Literature DB >> 32216614

Hemodynamic assessment of diastolic function for experimental models.

Leslie M Ogilvie1,2, Brittany A Edgett1,3,2, Jason S Huber1, Mathew J Platt1, Hermann J Eberl4, Sohrab Lutchmedial3,5, Keith R Brunt3,2, Jeremy A Simpson1,2.   

Abstract

Traditionally, the evaluation of cardiac function has focused on systolic function; however, there is a growing appreciation for the contribution of diastolic function to overall cardiac health. Given the emerging interest in evaluating diastolic function in all models of heart failure, there is a need for sensitivity, accuracy, and precision in the hemodynamic assessment of diastolic function. Hemodynamics measure cardiac pressures in vivo, offering a direct assessment of diastolic function. In this review, we summarize the underlying principles of diastolic function, dividing diastole into two phases: 1) relaxation and 2) filling. We identify parameters used to comprehensively evaluate diastolic function by hemodynamics, clarify how each parameter is obtained, and consider the advantages and limitations associated with each measure. We provide a summary of the sensitivity of each diastolic parameter to loading conditions. Furthermore, we discuss differences that can occur in the accuracy of diastolic and systolic indices when generated by automated software compared with custom software analysis and the magnitude each parameter is influenced during inspiration with healthy breathing and a mild breathing load, commonly expected in heart failure. Finally, we identify key variables to control (e.g., body temperature, anesthetic, sampling rate) when collecting hemodynamic data. This review provides fundamental knowledge for users to succeed in troubleshooting and guidelines for evaluating diastolic function by hemodynamics in experimental models of heart failure.

Entities:  

Keywords:  EDP; compliance; guidelines; respiratory; tau

Mesh:

Year:  2020        PMID: 32216614      PMCID: PMC7472516          DOI: 10.1152/ajpheart.00705.2019

Source DB:  PubMed          Journal:  Am J Physiol Heart Circ Physiol        ISSN: 0363-6135            Impact factor:   4.733


  89 in total

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3.  Hemodynamic determinants of the time-course of fall in canine left ventricular pressure.

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5.  Nonocclusive multivessel intracoronary infusion of allogeneic cardiosphere-derived cells early after reperfusion prevents remote zone myocyte loss and improves global left ventricular function in swine with myocardial infarction.

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Journal:  Am J Physiol Heart Circ Physiol       Date:  2019-05-24       Impact factor: 4.733

6.  Premature ventricular contractions activate vagal afferents and alter autonomic tone: implications for premature ventricular contraction-induced cardiomyopathy.

Authors:  Siamak Salavatian; Naoko Yamaguchi; Jonathan Hoang; Nicole Lin; Saloni Patel; Jeffrey L Ardell; J Andrew Armour; Marmar Vaseghi
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Authors:  Andrew J Foster; Mathew J Platt; Jason S Huber; Ashley L Eadie; Alicia M Arkell; Nadya Romanova; David C Wright; Todd E Gillis; Coral L Murrant; Keith R Brunt; Jeremy A Simpson
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8.  Left ventricular structure and diastolic function with human ageing. Relation to habitual exercise and arterial stiffness.

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9.  Inhibitor of lysyl oxidase improves cardiac function and the collagen/MMP profile in response to volume overload.

Authors:  Elia C El Hajj; Milad C El Hajj; Van K Ninh; Jason D Gardner
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10.  Pathophysiological Mapping of Experimental Heart Failure: Left and Right Ventricular Remodeling in Transverse Aortic Constriction Is Temporally, Kinetically and Structurally Distinct.

Authors:  Mathew J Platt; Jason S Huber; Nadya Romanova; Keith R Brunt; Jeremy A Simpson
Journal:  Front Physiol       Date:  2018-05-15       Impact factor: 4.566

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5.  An Evaluation of Cardiac Health in the Spontaneously Hypertensive Rat Colony: Implications of Evolutionary Driven Increases in Concentric Hypertrophy.

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7.  Effects of enriched-potassium diet on cardiorespiratory outcomes in experimental non-ischemic chronic heart failure.

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