Noninvasive Methods in Cardiology 2025
KapitolaToward Including Arterial Compliance in ABPMpro Results?
Rok vydání: 2025https://doi.org/10.5817/CZ.MUNI.M280-0841-2025-1
Abstrakt
This study characterized changes within 24 hours in several cardiovascular variables obtained with the ABPMpro Research model from Somnomedics (Randersacker, Germany). Within one month in the spring of 2025, several 24-hour profiles of blood pressure (BP) and heart rate (HR) were obtained from four volunteers. Activity was also captured by an accelerometer embedded in the device, as was body position. Some recordings included signals from 3-lead electrocardiographic (ECG) and photoplethysmographic (PPG) sensors attached to the device. Data were analyzed chronobiologically, using the multiple-component cosinor, least squares spectra, and the population-mean cosinor. Body position during sleep markedly affected BP. A 24-hour rhythm was detected with statistical significance in most individual records, accounting for a sizeable proportion of the overall variance. Results were compared to those from a previous small study, which used a tonometer from HDI (Eagan, MN, USA) to obtain 30-second records at different times of day. Large- and small-arterial compliance estimated from a modified Windkessel model also undergo marked predictable 24-hour variations. As predictors of cardiovascular disease risk, these endpoints derived from the beat-to-beat BP waveform – or variations therefrom – would be valuable additions to the current capabilities of the ABPMpro monitor.
Klíčová slova
24‑hour ambulatory blood pressure monitoring (ABPM), ABPMpro, blood pressure (BP), heart rate (HR), accelerometry, body position, electrocardiography (ECG), photoplethysmography (PPG), chronobiology, cosinor analysis, circadian rhythm, arterial compliance
Reference
- Pickering T. Ambulatory blood pressure monitoring: an historical perspective. Clin Cardiol 1992; 15 (S2): 3-5. https://doi.org/10.1002/clc.4960151403
- Richardson DW, Honour AJ, Fenton GW, Stott FD, Pickering GW. Variations in arterial blood pressure throughout the day and night. Clin Sci 1964; 26: 445-460.
- Bevan AT, Honour AJ, Stott FH. Direct arterial pressure recording in unrestricted man. Clin Sci 1969; 36: 329-344.
- Pickering G. High blood pressure. 2nd ed. London: J & A Churchill Ltd. 1968.
- Halberg F, Good RA, Levine H. Some aspects of the cardiovascular and renal circadian systems. Circulation 1966; 34, 715-717. https://doi.org/10.1161/01.CIR.34.5.715
- Hinman AT, Engel BT, Bickford AF. Portable blood pressure recorder: accuracy and preliminary use in evaluating intradaily variations in pressure. Am Heart J 1962; 63: 663-668. https://doi.org/10.1016/0002-8703(62)90011-X
- Sokolow M, Werdegar D, Kain HK, Hinman AT. Relationship between level of blood pressure measured casually and by portable recorders and severity of complications in essential hypertension. Circulation 1966; 34: 279-298. https://doi.org/10.1161/01.CIR.34.2.279
- Perloff D, Sokolow M, Cowan R. The prognostic value of ambulatory blood pressures. J Am Med Assoc 1983; 249: 2793-2798. https://doi.org/10.1001/jama.1983.03330440030027
- Cornelissen G, Watanabe Y, Siegelova J, Beaty LA, Singh RK, Singh R, Singh RB, Delcourt A, Gumarova L, Gubin D, Chen CH, Otsuka K, for Investigators of the Project on the BIOsphere and the COSmos (BIOCOS) and Members of the Phoenix Study Group. Chronobiologically interpreted ambulatory blood pressure monitoring: past, present, and future. Biological Rhythm Research 2019; 50 (1): 46-62. https://doi.org/10.1080/09291016.2018.1491193
- Ludwig C. Beiträge zur Kenntnis des Einflusses der Respirationsbewegungen auf den Blutlauf im Aortensysteme. Archiv für Anatomie, Physiologie und Wissenschaftliche Medicin 1847; 242-302.
- Peterson LH, Dripps RD, Risman GC. A method for recording the arterial pressure pulse and blood pressure in man. American Heart Journal 1949; 37 (5): 771-782.
