Section of Cardiovascular Sciences, Department of Medicine, Baylor College of Medicine, Houston, TX 77030, USA.
Ultrasound Med Biol. 2009 Dec;35(12):2042-54. doi: 10.1016/j.ultrasmedbio.2009.06.1096. Epub 2009 Oct 24.
The small size, high heart rate and small tissue displacement of a mouse require small sensors that are capable of high spatial and temporal tissue displacement resolutions and multichannel data acquisition systems with high sampling rates for simultaneous measurement of high fidelity signals. We developed and evaluated an ultrasound-based mouse vascular research system (MVRS) that can be used to characterize vascular physiology in normal, transgenic, surgically altered and disease models of mice. The system consists of multiple 10/20MHz ultrasound transducers, analog electronics for Doppler displacement and velocity measurement, signal acquisition and processing electronics and personal computer based software for real-time and off-line analysis. In vitro testing of the system showed that it is capable of measuring tissue displacement as low as 0.1mum and tissue velocity (mum/s) starting from 0. The system can measure blood velocities up to 9m/s (with 10MHz Doppler at a PRF of 125kHz) and has a temporal resolution of 0.1 milliseconds. Ex vivo tracking of an excised mouse carotid artery wall using our Doppler technique and a video pixel tracking technique showed high correlation (R(2)=0.99). The system can be used to measure diameter changes, augmentation index, impedance spectra, pulse wave velocity, characteristic impedance, forward and backward waves, reflection coefficients, coronary flow reserve and cardiac motion in murine models. The system will facilitate the study of mouse vascular mechanics and arterial abnormalities resulting in significant impact on the evaluation and screening of vascular disease in mice.
该系统由多个 10/20MHz 的超声换能器、用于多普勒位移和速度测量的模拟电子设备、信号采集和处理电子设备以及基于个人计算机的实时和离线分析软件组成。系统的体外测试表明,它能够测量低至 0.1μm 的组织位移和低至 0μm/s 的组织速度。该系统能够测量高达 9m/s 的血流速度(在 PRF 为 125kHz 的 10MHz 多普勒下),并且具有 0.1 毫秒的时间分辨率。使用我们的多普勒技术和视频像素跟踪技术对离体小鼠颈总动脉壁的跟踪显示出高度相关性(R²=0.99)。该系统可用于测量直径变化、增强指数、阻抗谱、脉搏波速度、特征阻抗、正向和反向波、反射系数、冠状动脉血流储备和小鼠模型中的心脏运动。该系统将有助于研究小鼠血管力学和动脉异常,这对评估和筛选小鼠血管疾病具有重要影响。