Integrative Models for Understanding the Structural Basis of Regional Mechanical Dysfunction in Ischemic Myocardium

被引:0
作者
Reza Mazhari
Andrew D. McCulloch
机构
[1] University of California,Department of Bioengineering, The Whitaker Institute for Biomedical Engineering
来源
Annals of Biomedical Engineering | 2000年 / 28卷
关键词
Stunned myocardium; Finite-element model; Diastolic properties; Functional border zone; Transmural function; Regional blood flow;
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学科分类号
摘要
Myocardial ischemia and many other cardiac pathologies are associated with regional ventricular dysfunction. Since the distributions of stress and material properties cannot be measured directly in intact myocardium, understanding how regional alterations in myocardial strain or segment function are related to underlying cellular dysfunction must be deduced from theoretical models. Here, we describe how anatomically detailed, three-dimensional computational models can be used in conjunction with experimental or clinical studies to elucidate the structural basis of regional dysfunction in acutely ischemic and ischemic-reperfused (“stunned”) myocardium in vivo. Integrative experimental and computational analysis shows that: (1) in acutely ischemic myocardium, the transition from abnormal systolic strain in the ischemic region to normal shortening in adjacent, normally perfused tissue is governed primarily by systolic blood pressure and regional fiber orientation rather than the geometry of the perfusion boundary; and (2) in stunned myocardium, the degree of reperfusion injury to the contractile apparatus may be uniform across the wall thickness despite observations that the extent of ischemia and the impairment of regional strain during reperfusion are both significantly greater in the subendocardium. © 2000 Biomedical Engineering Society.
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页码:979 / 990
页数:11
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共 323 条
[1]  
Allen D. G.(1987)Myocardial contractile func-tion during ischemia and hypoxia Circ. Res. 60 153-168
[2]  
Orchard C. H.(1999)Myocardial ischaemia and the cardiac nervous system Cardiovasc. Res. 41 41-54
[3]  
Armour A. J.(1980)An analysis of the mechanical disadvantage of myocardial infarction in the canine left ven-tricle Circ. Res. 47 728-741
[4]  
Bogen D. K.(1990)Mechanism of myocardial “stunning.” Circulation 82 723-738
[5]  
Rabinowitz S. A.(1989)Nonuniform transmural recovery of contractile function in stunned myocardium Am. J. Physiol. 257 H375-H385
[6]  
Needleman A.(1988)Time course and determinants of recovery function after reversible ischemia in conscious dogs Am. J. Physiol. 254 H102-H114
[7]  
Mc-Mahon T. A.(1996)the ischemic left ventricle: Numerical modeling and dog experiments Am. J. Physiol. 270 H398-H410
[8]  
Abelmann W. H.(1997)Geometric modeling of the human torso using cubic Hermite elements Ann. Biomed. Eng. 25 96-111
[9]  
Bolli R.(1982)The stunned myocardium: Prolonged, postischemic ventricular dysfunction Circulation 66 1146-1149
[10]  
Bolli R.(1988)Coronary pressure–function and steady-state pressure–flow relations during autoregulation in the unanesthetized dog Circ. Res. 63 821-36