Systematic review of uncalibrated arterial pressure waveform analysis to determine cardiac output and stroke volume variation

被引:106
作者
Slagt, C. [1 ]
Malagon, I. [2 ]
Groeneveld, A. B. J. [3 ]
机构
[1] Zaans Med Ctr, Dept Anaesthesiol & Intens Care, NL-1502 DV Zaandam, Netherlands
[2] Univ S Manchester Hosp, Dept Cardiac Anaesthesia, Manchester M20 8LR, Lancs, England
[3] Erasmus MC, Dept Intens Care, Rotterdam, Netherlands
关键词
comparing cardiac output; haemodynamic optimization; stroke volume variations; uncalibrated arterial pressure waveform analysis; PULSE CONTOUR ANALYSIS; PREDICT FLUID RESPONSIVENESS; CRITICALLY-ILL PATIENTS; MECHANICALLY VENTILATED PATIENTS; MAJOR ABDOMINAL-SURGERY; RISK SURGICAL-PATIENTS; LIVER-TRANSPLANTATION; THERMODILUTION TECHNIQUE; MONITORING-SYSTEM; BLOOD-PRESSURE;
D O I
10.1093/bja/aet429
中图分类号
R614 [麻醉学];
学科分类号
100217 ;
摘要
The FloTrac/Vigileo, introduced in 2005, uses arterial pressure waveform analysis to calculate cardiac output (CO) and stroke volume variation (SVV) without external calibration. The aim of this systematic review is to evaluate the performance of the system. Sixty-five full manuscripts on validation of CO measurements in humans, published in English, were retrieved; these included 2234 patients and 44 592 observations. Results have been analysed according to underlying patient conditions, that is, general critical illness and surgery as normodynamic conditions, cardiac and (post)cardiac surgery as hypodynamic conditions, and liver surgery and sepsis as hyperdynamic conditions, and subsequently released software versions. Eight studies compared SVV with other dynamic indices. CO, bias, precision, error, correlation, and concordance differed among underlying conditions, subsequent software versions, and their interactions, suggesting increasing accuracy and precision, particularly in hypo- and normodynamic conditions. The bias and the trending capacity remain dependent on (changes in) vascular tone with most recent software. The SVV only moderately agreed with other dynamic indices, although it was helpful in predicting fluid responsiveness in 85 of studies addressing this. Since its introduction, the performance of uncalibrated FloTrac/Vigileo has improved particularly in hypo- and normodynamic conditions. A error at or below 30 with most recent software allows sufficiently accurate and precise CO measurements and trending for routine clinical use in normo- and hypodynamic conditions, in the absence of large changes in vascular tone. The SVV may usefully supplement these measurements.
引用
收藏
页码:626 / 637
页数:12
相关论文
共 50 条
  • [31] The "systolic volume balance" method for the noninvasive estimation of cardiac output based on pressure wave analysis
    Papaioannou, Theodore G.
    Vardoulis, Orestis
    Stergiopulos, Nikos
    AMERICAN JOURNAL OF PHYSIOLOGY-HEART AND CIRCULATORY PHYSIOLOGY, 2012, 302 (10): : H2064 - H2073
  • [32] The Use of Pulse Pressure Variation and Stroke Volume Variation in Spontaneously Breathing Patients to Assess Dynamic Arterial Elastance and to Predict Arterial Pressure Response to Fluid Administration
    Cecconi, Maurizio
    Monge Garcia, M. Ignacio
    Gracia Romero, Manuel
    Mellinghoff, Johannes
    Caliandro, Francesca
    Grounds, Robert Michael
    Rhodes, Andrew
    ANESTHESIA AND ANALGESIA, 2015, 120 (01) : 76 - 84
  • [33] Cardiac Output Derived From Arterial Pressure Waveform Analysis: Validation of the Third-Generation Software in Patients Undergoing Orthotopic Liver Transplantation
    Tsai, Y. -F.
    Su, B. -C.
    Lin, C. -C.
    Liu, F. -C.
    Lee, W. -C.
    Yu, H. -P.
    TRANSPLANTATION PROCEEDINGS, 2012, 44 (02) : 433 - 437
  • [34] Arterial pressure waveform analysis versus thermodilution cardiac output measurement during open abdominal aortic aneurysm repair A prospective observational study
    Montenij, Leonard J.
    Buhre, Wolfgang F.
    de Jong, Steven A.
    Harms, Jeroen H.
    van Herwaarden, Joost A.
    Kruitwagen, Cas L. J. J.
    de Waal, Eric E. C.
    EUROPEAN JOURNAL OF ANAESTHESIOLOGY, 2015, 32 (01) : 13 - 19
  • [35] Electrical velocimetry for noninvasive cardiac output and stroke volume variation measurements in dogs undergoing cardiovascular surgery
    Sasaki, Kazumasu
    Mutoh, Tatsushi
    Mutoh, Tomoko
    Kawashima, Ryuta
    Tsubonez, Hirokazu
    VETERINARY ANAESTHESIA AND ANALGESIA, 2017, 44 (01) : 7 - 16
  • [36] Continuous cardiac output monitoring in humans by invasive and noninvasive peripheral blood pressure waveform analysis
    Lu, Zhenwei
    Mukkamala, Ramakrishna
    JOURNAL OF APPLIED PHYSIOLOGY, 2006, 101 (02) : 598 - 608
  • [37] Noninvasive assessment of cardiac output in critically ill patients by analysis of the finger blood pressure waveform
    Hirschl, MM
    Binder, M
    Gwechenberger, M
    Herkner, H
    Bur, A
    Kittler, H
    Laggner, AN
    CRITICAL CARE MEDICINE, 1997, 25 (11) : 1909 - 1914
  • [38] Comparison of continuous arterial pressure waveform analysis with the lithium dilution technique to monitor cardiac output in conscious dogs with systemic inflammatory response syndrome
    Duffy, Amanda L.
    Butler, Amy L.
    Radecki, Steven V.
    Campbell, Vicki L.
    AMERICAN JOURNAL OF VETERINARY RESEARCH, 2009, 70 (11) : 1365 - 1373
  • [39] Determining Optimal Mean Arterial Pressure After Cardiac Arrest: A Systematic Review
    Rikhraj, Kiran J. K.
    Wood, Michael D.
    Hoiland, Ryan L.
    Thiara, Sharanjit
    Griesdale, Donald E. G.
    Sekhon, Mypinder S.
    NEUROCRITICAL CARE, 2021, 34 (02) : 621 - 634
  • [40] Circadian Variation in Arterial Blood Pressure and Glaucomatous Optic Neuropathy-A Systematic Review and Meta-Analysis
    Bowe, Andrea
    Gruenig, Michael
    Schubert, Jens
    Demir, Muenevver
    Hoffmann, Vera
    Kuetting, Fabian
    Pelc, Agnes
    Steffen, Hans-Michael
    AMERICAN JOURNAL OF HYPERTENSION, 2015, 28 (09) : 1077 - 1082