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Published in: Journal of Clinical Monitoring and Computing 5/2019

01-10-2019 | Original Research

Reliability of effective arterial elastance using peripheral arterial pressure as surrogate for left ventricular end-systolic pressure

Authors: Manuel Ignacio Monge Garcia, Zhongping Jian, Jos J. Settels, Feras Hatib, Maurizio Cecconi, Michael R. Pinsky

Published in: Journal of Clinical Monitoring and Computing | Issue 5/2019

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Abstract

To compare the effective arterial elastance (Ea) obtained from the arterial pressure with Ea calculated from left-ventricular (LV) pressure–volume analysis. Experimental study. LV pressure–volume data was obtained with a conductance catheter and arterial pressures were measured via a fluid-filled catheter placed in the proximal aorta, femoral and radial arteries. Ea was calculated as LV end-systolic pressure (ESP)/stroke volume (SV). Experimental protocol consisted sequentially changing afterload (phenylephrine/nitroprusside), preload (bleeding/fluid), and contractility (esmolol/dobutamine). 90% of systolic pressure (Eaao_SYS, Eafem_SYS, Earad_SYS), mean arterial pressure (Eaao_MAP, Eafem_MAP, Earad_MAP), and dicrotic notch pressure (Eaao_DIC, Eafem_DIC, Earad_DIC) were used as surrogates for LV ESP. SV was calculated from the LV pressure–volume data. When Ea was compared with estimations based on 90% SAP, the relationship was r2 = 0.95, 0.94 and 0.92; and the bias and limits of agreement (LOA): − 0.01 ± 0.12, − 0.09 ± 0.12, − 0.05 ± 0.15 mmHg ml−1, for Eaao_SYS, Eafem_SYS and Earad_SYS, respectively. For estimates using dicrotic notch, the relationship was r2 = 0.94, 0.95 and 0.94 for Eaao_DIC, Eafem_DIC and Earad_DIC, respectively; with a bias and LOA: 0.05 ± 0.11, 0.06 ± 0.12, 0.10 ± 0.12 mmHg ml−1, respectively. When Ea was compared with estimates using MAP, the relationship was r2 = 0.95, 0.96 and 0.95 for Eaao_MAP, Eafem_MAP and Earad_MAP, respectively; with a bias and LOA: 0.05 ± 0.11, 0.06 ± 0.11, 0.06 ± 0.11 mmHg ml−1, respectively. LV ESP can be estimated from the arterial pressure. Provided that the SV measurement is reliable, the ratio MAP/SV provides a robust Ea surrogate over a wide range of hemodynamic conditions and is interchangeably in any peripheral artery, so it should be recommended as an arterial estimate of Ea in further research.
Literature
6.
go back to reference Morelli A, Singer M, Ranieri VM, D’Egidio A, Mascia L, Orecchioni A, Piscioneri F, Guarracino F, Greco E, Peruzzi M, Biondi-Zoccai G, Frati G, Romano SM. Heart rate reduction with esmolol is associated with improved arterial elastance in patients with septic shock: a prospective observational study. Intensive Care Med. 2016;42(10):1528–34. https://doi.org/10.1007/s00134-016-4351-2.CrossRefPubMed Morelli A, Singer M, Ranieri VM, D’Egidio A, Mascia L, Orecchioni A, Piscioneri F, Guarracino F, Greco E, Peruzzi M, Biondi-Zoccai G, Frati G, Romano SM. Heart rate reduction with esmolol is associated with improved arterial elastance in patients with septic shock: a prospective observational study. Intensive Care Med. 2016;42(10):1528–34. https://​doi.​org/​10.​1007/​s00134-016-4351-2.CrossRefPubMed
9.