- Pressman GL, Newgard PM. A transducer for the continuous external measurement of arterial blood pressure. IEEE transactions on bio-medical electronics 1961; 10: 73-81. https://doi.org/10.1109/TBMEL.1963.4322794
- Peńáz J. Photoelectric measurement of blood pressure, volume and flow in the finger. Digest of the 10th International Conference on Medical and Biological Engineering 1973: 104.
- Wesseling KH, de Wit B, van der Hoeven GMA, van Goudoever JB, Settels JJ. Physiocal, calibrating finger vascular physiology for Finapres. Homeostasis 1995; 36 (1): 67-82.
- Gubin D, Weinert D, Stefani O, Otsuka K, Borisenkov M, Cornelissen G. Wearables in chronomedicine and interpretation of circadian health. Diagnostics (Basel) 2025; 15 (3): 327. https://doi.org/10.3390/diagnostics15030327
- Kario K, Williams B, Tomitani N, McManus RJ, Schutte AE, Avolio A, Shimbo D, Wang JG, Khan NA, Picone DS, Tan I, Charlton PH, Satoh M, Mmopi KN, Lopez-Lopez JP, Bothe TL, Bianchini E, Bhandari B, Lopez-Rivera J, Charchar FJ, Tomaszewski M, Stergiou G. Innovations in blood pressure measurement and reporting technology: International Society of Hypertension position paper endorsed by the World Hypertension League, European Society of Hypertension, Asian Pacific Society of Hypertension, and Latin American Society of Hypertension. J Hypertens 2024; 42 (11): 1874-1888. https://doi.org/10.1097/HJH.0000000000003827
- Nichols W, O’Rourke M, Vlachopoulos C. McDonald’s blood flow in arteries: theoretical, experimental and clinical principles. CRC Press 2011. https://doi.org/10.1201/b13568
- Baruch MC, Warburton DE, Bredin SS, Cote A, Gerdt DW, Adkins CM. Pulse Decomposition Analysis of the digital arterial pulse during hemorrhage simulation. Nonlinear Biomed Phys 2011; 5 (1): 1. https://doi.org/10.1186/1753-4631-5-1
- Stergiou GS, Mukkamala R, Avolio A, Kyriakoulis KG, Mieke S, Murray A, Parati G, Schutte AE, Sharman JE, Asmar R, McManus RJ, Asayama K, De La Sierra A, Head G, Kario K, Kollias A, Myers M, Niiranen T, Ohkubo T, Wang J, Wuerzner G, O’Brien E, Kreutz R, Palatini P. Cuffless blood pressure measuring devices: review and statement by the European Society of Hypertension Working Group on Blood Pressure Monitoring and Cardiovascular Variability. Journal of Hypertension 2022; 40: 1449-1460. https://doi.org/10.1097/HJH.0000000000003224
- Cornelissen G, Siegelova J, Otsuka K, Gubin D, Nolley E, Adams C, Sackett-Lundeen L, Turner AC, Beaty LA. Cuffless blood pressure monitoring devices for chronobiologic applications. In: Noninvasive Methods in Cardiology. Cornelissen G, Siegelova J, Dobsak P (Eds.) Masaryk University, Brno, Czech Republic 2022; 39-47.
- Roth B, Bothe TL, Patzak A, Pilz N. Validation of the ABPMpro ambulatory blood pressure monitor in the general population according to AAMI/ESH/ISO Universal Standard (ISO 81060-2:2018). Blood Press Monit 2023; 28 (3): 158-162. https://doi.org/10.1097/MBP.0000000000000640
- Halberg F, Bakken E, Cornelissen G, Halberg J, Halberg E, Delmore P. Blood pressure assessment in a broad chronobiologic perspective. In: Heart & Brain, Brain & Heart, Refsum H., Sulg J.A., Rasmussen K. (Eds.), Springer-Verlag, Berlin, 1989, pp. 142-162. https://doi.org/10.1007/978-3-642-83456-1_11
- Cornelissen G, Haus E, Halberg F. Chronobiologic blood pressure assessment from womb to tomb. In: Touitou Y., Haus E. (eds.): Biologic Rhythms in Clinical and Laboratory Medicine, Springer-Verlag, Berlin, 1992, pp. 428-452. https://doi.org/10.1007/978-3-642-78734-8_32
- Cornelissen G, Siegelova J, Watanabe Y, Otsuka K, Halberg F. Chronobiologically-interpreted ABPM reveals another vascular variability anomaly (VVA): excessive pulse pressure product (PPP): updated conference report. World Heart J 2012; 4 (4): 237-245.
