Key result
Automated analysis enables simultaneous quantification of infarct size, scar collagen, and remote fibrosis in mice.
Why the study?
The lack of a standard operation procedure for calculating infarct size in myocardial tissue leads to increased error and poor correlation between results, hindering therapeutic development.
A novel automated methodology enables standardized, simultaneous calculation of infarct size and fibrosis parameters in preclinical myocardial infarction models.
Inconsistent infarct sizing inflates histological variability in MI studies; leaves open consensus SOPs to improve reliability and therapeutic translation.
Myocardial infarction represents the most investigated pathology. Heart tissues are histologically assayed on a routine base in clinical laboratories. However, the lack of a standard operation procedure for e.g. calculating the size of the infarcted area of myocardium, may lead to an increased errors' interval, with little correlation between results of a same tissue and/or with other pathophysiological parameters. This creates a clear barrier for further development of novel therapeutic strategies. In the present study, we present the robust applicability of a novel methodology such as: advanced modular automated calculation of (i) the size of infarcted heart of mice, (ii) the net collagen content present in the scar, and (iii) the interstitial fibrosis in remote, which are simultaneously performed. The new approach of defining the infarct size, one of the important predictor of every cardiac therapeutic intervention, will create a positive impact in the research accuracy. Additionally, it will be expected that the readily assembled reports of simultaneously computed parameters and its user-friendly operation allow an efficient and effective estimation of measurements.
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Pop-Fele et al. (2016) studied Myocardial infarction. Advanced modular automated calculation methodology was evaluated on Size of infarcted heart, net collagen content, and interstitial fibrosis. An advanced modular automated calculation methodology allows for the simultaneous and robust computation of infarct size, scar collagen content, and remote interstitial fibrosis in mice.
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