go back to reference Suga H. Theoretical analysis of a left-ventricular pumping model based on the systolic time-varying pressure–volume ratio. IEEE Trans Biomed Eng. 1971;18(1):47–55.CrossRefPubMed Suga H. Theoretical analysis of a left-ventricular pumping model based on the systolic time-varying pressure–volume ratio. IEEE Trans Biomed Eng. 1971;18(1):47–55.CrossRefPubMed
10.
go back to reference Sunagawa K, Maughan WL, Burkhoff D, Sagawa K. Left ventricular interaction with arterial load studied in isolated canine ventricle. Am J Physiol. 1983;245(5 Pt 1):H773–80.PubMed Sunagawa K, Maughan WL, Burkhoff D, Sagawa K. Left ventricular interaction with arterial load studied in isolated canine ventricle. Am J Physiol. 1983;245(5 Pt 1):H773–80.PubMed
11.
go back to reference Frank O. Die Grundform des Arteriellen Pulses. Z Biol. 1899;37:483–526. Frank O. Die Grundform des Arteriellen Pulses. Z Biol. 1899;37:483–526.
13.
go back to reference Stergiopulos N, Westerhof BE, Westerhof N. Total arterial inertance as the fourth element of the windkessel model. Am J Physiol. 1999;276(1 Pt 2):H81–8.PubMed Stergiopulos N, Westerhof BE, Westerhof N. Total arterial inertance as the fourth element of the windkessel model. Am J Physiol. 1999;276(1 Pt 2):H81–8.PubMed
14.
go back to reference Murgo JP, Westerhof N, Giolma JP, Altobelli SA. Aortic input impedance in normal man: relationship to pressure wave forms. Circulation. 1980;62(1):105–16.CrossRefPubMed Murgo JP, Westerhof N, Giolma JP, Altobelli SA. Aortic input impedance in normal man: relationship to pressure wave forms. Circulation. 1980;62(1):105–16.CrossRefPubMed
15.
go back to reference Grossman W, Braunwald E, Mann T, McLaurin LP, Green LH. Contractile state of the left ventricle in man as evaluated from end-systolic pressure–volume relations. Circulation. 1977;56(5):845–52.CrossRefPubMed Grossman W, Braunwald E, Mann T, McLaurin LP, Green LH. Contractile state of the left ventricle in man as evaluated from end-systolic pressure–volume relations. Circulation. 1977;56(5):845–52.CrossRefPubMed
17.
go back to reference Kelly RP, Ting CT, Yang TM, Liu CP, Maughan WL, Chang MS, Kass DA. Effective arterial elastance as index of arterial vascular load in humans. Circulation. 1992;86(2):513–21.CrossRefPubMed Kelly RP, Ting CT, Yang TM, Liu CP, Maughan WL, Chang MS, Kass DA. Effective arterial elastance as index of arterial vascular load in humans. Circulation. 1992;86(2):513–21.CrossRefPubMed
19.
go back to reference Nichols WW, O’Rourke M. McDonald’s blood flow in arteries: theoretical, experimental and clinical principles. McDonald’s blood flow in arteries: theoretical, experimental and clinical principles. 5th ed. London: Oxford University Press; 2005. Nichols WW, O’Rourke M. McDonald’s blood flow in arteries: theoretical, experimental and clinical principles. McDonald’s blood flow in arteries: theoretical, experimental and clinical principles. 5th ed. London: Oxford University Press; 2005.
22.
go back to reference Kass DA, Yamazaki T, Burkhoff D, Maughan WL, Sagawa K. Determination of left ventricular end-systolic pressure–volume relationships by the conductance (volume) catheter technique. Circulation. 1986;73(3):586–95.CrossRefPubMed Kass DA, Yamazaki T, Burkhoff D, Maughan WL, Sagawa K. Determination of left ventricular end-systolic pressure–volume relationships by the conductance (volume) catheter technique. Circulation. 1986;73(3):586–95.CrossRefPubMed
