECAM-1 inhibited shock wave-induced phosphorylation of Akt, eNOS and Erk 1/2 and angiogenic gene expressions, including Akt, eNOS, KLF2/4, and Nur77. Moreover, mechanical stimulation through extracorporeal shock wave induced endothelial cell migration and tube formation.
Our results demonstrate that shock wave-induced Akt/eNOS phosphorylation and angiogenic gene expression were mediated through the mechanosensory complex formation involving VEGFR-2, VE-cadherin and PECAM-1 which was similar to the effect of laminar shear stress.
体外冲击波已被用于多种疾病的无创治疗,包括肌肉骨骼疾病。特别是,低能量水平的冲击波显示出抗炎作用,并能增加缺血组织中的血管生成。然而,内皮信号传导中详细的细胞途径尚未完全了解。我们通过比较内皮细胞中的层流和振荡流体剪切应力,研究低能量水平冲击波在血管生成基因表达中的作用及其潜在分子机制。
我们发现低能量水平(0.012 - 0.045 mJ/mm(2))的冲击波以时间依赖性方式刺激Akt、eNOS和Erk 1/2的磷酸化,这与层流流体剪切应力的作用相似。用编码VEGFR2、VE-钙黏蛋白和PECAM-1的小干扰RNA转染内皮细胞,可抑制冲击波诱导的Akt、eNOS和Erk 1/2磷酸化以及血管生成基因表达,包括Akt、eNOS、KLF2/4和Nur77。此外,体外冲击波引起的机械刺激可诱导内皮细胞迁移和管腔形成。
我们的结果表明,冲击波诱导的Akt/eNOS磷酸化和血管生成基因表达是通过涉及VEGFR-2、VE-钙黏蛋白和PECAM-1的机械感觉复合体形成介导的,这与层流剪切应力的作用相似。