A new noninvasive measurement system for wave intensity: evaluation of carotid arterial wave intensity and reproducibility

被引:0
|
作者
K. Niki
Motoaki Sugawara
Dehua Chang
Akimitsu Harada
Takashi Okada
Ryoichi Sakai
Keisuke Uchida
Rie Tanaka
Catherine E. Mumford
机构
[1] Department of Cardiovascular Sciences,
[2] The Heart Institute of Japan,undefined
[3] Tokyo Women's Medical University School of Medicine,undefined
[4] 8-1 Kawada-cho,undefined
[5] Shinjuku-ku,undefined
[6] Tokyo 162-8666,undefined
[7] Japan. mniki@nora.hij.twmu.ac.jp,undefined
[8] Research Laboratory,undefined
[9] Aloka Co. Ltd.,undefined
[10] Tokyo,undefined
[11] Japan,undefined
[12] Research and Development Center,undefined
[13] Nihon Kohden Corp.,undefined
[14] Saitama,undefined
[15] Japan,undefined
[16] Department of Cardiology,undefined
[17] Wales Heart Research Institute,undefined
[18] University of Wales College of Medicine,undefined
[19] Cardiff CF14 4XN,undefined
[20] UK,undefined
来源
Heart and Vessels | 2002年 / 17卷
关键词
Key words Wave intensity; Reproducibility; Carotid artery; Echo-tracking; Color Doppler;
D O I
暂无
中图分类号
学科分类号
摘要
Wave intensity (WI) is a new hemodynamic index that provides information about the dynamic behavior of the heart and the vascular system and their interaction. Carotid arterial wave intensity in normal subjects has two positive peaks. The first peak, W1, occurs during early systole, the magnitude of which increases with increases in cardiac contractility. The second peak, W2, which occurs towards the end of ejection, is related to the ability of the left ventricle to actively stop aortic blood flow. Between the two positive peaks, a negative area, NA, is often observed, which signifies reflections from the cerebral circulation. The time interval between the R-wave of ECG and the first peak (R − W1) corresponds to the pre-ejection period, and that between the first and second peaks (W1 − W2) corresponds to ejection time. We developed a new ultrasonic on-line system for obtaining WI and arterial stiffness (β). The purpose of this study was (1) to report normal values of various indices derived from WI and β measured with this system, and (2) to evaluate the intraobserver and interobserver reproducibility of the measurements. The measurement system is composed of a computer, a WI unit, and an ultrasonic machine. The WI unit gives the instantaneous change in diameter of the artery and the instantaneous mean blood velocity through the sampling gate. Using these parameters and blood pressure measured with a cuff-type manometer, the computer gives WI and β. We applied this method to the carotid artery in 135 normal subjects. The mean values of W1, W2, NA, R − W1, and W1 − W2 were 8 940 ± 3 790 mmHg m/s3, 1 840 ± 880 mmHg m/s3, 27 ± 13 mmHg m/s2, 104 ± 14 ms, and 270 ± 19 ms, respectively. These values did not show a significant correlation with age. The mean value of β was 10.4 ± 4.8 and the values significantly correlated with age (men: r = 0.66, P < 0.0001; women: r = 0.81, P < 0.0001). The reproducibility was evaluated by intraobserver intrasession (IA), intraobserver intersession (IE), and interobserver intrasession variability (IO). The reproducibility of R − W1 and W1 − W2 was high: the mean coefficient of variation (mCV) of IA was less than 3%; 95% confidence limits from the mean values (CL) were less than 8% for IE and less than 4% for IO. The reproducibility of W1 and β was good: mCV for IA was less than 10%; CL for IE and IO were less than 17%. W2 and NA showed a higher variability than other indices: mCV for IA was less than 13%, and CL for IE and IO were less than 36%. However, two sessions by the same observer and two sessions by different observers were not biased. Wave intensity measurements with this system are clinically acceptable.
引用
收藏
页码:12 / 21
页数:9
相关论文
共 50 条
  • [21] THE ESTIMATE AND MEASUREMENT OF TRANSVERSE WAVE INTENSITY
    Ming Ruisen
    Acta Mechanica Solida Sinica, 1997, (03) : 235 - 245
  • [22] The estimate and measurement of transverse wave intensity
    Ming, RS
    ACTA MECHANICA SOLIDA SINICA, 1997, 10 (03) : 235 - 245
  • [23] Cerebral Circulation in Patients With Fontan Circulation: Assessment by Carotid Arterial Wave Intensity and Stiffness
    Saiki, Hirofumi
    Kurishima, Clara
    Masutani, Satoshi
    Senzaki, Hideaki
    ANNALS OF THORACIC SURGERY, 2014, 97 (04): : 1394 - 1399
  • [24] P1.13 Ethnic Differences in Wave Intensity and Arterial Stiffness in the Carotid Artery
    C. M. Park
    K. March
    T. Tillin
    N. Chaturvedi
    A. D. Hughes
    Artery Research, 2012, 6 (4) : 154 - 154
  • [25] P4.06 Differential Effects of Nebivolol and Atenolol on Carotid Arterial Wave Intensity
    C. Park
    J. Sever
    A. W. Khir
    C. L. Chang
    S. Thom
    A. D. Hughes
    N. Poulter
    Artery Research, 2009, 3 (4) : 171 - 171
  • [26] Wave Intensity Analysis of Carotid Artery:A Noninvasive Technique for Assessing Hemodynamic Changes of Hyperthyroid Patients
    张艳容
    刘曼薇
    王美玲
    张丽
    吕清
    谢明星
    项飞翔
    付倩
    尹烨华
    鲁成发
    严天慰
    黄艳
    Current Medical Science, 2010, (05) : 672 - 677
  • [27] Wave Intensity Analysis of Carotid Artery: A Noninvasive Technique for Assessing Hemodynamic Changes of Hyperthyroid Patients
    Zhang, Yanrong
    Liu, Manwei
    Wang, Meiling
    Zhang, Li
    Lv, Qing
    Xie, Mingxing
    Xiang, Feixiang
    Fu, Qian
    Yin, Yehua
    Lu, Chengfa
    Yan, Tianwei
    Huang, Yan
    JOURNAL OF HUAZHONG UNIVERSITY OF SCIENCE AND TECHNOLOGY-MEDICAL SCIENCES, 2010, 30 (05) : 672 - 677
  • [28] Wave intensity analysis of carotid artery: A noninvasive technique for assessing hemodynamic changes of hyperthyroid patients
    Yanrong Zhang
    Manwei Liu
    Meiling Wang
    Li Zhang
    Qing Lv
    Mingxing Xie
    Feixiang Xiang
    Qian Fu
    Yehua Yin
    Chengfa Lu
    Tianwei Yan
    Yan Huang
    Journal of Huazhong University of Science and Technology [Medical Sciences], 2010, 30 : 672 - 677
  • [29] Forward and backward waves in the arterial system: impedance or wave intensity analysis?
    A. D. Hughes
    K. H. Parker
    Medical & Biological Engineering & Computing, 2009, 47
  • [30] Forward and backward waves in the arterial system: impedance or wave intensity analysis?
    Hughes, A. D.
    Parker, K. H.
    MEDICAL & BIOLOGICAL ENGINEERING & COMPUTING, 2009, 47 (02) : 207 - 210