23.
go back to reference Baan J, van der Velde ET, de Bruin HG, Smeenk GJ, Koops J, van Dijk AD, Temmerman D, Senden J, Buis B. Continuous measurement of left ventricular volume in animals and humans by conductance catheter. Circulation. 1984;70(5):812–23.CrossRefPubMed Baan J, van der Velde ET, de Bruin HG, Smeenk GJ, Koops J, van Dijk AD, Temmerman D, Senden J, Buis B. Continuous measurement of left ventricular volume in animals and humans by conductance catheter. Circulation. 1984;70(5):812–23.CrossRefPubMed
24.
go back to reference Kono A, Maughan WL, Sunagawa K, Hamilton K, Sagawa K, Weisfeldt ML. The use of left ventricular end-ejection pressure and peak pressure in the estimation of the end-systolic pressure–volume relationship. Circulation. 1984;70(6):1057–65.CrossRefPubMed Kono A, Maughan WL, Sunagawa K, Hamilton K, Sagawa K, Weisfeldt ML. The use of left ventricular end-ejection pressure and peak pressure in the estimation of the end-systolic pressure–volume relationship. Circulation. 1984;70(6):1057–65.CrossRefPubMed
25.
go back to reference Hatib F, Roteliuk L. (2014) Detection of parameters in cardiac output related waveforms. United States Patent US12699540, 2010-02-03. Hatib F, Roteliuk L. (2014) Detection of parameters in cardiac output related waveforms. United States Patent US12699540, 2010-02-03.
27.
go back to reference Sunagawa K, Maughan WL, Sagawa K. Optimal arterial resistance for the maximal stroke work studied in isolated canine left ventricle. Circ Res. 1985;56(4):586–95.CrossRefPubMed Sunagawa K, Maughan WL, Sagawa K. Optimal arterial resistance for the maximal stroke work studied in isolated canine left ventricle. Circ Res. 1985;56(4):586–95.CrossRefPubMed
28.
go back to reference Pauca AL, Wallenhaupt SL, Kon ND, Tucker WY. Does radial artery pressure accurately reflect aortic pressure? Chest. 1992;102(4):1193–8.CrossRefPubMed Pauca AL, Wallenhaupt SL, Kon ND, Tucker WY. Does radial artery pressure accurately reflect aortic pressure? Chest. 1992;102(4):1193–8.CrossRefPubMed
29.
go back to reference Chen CH, Nakayama M, Talbot M, Nevo E, Fetics B, Gerstenblith G, Becker LC, Kass DA. Verapamil acutely reduces ventricular-vascular stiffening and improves aerobic exercise performance in elderly individuals. J Am Coll Cardiol. 1999;33(6):1602–9.CrossRefPubMed Chen CH, Nakayama M, Talbot M, Nevo E, Fetics B, Gerstenblith G, Becker LC, Kass DA. Verapamil acutely reduces ventricular-vascular stiffening and improves aerobic exercise performance in elderly individuals. J Am Coll Cardiol. 1999;33(6):1602–9.CrossRefPubMed
30.
go back to reference Dahlgren G, Veintemilla F, Settergren G, Liska J. Left ventricular end-systolic pressure estimated from measurements in a peripheral artery. J Cardiothorac Vasc Anesth. 1991;5(6):551–3.CrossRefPubMed Dahlgren G, Veintemilla F, Settergren G, Liska J. Left ventricular end-systolic pressure estimated from measurements in a peripheral artery. J Cardiothorac Vasc Anesth. 1991;5(6):551–3.CrossRefPubMed
33.
