Noninvasive Methods in Cardiology 2024

Kapitola

Abstrakt

The Ambulatory Arterial Stiffness Index (AASI) was introduced as an easily implemented way to non-invasively assess arterial stiffness from 24-hour ambulatory blood pressure monitoring (ABPM) records. After a brief review of the literature, this investigation considers ABPM records from two clinically healthy populations to compute the AASI and assess its major determinants. The 7-day/24-hour ABPM records collected in one of the two studies served to determine the extent of day-to-day variability in the AASI estimation. In the other study, age, body mass index (BMI), systolic (S) BP MESOR, and pulse pressure (PP) correlated positively with AASI, while the magnitude (extent of predictable daily change) of SBP and the 24-hour amplitude of diastolic (D) BP correlated negatively with AASI. Although AASI computed on separate days correlates well with its value estimated from the entire 7-day record, the day-to-day variation in its estimate is quite large. The relatively large difference in estimated average AASI between the two studies, which included seemingly similar populations, can be accounted for by taking into consideration the small differences in all determinants of the AASI existing between the two samples. Novel findings from this investigation are the effect on AASI of (1) a misaligned circadian BP rhythm, and of (2) a sparser nighttime vs. daytime sampling.

Klíčová slova

Arterial Stiffness Index, Ambulatory, Blood Pressure Rhythm


Reference

  1. Di Raimondo D, Casuccio A, Di Liberti R, Musiari G, Zappulla V, D’Angelo A, Pinto A. Ambulatory Arterial Stiffness Index (AASI) is unable to estimate arterial stiffness of hypertensive subjects: Role of nocturnal dipping of blood pressure. Current Hypertension Reviews 2017; 13 (2): 121-131. https://doi.org/10.2174/1573402113666170621110305
  2. Dolan E, Li Y, Thijs L, McCormack P, Staessen JA, O’Brien E, Stanton A. Ambulatory arterial stiffness index: rationale and methodology. Blood Pressure Monitoring 2006; 11 (2): 103-105. https://doi.org/10.1097/01.mbp.0000200478.19046.dd
  3. Li Y, Wang JG, Dolan E, Gao PJ, Guo HF, Nawrot T, Stanton AV, Zhu DL, O’Brien E, Staessen JA. Ambulatory arterial stiffness index derived from 24-hour ambulatory blood pressure monitoring. Hypertension 2006; 47 (3): 359-364. https://doi.org/10.1161/01.HYP.0000200695.34024.4c
  4. Dolan E, Thijs L, Li Y, Atkins N, McCormack P, McClory S, O’Brien E, Staessen JA, Stanton AV. Ambulatory arterial stiffness index as a predictor of cardiovascular mortality in the Dublin Outcome Study. Hypertension 2006; 47 (3): 365-370. https://doi.org/10.1161/01.HYP.0000200699.74641.c5
  5. Adiyaman A, Dechering DG, Boggia J, Li Y, Hansen TW, Kikuya M, Bjorklund-Bodegard K, Richart T, Thijs L, Torp-Pedersen C, Ohkubo T, Dolan E, Imai Y, Sandoya E, Ibsen H, Wang J, Lind L, O’Brien E, Thien T, Staessen JA. Determinants of the ambulatory arterial stiffness index in 7604 subjects from 6 populations. Hypertension 2008; 52 (6): 1038-1044. https://doi.org/10.1161/HYPERTENSIONAHA.108.119511
  6. Kikuya M, Staessen JA, Ohkubo T, Thijs L, Asayama K, Satoh M, Hashimoto T, Hirose T, Metoki H, Obara T, Inoue R, Li Y, Dolan E, Hoshi H, Totsune K, Satoh H, Wang JG, O’Brien E, Imai Y. How many measurements are needed to provide reliable information in terms of the ambulatory arterial stiffness index? The Ohasama study. Hypertension Research - Clinical & Experimental 2011; 34 (3): 314-318. https://doi.org/10.1038/hr.2010.240
  7. Kikuya M, Staessen JA, Ohkubo T, Thijs L, Metoki H, Asayama K, Obara T, Inoue R, Li Y, Dolan E, Hoshi H, Hashimoto J, Totsune K, Satoh H, Wang JG, O’Brien E, Imai Y. Ambulatory arterial stiffness index and 24-hour ambulatory pulse pressure as predictors of mortality in Ohasama, Japan. Stroke 2007; 38 (4): 1161-1166. https://doi.org/10.1161/01.STR.0000259604.67283.69