- Cornelissen G, Halberg F, Otsuka K, Singh RB, Chen CH. Chronobiology predicts actual and proxy outcomes when dipping fails. Hypertension 2007; 49: 237-239. https://doi.org/10.1161/01.HYP.0000250392.51418.64
- Halberg F, Powell D, Otsuka K, Watanabe Y, Beaty LA, Rosch P, Czaplicki J, Hillman D, Schwartzkopff O, Cornelissen G. Diagnosing vascular variability anomalies, not only MESOR-hypertension. Am J Physiol Heart Circ Physiol 2013; 305: H279-H294. https://doi.org/10.1152/ajpheart.00212.2013
- Cornelissen G. Cosinor-based rhythmometry. Theor Biol Med Model 2014; 11: 16. https://doi.org/10.1186/1742-4682-11-16
- Bothe TL, Kreutz R, Glos M, Patzak A, Pilz N. Simultaneous 24-h ambulatory blood pressure measurement on both arms: a consideration for improving hypertension management. J Hypertens 2024; 42 (5): 828-840. https://doi.org/10.1097/HJH.0000000000003632
- Duprez DA, Jacobs DR Jr, Andrews LIB, Brumback LC, Denenberg JO, Mcclelland RL, Thomas IC, Criqui MH, Allison MA. Inter-arm systolic blood pressure difference: non-persistence and association with incident cardiovascular disease in the Multi-ethnic Study of Atherosclerosis. J Hum Hypertens 2023; 37 (3): 197-204. https://doi.org/10.1038/s41371-022-00669-x
- Finkelstein SM, Cohn JN. First- and third-order models for determining arterial compliance. J Hypertens 1992; 10 (Suppl 6): S11-S14. https://doi.org/10.1097/00004872-199208001-00004
- Grey E, Bratteli C, Glasser SP, Alinder C, Finkelstein SM, Lindgren BR, Cohn JN. Reduced small artery but not large artery elasticity is an independent risk marker for cardiovascular events. Am J Hypertens 2003; 16 (4): 265-269. https://doi.org/10.1016/S0895-7061(02)03271-5
- Cornelissen G, Bratteli C, Alinder C, Katinas G, Rawson MJ, Cohn J, Halberg F. About-daily and about-weekly hemodynamic variations, including small- and large-artery compliance. Proceedings, International Conference on the Frontiers of Biomedical Science: Chronobiology, Chengdu, China, September 24-26, 2006, pp. 114-118.
- Cornelissen G, Gierke CL, Havelkova A, Dusek J, Siegelova J. Day-to-day variability of circadian characteristics of systolic blood pressure and effect of exercise. In: Kenner T, Cornélissen G, Siegelova J, Dobsak P. (Eds.) Noninvasive Methods of Cardiology. Masaryk University, Brno, Czech Republic 2014; 25-32.
- Halberg F, Cornelissen G, Otsuka K, Siegelova J, Fiser B, Dusek J, Homolka P, Sanchez de la Pena S, Singh RB, BIOCOS project. Extended consensus on means and need to detect vascular variability disorders (VVDs) and vascular variability syndromes (VVSs). World Heart J 2010; 2 (4): 279-305.
- Wittmann M, Dinich J, Merrow M, Roenneberg T. Social jetlag: Misalignment of biological and social time. Chronobiol Int 2006; 23: 497-509. https://doi.org/10.1080/07420520500545979
- Mancia G, Facchetti R, Bombelli M, Quarti-Trevano F, Cuspidi C, Grassi G. Short- and long-term reproducibility of nighttime blood pressure phenotypes and nocturnal blood pressure reduction. Hypertension 2021; 77 (5): 1745-1755. https://doi.org/10.1161/HYPERTENSIONAHA.120.16827
- Sackett Lundeen L, Otsuka K, Havelkova A, Siegelova J, Beaty LA, Cornelissen G. From selfsurveillance in schools and monitoring in the experimental laboratory to vascular variability disorders. World Heart Journal 2021; 13 (1): 25-27.
- Cornelissen G, Hirota T. (Eds.) Chronobiology and Chronomedicine. From Molecular and Cellular Mechanisms to Whole Body Interdigitating Networks. Royal Society of Chemistry 2024; 716 pages. https://doi.org/10.1039/9781839167553