Arterial Properties as Determinants of Time-Varying Myocardial Stress in Humans

被引:64
作者
Chirinos, Julio A. [1 ]
Segers, Patrick [2 ]
Gillebert, Thierry C. [3 ]
Gupta, Amit K. [5 ]
De Buyzere, Marc L. [3 ]
De Bacquer, Dirk [4 ]
St John-Sutton, Martin [1 ]
Rietzschel, Ernst R. [3 ,4 ]
机构
[1] Univ Penn, Philadelphia Vet Affairs Med Ctr, Philadelphia, PA 19104 USA
[2] Ghent Univ Hosp, Inst Biomed Technol, Ghent, Belgium
[3] Ghent Univ Hosp, Dept Cardiovasc Dis, Ghent, Belgium
[4] Ghent Univ Hosp, Dept Publ Hlth, Ghent, Belgium
[5] Baylor Coll Med, Houston, TX 77030 USA
基金
美国国家卫生研究院;
关键词
myocardial stress; arterial load; afterload; wave reflections; sex differences; LEFT-VENTRICULAR HYPERTROPHY; SYSTOLIC PRESSURE; WAVE REFLECTION; HEART-FAILURE; IMPEDANCE; VOLUME;
D O I
10.1161/HYPERTENSIONAHA.112.190710
中图分类号
R6 [外科学];
学科分类号
1002 ; 100210 ;
摘要
Myocardial and arterial load are time-varying phenomena. Despite their importance in myocardial function, the arterial properties that determine time-resolved myocardial wall stress are unknown. We aimed to assess arterial properties as determinants of time-resolved myocardial stress among 1214 men and women enrolled in the Asklepios Study. Time-resolved central pressure, flow, and left ventricular geometry were measured with carotid tonometry, Doppler, and speckle-tracking echocardiography, respectively, for computation of arterial load and ejection-phase time-varying myocardial wall stress. For any given end-diastolic left ventricular geometry and cardiac output, peak myocardial stress correlated directly with systemic vascular resistance (standardized beta=1.12; P<0.0001) and aortic characteristic impedance (standardized beta=0.17; P<0.0001). The ejection-phase stress-time integral correlated with systemic vascular resistance (standardized beta=1.06; P<0.0001), lower total arterial compliance (standardized beta=-0.13; P=0.0008), and earlier return of wave reflections (standardized beta=-0.10; P<0.0001) but not with reflection magnitude, whereas end-systolic wall stress correlated with systemic vascular resistance (standardized beta=1.06; P<0.0001) and reflection magnitude (standardized beta=0.12; P<0.0001). After adjustment for age, all of the measured arterial properties, end-diastolic left ventricular geometry, and cardiac output, women demonstrated greater peak (534 versus 507 kdyne/cm(2); P<0.0001), end-systolic (335 versus 320 kdyne/cm(2); P<0.0001), and ejection-phase stress-time integral (157 versus 142 kdyne . s . cm(-2); P<0.0001). In conclusion, different arterial properties have selective effects on time-resolved ejection-phase myocardial wall stress, which are not apparent from single-time point measurements. Women demonstrate less efficient myocardial-arterial coupling, with higher wall stress development for any given left ventricular geometry, arterial properties, and flow output. These observations may relate to the differential susceptibility of women to heart failure. (Hypertension. 2012;60:64-70.). Online Data Supplement
引用
收藏
页码:64 / 70
页数:7
相关论文
共 16 条
[1]   RELATION BETWEEN LEFT-VENTRICULAR CAVITY PRESSURE AND VOLUME AND SYSTOLIC FIBER STRESS AND STRAIN IN THE WALL [J].
ARTS, T ;
BOVENDEERD, PHM ;
PRINZEN, FW ;
RENEMAN, RS .
BIOPHYSICAL JOURNAL, 1991, 59 (01) :93-102
[2]   Noninvasive Evaluation of Left Ventricular Afterload Part 2: Arterial Pressure-Flow and Pressure-Volume Relations in Humans [J].
Chirinos, Julio A. ;
Segers, Patrick .
HYPERTENSION, 2010, 56 (04) :563-570
[3]   Time-Varying Myocardial Stress and Systolic Pressure-Stress Relationship Role in Myocardial-Arterial Coupling in Hypertension [J].
Chirinos, Julio A. ;
Segers, Patrick ;
Gupta, Amit Kumar ;
Swillens, Abigail ;
Rietzschel, Ernst R. ;
De Buyzere, Marc L. ;
Kirkpatrick, James N. ;
Gillebert, Thierry C. ;
Wang, Yan ;
Keane, Martin G. ;
Townsend, Raymond ;
Ferrari, Victor A. ;
Wiegers, Susan E. ;
Sutton, Martin St John .
CIRCULATION, 2009, 119 (21) :2798-U100
[4]   INFLUENCE OF SYSTOLIC PRESSURE PROFILE ON RATE OF LEFT-VENTRICULAR PRESSURE FALL [J].
GILLEBERT, TC ;
LEW, WYW .
AMERICAN JOURNAL OF PHYSIOLOGY, 1991, 261 (03) :H805-H813
[5]   Enhanced radial late systolic pressure augmentation in hypertensive patients with left ventricular hypertrophy [J].
Hashimoto, J ;
Watabe, D ;
Hatanaka, R ;
Hanasawa, T ;
Metoki, H ;
Asayama, K ;
Ohkubo, T ;
Totsune, K ;
Imai, Y .
AMERICAN JOURNAL OF HYPERTENSION, 2006, 19 (01) :27-32
[6]   Different role of wave reflection magnitude and timing on left ventricular mass reduction during antihypertensive treatment [J].
Hashimoto, Junichiro ;
Westerhof, Berend E. ;
Westerhof, Nico ;
Imai, Yutaka ;
O'Rourke, Michael F. .
JOURNAL OF HYPERTENSION, 2008, 26 (05) :1017-1024
[7]   Combined ventricular systolic and arterial stiffening in patients with heart failure and preserved ejection fraction - Implications for systolic and diastolic reserve limitations [J].
Kawaguchi, M ;
Hay, I ;
Fetics, B ;
Kass, DA .
CIRCULATION, 2003, 107 (05) :714-720
[8]   Influence of aortic impedance on the development of pressure-overload left ventricular hypertrophy in rats [J].
Kobayashi, S ;
Yano, M ;
Kohno, M ;
Obayashi, M ;
Hisamatsu, Y ;
Ryoke, T ;
Ohkusa, T ;
Yamakawa, K ;
Matsuzaki, M .
CIRCULATION, 1996, 94 (12) :3362-3368
[9]   Change in aortic end-systolic pressure by alterations in loading sequence and its relation to left ventricular isovolumic relaxation [J].
Kohno, F ;
Kumada, T ;
Kambayashi, M ;
Hayashida, W ;
Ishikawa, N ;
Sasayama, S .
CIRCULATION, 1996, 93 (11) :2080-2087
[10]  
Little WC, 2001, BRAUNWALDS HEART DIS