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Myocardial Infarction and Functional Outcome Assessment in Pigs
Published on: April 25, 2014
Myocardial ischaemia and post-systolic shortening
Toshihiko Asanuma1, Satoshi Nakatani2
1Department of Advanced Cardiovascular Therapeutics, Osaka University Graduate School of Medicine, Suita, Japan.
Insights
Post-systolic shortening (PSS) detected by echocardiography offers a superior method for identifying myocardial ischemia and diagnosing coronary artery disease. This technique aids in recognizing past ischemic events and holds potential for future imaging applications.
Area of Science:
- Cardiology
- Medical Imaging
- Physiology
Background:
- Regional wall motion assessment is crucial for identifying myocardial ischemia.
- Echocardiography is widely used, but visual assessment can be subjective.
- Quantitative methods like tissue Doppler and speckle tracking improve accuracy.
Purpose of the Study:
- To review the diagnostic utility of post-systolic shortening (PSS) in acute ischemia and ischemic memory.
- To highlight PSS's advantages over conventional echocardiographic parameters.
- To discuss challenges for widespread PSS adoption in echocardiography.
Main Methods:
- Review of experimental and clinical studies on PSS.
- Comparison of PSS with wall thickening and peak systolic strain.
- Analysis of PSS in the context of acute ischemia and recovery.
Main Results:
- Post-systolic shortening (PSS) is a sensitive marker for regional contractile dysfunction in ischemia.
- PSS detection is superior to conventional parameters for acute ischemia and coronary artery disease diagnosis.
- PSS persists after ischemia recovery, suggesting a role in 'ischemic memory' imaging.
Conclusions:
- PSS assessment is valuable for diagnosing acute ischemia and identifying ischemic memory.
- Quantitative echocardiography, particularly PSS, enhances the detection of subtle myocardial deformation.
- Further standardization is needed for routine clinical use of PSS in echocardiography.
Abstract:
The assessment of regional wall motion is useful to identify myocardial ischaemia because wall motion abnormalities occur relatively upstream in the ischaemic cascade. Echocardiography is widely used for this, but the subjectivity of visual observation may hamper accurate evaluation. The analysis of myocardial velocity and strain by tissue Doppler and speckle tracking echocardiography has allowed the quantitative assessment of regional wall motion and facilitated the detection of subtle myocardial deformation that is difficult to identify by conventional methods, such as post-systolic shortening (PSS). PSS is defined as myocardial shortening that occurs after end-systole (or aortic valve closure), and it is observed in the myocardium with regional contractile dysfunction. In experimental and clinical studies, it has been reported that the assessment of PSS is superior to that of conventional parameters such as wall thickening or peak systolic strain in detecting acute ischaemia and diagnosing coronary artery disease. Moreover, it has recently been found that PSS remains after recovery from brief ischaemia despite the rapid recovery of peak systolic strain. The assessment of PSS allows after-the-fact recognition of myocardial ischaemic insults and is expected to be used for ischaemic memory imaging. In this review, the usefulness of the assessment of PSS for the diagnosis of acute ischaemia and ischaemic memory is demonstrated, and issues that need to be resolved for the widespread use of this assessment in the echocardiographic laboratory are discussed.
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