  8. Hansen TW, Staessen JA, Torp-Pedersen C, Rasmussen S, Li Y, Dolan E, Thijs L, Wang JG, O’Brien E, Ibsen H, Jeppesen J. Ambulatory arterial stiffness index predicts stroke in a general population. Journal of Hypertension 2006; 24 (11): 2247-2253. https://doi.org/10.1097/01.hjh.0000249703.57478.78
  9. Hansen TW, Li Y, Staessen JA, Jeppesen J, Rasmussen S, Wang JG, Thijs L, Ibsen H, Safar ME, Torp-Pedersen C. Independent prognostic value of the ambulatory arterial stiffness index and aortic pulse wave velocity in a general population. Journal of Human Hypertension 2008; 22 (3): 214-216. https://doi.org/10.1038/sj.jhh.1002295
  10. Boos CJ, Hein A, Khattab A. Ambulatory arterial stiffness index, mortality, and adverse cardiovascular outcomes; Systematic review and meta-analysis. Journal of Clinical Hypertension 2024; 26 (2): 89-101. https://doi.org/10.1111/jch.14755
  11. Boos CJ, Thiri-Toon L, Steadman CD, Khambekar S, Jordan A, Carpenter JP. The relationship between ambulatory arterial stiffness index and cardiovascular outcomes in women. Cardiology Research 2021; 12 (3): 161-168. https://doi.org/10.14740/cr1189
  12. Bastos JM, Bertoquini S, Polonia J. Prognostic significance of ambulatory arterial stiffness index in hypertensives followed for 8.2 years: its relation with new events and cardiovascular risk estimation. Revista Portuguesa de Cardiologia 2010; 29 (9): 1287-1303. https://doi.org/10.1097/00004872-201106001-00203
  13. Leoncini G, Ratto E, Viazzi F, Vaccaro V, Parodi A, Falqui V, Conti N, Tomolillo C, Deferrari G, Pontremoli R. Increased ambulatory arterial stiffness index is associated with target organ damage in primary hypertension. Hypertension 2006; 48 (3): 397-403. https://doi.org/10.1161/01.HYP.0000236599.91051.1e
  14. Garcia-Garcia A, Gomez-Marcos MA, Recio-Rodriguez JI, Gonzalez-Elena LJ, Parra-Sanchez J, Fe Munoz-Moreno M, Alonso CP, Gude F, Garcia-Ortiz L. Relationship between ambulatory arterial stiffness index and subclinical target organ damage in hypertensive patients. Hypertension Research - Clinical & Experimental 2011; 34 (2): 180-186. https://doi.org/10.1038/hr.2010.195
  15. Lee HT, Lim YH, Kim BK, Lee KW, Lee JU, Kim KS, Kim SG, Kim JH, Lim HK, Shin J, Kim YM. The relationship between ambulatory arterial stiffness index and blood pressure variability in hypertensive patients. Korean Circulation Journal 2011; 41 (5): 235-240. https://doi.org/10.4070/kcj.2011.41.5.235
  16. Qin T, Jiang H, Jiao Y, Ke Y, Sun N, Wang J, Zhu J. Ambulatory arterial stiffness index correlates with ambulatory pulse pressure but not dipping status in patients with grade 1/grade 2 essential hypertension. Journal of International Medical Research 2014; 42 (6): 1323-1334. https://doi.org/10.1177/0300060514548288
  17. Schillaci G, Parati G, Pirro M, Pucci G, Mannarino MR, Sperandini L, Mannarino E. Ambulatory arterial stiffness index is not a specific marker of reduced arterial compliance. Hypertension 2007; 49 (5): 986-991. https://doi.org/10.1161/HYPERTENSIONAHA.106.082248
  18. Zhang H, Cheng Y, Zhang T, Huang Q, Huang L, Shen B. Mean value of pulse pressure: The key feature in ambulatory arterial stiffness index estimation using regression models. Medical Engineering & Physics 2023; 122: 104073. https://doi.org/10.1016/j.medengphy.2023.104073
  19. Efe FK, Tek M. Increased ambulatory arterial stiffness index and blood pressure load in normotensive obese patients. African Health Sciences 2021; 21 (3): 1185-1190. https://doi.org/10.4314/ahs.v21i3.27
  20. Vincenti M, von Vigier RO, Wuhl E, Mohaupt MG, Simonetti GD. The ambulatory arterial stiffness index is not affected by night-time blood pressure characteristics. Journal of Human Hypertension 2009; 23 (10): 680-682. https://doi.org/10.1038/jhh.2009.25