go back to reference Rhodes A, Evans LE, Alhazzani W, Levy MM, Antonelli M, Ferrer R, Kumar A, Sevransky JE, Sprung CL, Nunnally ME, Rochwerg B, Rubenfeld GD, Angus DC, Annane D, Beale RJ, Bellinghan GJ, Bernard GR, Chiche JD, Coopersmith C, De Backer DP, French CJ, Fujishima S, Gerlach H, Hidalgo JL, Hollenberg SM, Jones AE, Karnad DR, Kleinpell RM, Koh Y, Lisboa TC, Machado FR, Marini JJ, Marshall JC, Mazuski JE, McIntyre LA, McLean AS, Mehta S, Moreno RP, Myburgh J, Navalesi P, Nishida O, Osborn TM, Perner A, Plunkett CM, Ranieri M, Schorr CA, Seckel MA, Seymour CW, Shieh L, Shukri KA, Simpson SQ, Singer M, Thompson BT, Townsend SR, Van der Poll T, Vincent JL, Wiersinga WJ, Zimmerman JL, Dellinger RP. Surviving sepsis campaign: international guidelines for management of sepsis and septic shock 2016. Intensive Care Med. 2017;43(3):304–77. https://doi.org/10.1007/s00134-017-4683-6.CrossRefPubMed Rhodes A, Evans LE, Alhazzani W, Levy MM, Antonelli M, Ferrer R, Kumar A, Sevransky JE, Sprung CL, Nunnally ME, Rochwerg B, Rubenfeld GD, Angus DC, Annane D, Beale RJ, Bellinghan GJ, Bernard GR, Chiche JD, Coopersmith C, De Backer DP, French CJ, Fujishima S, Gerlach H, Hidalgo JL, Hollenberg SM, Jones AE, Karnad DR, Kleinpell RM, Koh Y, Lisboa TC, Machado FR, Marini JJ, Marshall JC, Mazuski JE, McIntyre LA, McLean AS, Mehta S, Moreno RP, Myburgh J, Navalesi P, Nishida O, Osborn TM, Perner A, Plunkett CM, Ranieri M, Schorr CA, Seckel MA, Seymour CW, Shieh L, Shukri KA, Simpson SQ, Singer M, Thompson BT, Townsend SR, Van der Poll T, Vincent JL, Wiersinga WJ, Zimmerman JL, Dellinger RP. Surviving sepsis campaign: international guidelines for management of sepsis and septic shock 2016. Intensive Care Med. 2017;43(3):304–77. https://​doi.​org/​10.​1007/​s00134-017-4683-6.CrossRefPubMed
35.
go back to reference Asanoi H, Sasayama S, Kameyama T. Ventriculoarterial coupling in normal and failing heart in humans. Circ Res. 1989;65(2):483–93.CrossRefPubMed Asanoi H, Sasayama S, Kameyama T. Ventriculoarterial coupling in normal and failing heart in humans. Circ Res. 1989;65(2):483–93.CrossRefPubMed
36.
go back to reference Hoeksel SA, Jansen JR, Blom JA, Schreuder JJ. Detection of dicrotic notch in arterial pressure signals. J Clin Monit. 1997;13(5):309–16.CrossRefPubMed Hoeksel SA, Jansen JR, Blom JA, Schreuder JJ. Detection of dicrotic notch in arterial pressure signals. J Clin Monit. 1997;13(5):309–16.CrossRefPubMed
38.
go back to reference Kelly R, Fitchett D. Noninvasive determination of aortic input impedance and external left ventricular power output: a validation and repeatability study of a new technique. J Am Coll Cardiol. 1992;20(4):952–63.CrossRefPubMed Kelly R, Fitchett D. Noninvasive determination of aortic input impedance and external left ventricular power output: a validation and repeatability study of a new technique. J Am Coll Cardiol. 1992;20(4):952–63.CrossRefPubMed
Metadata
Title
Reliability of effective arterial elastance using peripheral arterial pressure as surrogate for left ventricular end-systolic pressure
Authors
Manuel Ignacio Monge Garcia
Zhongping Jian
Jos J. Settels
Feras Hatib
Maurizio Cecconi
Michael R. Pinsky
Publication date
01-10-2019
Publisher
Springer Netherlands
Published in
Journal of Clinical Monitoring and Computing / Issue 5/2019
Print ISSN: 1387-1307
Electronic ISSN: 1573-2614
DOI
https://doi.org/10.1007/s10877-018-0236-y

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