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

Current Medical Science ›› 2010, Vol. 30 ›› Issue (5) : 672-677.

Current Medical Science ›› 2010, Vol. 30 ›› Issue (5) : 672-677. DOI: 10.1007/s11596-010-0563-9
Article

Wave intensity analysis of carotid artery: A noninvasive technique for assessing hemodynamic changes of hyperthyroid patients

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Abstract

This study examined the wave intensity (WI) of the carotid artery in patients with hyperthyroid in order to assess the hemodynamic changes of hyperthyroid patients. A total of 86 hyperthyroid patients without cardiac morphological changes and arrhythmia, and 80 healthy control subjects were enrolled in the study. Right common carotid artery (RCCA) was selected for ultrasonic imaging to obtain WI indices, including amplitude of the peak during early systole (W1), amplitude of the peak during late systole (W2), area of the negative wave during mid-systole (NA), interval between R wave of electrocardiogram and W1 (R-1st), interval between W1 and W2 (1st-2nd). The levels of serum thyroid hormones, consisting of free triiodothyronine (FT3), free thyroxin (FT4) and thyroid stimulating hormone (TSH), were measured in hyperthyroid patients. Echocardiographic indices including left ventricular ejection fraction (LVEF) and left ventricular fraction shortening (LVFS) were determined in each subject. The results showed that the W1, W2, NA, and (1st-2nd×HR) in hyperthyroid patients were significantly higher than those in healthy controls. There was no significant difference in LVEF and LVFS between the two groups. FT3 was correlated with W1, W2, NA, (1st-2nd×HR), pulse pressure (PP) and heart rate (HR) in hyperthyroid patients. Several abnormal waves on WI curves were present in 19 hyperthyroid patients during mid-systole. It was concluded that WI technique may prove a real-time, noninvasive, sensitive and convenient tool for assessing the cardiac function and hemodynamic alterations in hyperthyroid patients.

Keywords

hyperthyroidism / wave intensity / hemodynamic / echo-tracking

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Yanrong Zhang, Manwei Liu, Meiling Wang, Li Zhang, Qing Lv, Mingxing Xie, Feixiang Xiang, Qian Fu, Yehua Yin, Chengfa Lu, Tianwei Yan, Yan Huang. Wave intensity analysis of carotid artery: A noninvasive technique for assessing hemodynamic changes of hyperthyroid patients. Current Medical Science, 2010, 30(5): 672‒677 https://doi.org/10.1007/s11596-010-0563-9

References

[1]
KleinI., OjamaaK.. Thyroid hormone and the cardiovascular system. N Engl J Med, 2001, 344(7): 501-509
CrossRef Google scholar
[2]
DillmannW.H.. Cellular action of thyroid hormone on the heart. Thyroid, 2002, 12(6): 447-452
CrossRef Google scholar
[3]
DanziS., KleinI.. Thyroid hormone and the cardiovascular system. Minerva Endocrinol, 2004, 29(3): 139-150
[4]
KleinI., DanziS.. Thyroid disease and the heart. Circulation, 2007, 116(15): 1725-1735
CrossRef Google scholar
[5]
MercéJ., FerrásS., OltraC., et al.. Cardiovascular abnormalities in hyperthyroidism: A prospective Doppler echocardiographic study. Am J Med, 2005, 118(2): 126-131
CrossRef Google scholar
[6]
OsmanF., FranklynJ.A., HolderR.L., et al.. Cardiovascular manifestations of hyperthyroidism before and after antithyroid therapy: A matched case-control study. J Am Coll Cardiol, 2007, 49(1): 71-81
CrossRef Google scholar
[7]
ParkerK.H., JonesC.J.H.. Forward and backward running waves in the arteries: Analysis using the method of characteristics. J Biomech Eng, 1990, 112(3): 322-326
CrossRef Google scholar
[8]
ParkerK.H., JonesC.J.H., DawsonJ.R., et al.. What stops the flow of blood from the heart?. Heart Vessels, 1988, 4(4): 241-245
CrossRef Google scholar
[9]
JonesC.J.H., SugawaraM., DaviesR.H., et al.. HosodaS., YaginumaT., SugawaraM., et al.. Arterial wave intensity: Physical meaning and physiological significance. Recent progress in cardiovascular mechanics, 1994, Harwood, Chur, 129-148
[10]
SugawaraM., KondohY., UchidaK., et al.. Wave intensity: A new index of ventriculoareterial interaction. BioMed Eng, 1995, 9: 22-27
[11]
BarnettG.O., MallosA.J., ShapiroA.. Relationship of aortic pressure and diameter in the dog. J Appl Pysiol, 1961, 16: 545-548
[12]
PatalD.J., de FreitasF.M., GreenfieldJ.C.Jr, et al.. Relationship of radius to pressure along the aorta in living dogs. J Appl Physiol, 1963, 18: 1111-1117
[13]
SugawaraM., NikiK., FuruhataH., et al.. Relationship between the pressure and diameter of the carotid artery in humans. Heart Vessels, 2000, 15(1): 49-51
CrossRef Google scholar
[14]
NikiK., SugawaraM., UchidaK., et al.. A noninvasive method of measuring wave intensity, a new hemodynamic index: Application to the carotid artery in patients with mitral regurgitation before and after surgery. Heart Vessels, 1999, 14(6): 263-271
[15]
Harada A, Okada T, Sugawara M, et al. Development of a non-invasive real-time measurement system of wave intensity. IEEE Ultrason Symp, 2000:1517–1520
[16]
OhteN., NaritaH., SugawaraM., et al.. Clinical usefulness of carotid arterial wave intensity in assessing left ventricular systolic and early diastolic performance. Heart Vessels, 2003, 18(3): 107-111
CrossRef Google scholar
[17]
NikiK., SugawaraM., ChangD., et al.. A new noninvasive measurement system for wave intensity: evaluation of carotid arterial wave intensity and reproducibility. Heart Vessels, 2002, 17(1): 12-21
CrossRef Google scholar
[18]
PalomboC., MalshiE., MorizzoC., et al.. Arterial wave reflection during antihypertensive therapy with barnidipine: A 6-month, open-label study using an integrated cardiovascular ultrasound approach in patients with newly diagnosed hypertension. Clin Ther, 2009, 31(12): 2873-2885
CrossRef Google scholar
[19]
NikiK., SugawaraM., ChangD., et al.. Effects of sublingual nitroglycerin on working conditions of the heart and arterial system: Analysis using wave intensity. J Med Ultrasonics, 2005, 32(4): 145-152
CrossRef Google scholar
[20]
TanakaM., SugawaraM., NikiK., et al.. Comparison of two ultrasonic methods of one-point measurement of pulse wave velocity—Where to set the echo-tracking positions, in the adventitia or intima?. IFMBE Proc, 2009, 25(4): 518-520
CrossRef Google scholar
[21]
SugawaraM.. Wave intensity analysis: A new method for the dynamic study of heart-vessel interactions. Med Biol Eng Comput, 1999, 37(Suppl): 24-27
[22]
JonesC.J.H., SugawaraM., KondohY., et al.. Compression and expansion wavefront travel in canine ascending aortic flow: Wave intensity analysis. Heart Vessels, 2002, 16(3): 91-98
CrossRef Google scholar
[23]
NobleM.I.M.. The contribution of blood momentum to left ventricular ejection in the dog. Circ Res, 1968, 23: 663-670

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