  21. Ben-Dov IZ, Gavish B, Kark JD, Mekler J, Bursztyn M. A modified ambulatory arterial stiffness index is independently associated with all-cause mortality. Journal of Human Hypertension 2008; 22 (11): 761-766. https://doi.org/10.1038/jhh.2008.50
  22. Kips JG, Vermeersch SJ, Reymond P, Boutouyrie P, Stergiopulos N, Laurent S, Van Bortel LM, Segers P. Ambulatory arterial stiffness index does not accurately assess arterial stiffness. Journal of Hypertension 2012; 30 (3): 574-580. https://doi.org/10.1097/HJH.0b013e32834fca18
  23. Craiem D, Graf S, Salvucci F, Chironi G, Megnien JL, Simon A, Armentano RL. The physiological impact of the nonlinearity of arterial elasticity in the ambulatory arterial stiffness index. Physiological Measurement 2010; 31 (7): 1037-1046. https://doi.org/10.1088/0967-3334/31/7/012
  24. Abramson JL, Lewis C, Murrah NV, Anderson GT, Vaccarino V. Relation of C-reactive protein and tumor necrosis factor-alpha to ambulatory blood pressure variability in healthy adults. Am J Cardiol 2006; 98 (5): 649-652. https://doi.org/10.1016/j.amjcard.2006.03.045
  25. Abramson J, Cornelissen G, Mandel J, Halberg F. Blood pressure overswinging, CHAT, found by 24-hour monitoring, needs validation by follow-up. Proceedings, International Conference on the Frontiers of Biomedical Science: Chronobiology, Chengdu, China, September 24-26, 2006, pp. 43-45.
  26. Cornelissen G, Siegelova J, Fiser B, Abramson J, Sundaram B, Mandel J, Holley D, Halberg F. Premetabolic syndrome, body mass index and pulse pressure. Scripta medica (Brno) 2008; 81 (3): 159-164.
  27. Havelkova A, Dvorak P, Siegelova J, Dobsak P, Filipensky P, Cornelissen G. Possibilities of interpreting the night-to-day ratio specified by 24-hour blood pressure monitoring. International Journal of Clinical Practice 2023; 2023: 6530295. https://doi.org/10.1155/2023/6530295
  28. Cornelissen G, Siegelova J, Havelkova A, Dunklerova L, Dusek J. Changes with age in the time structure of blood pressure. World Heart J 2016; 8 (2): 141-156.
  29. Bingham C, Arbogast B, Cornelissen Guillaume G, Lee JK, Halberg F. Inferential statistical methods for estimating and comparing cosinor parameters. Chronobiologia 1982; 9: 397-439.
  30. Cornelissen G. Cosinor-based rhythmometry. Theoretical Biology and Medical Modelling 2014; 11: 16. ttps://doi.org/10.1186/1742-4682-11-16
  31. 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.
  32. Dechering DG, van der Steen MS, Adiyaman A, Thijs L, Deinum J, Li Y, Dolan E, Akkermans RP, Richart T, Hansen TW, Kikuya M, Wang J, O’brien E, Thien T, Staessen JA. Reproducibility of the ambulatory arterial stiffness index in hypertensive patients. Journal of Hypertension 2008; 26 (10): 1993-2000. https://doi.org/10.1097/HJH.0b013e328309ee4c
  33. Stergiou GS, Kollias A, Rarra VC, Roussias LG. Ambulatory arterial stiffness index: reproducibility of different definitions. American Journal of Hypertension 2010; 23 (2): 129-134. https://doi.org/10.1038/ajh.2009.217
  34. Laugesen E, Hansen KW, Knudsen ST, Erlandsen M, Ebbehoj E, Poulsen PL. Reproducibility of the ambulatory arterial stiffness index in patients with type 1 diabetes mellitus. Blood Pressure Monitoring 2010; 15 (1): 18-22. https://doi.org/10.1097/MBP.0b013e32833531f9
  35. Kollias A, Stergiou GS, Dolan E, O’Brien E. Ambulatory arterial stiffness index: a systematic review and meta-analysis. Atherosclerosis 2012; 224 (2): 291-301. https://doi.org/10.1016/j.atherosclerosis.2012.03.039
  36. Kollias A, Rarra V, Karpettas N, Roussias L, O’Brien E, Stergiou GS. Treatment-induced changes in ambulatory arterial stiffness index: one-year prospective study and meta-analysis of evidence. Hypertension Research - Clinical & Experimental 2015; 38 (9): 627-631. https://doi.org/10.1038/hr.2015.44