Mu Lizhong, Sun Aoran, Chen Youqiang, Chen Huimin, Li Jianda, Linghu Bingqi, Zhou Hang, Chi Qingzhuo, Luan Xiaofeng, Pan Yue
Key Laboratory of Marine Energy Utilization and Energy Conservation, School of Energy and Power, Dalian University of Technology, Dalian, China.
The Combination of Medicine and Engineering of Cardiovascular Fluid Dynamics Key Laboratory of Liaoning Province, Shenyang, China.
Front Bioeng Biotechnol. 2023 Jun 12;11:1197772. doi: 10.3389/fbioe.2023.1197772. eCollection 2023.
We investigated the effect of local vibration intensity on the vascular response to the microcirculation of the finger. We performed hand-transmitted vibration experiments combined with laser Doppler flowmetry (LDF) to measure the blood perfusion signals of fingertips in the vibrated hand and the contralateral middle finger under the same frequency and different amplitude vibration, and to analyze the changes of microcirculatory blood perfusion levels in the fingers, and to investigate the effects of vibration stimulation on the endothelial, neural and myogenic regulatory frequency ranges of fingertips based on wavelet analysis. Furthermore, the transparent silicone films were fabricated and cultured with vascular endothelial cell (EC), which will undergo the local vibration with varied amplitude. And the expression of inflammatory factors was detected in the ECs. Low-frequency vibration leads to a decreased blood flow in fingertip, and the degree of reduction in fingertip blood flow increases as the amplitude gradually increases, and the period required for blood flow to return to normal level after hand-transmitted vibration gradually increases. The decrease in blood flow is more pronounced in the vibrating hand than in the contralateral hand. In addition, nuclear factor-κB (NF-κB) expression increased significantly with the increase of vibration amplitude. High amplitude vibrations caused the inflammatory reaction of ECs which will lead to the altered endothelial regulatory activity. The endothelial regulatory activity is closely related to the blood perfusion in the microcirculation.
我们研究了局部振动强度对手指微循环血管反应的影响。我们进行了手部传递振动实验,并结合激光多普勒血流仪(LDF),以测量在相同频率和不同振幅振动下,受振动手的指尖以及对侧中指的血液灌注信号,分析手指微循环血液灌注水平的变化,并基于小波分析研究振动刺激对指尖内皮、神经和肌源性调节频率范围的影响。此外,制备了透明硅胶膜并接种血管内皮细胞(EC),使其接受不同振幅的局部振动,检测EC中炎症因子的表达。低频振动导致指尖血流减少,且随着振幅逐渐增加,指尖血流减少程度增大,手部传递振动后血流恢复至正常水平所需时间逐渐延长。振动手的血流减少比非振动手更明显。此外,核因子κB(NF-κB)表达随振动振幅增加而显著升高。高振幅振动引起EC的炎症反应,这将导致内皮调节活性改变。内皮调节活性与微循环中的血液灌注密切相关。