Coronary circulatory indexes in non-infarct-related vascular territories in a porcine acute myocardial infarction model

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dc.contributor.authorS H Lee-
dc.contributor.authorH K Kim-
dc.contributor.authorJ M Lee-
dc.contributor.authorY J Hong-
dc.contributor.authorKyung Seob Lim-
dc.contributor.authorH B Kim-
dc.contributor.authorK H Choi-
dc.contributor.authorE S Shin-
dc.contributor.authorC W Mam-
dc.contributor.authorJ H Doh-
dc.contributor.authorJ H Yang-
dc.contributor.authorY B Song-
dc.contributor.authorJ Y Hahn-
dc.contributor.authorS H Choi-
dc.contributor.authorM H Jeong-
dc.contributor.authorH Samady-
dc.contributor.authorJ Escaned-
dc.date.accessioned2020-09-11T06:07:56Z-
dc.date.available2020-09-11T06:07:56Z-
dc.date.issued2020-
dc.identifier.issn1936-8798-
dc.identifier.urihttps://oak.kribb.re.kr/handle/201005/21533-
dc.description.abstractObjectives: The aim of this study was to evaluate temporal changes in coronary hemodynamic and physiological indexes in the non-infarct-related artery (IRA), which might be affected by adjacent infarcted myocardium, using an experimental animal model of acute myocardial infarction. Background: There has been debate on the reliability of fractional flow reserve and resting pressure-derived indexes, including instantaneous wave-free ratio, in the non-IRA in patients with acute ST-segment elevation myocardial infarction. Methods: In Yorkshire swine, acute myocardial infarction was simulated with selective balloon occlusion at the left circumflex coronary artery as the IRA for 30 min. Non-IRA stenosis was created using bare-metal stent implantation in the left anterior descending coronary artery 4 weeks before the experiments. Serial changes in systemic hemodynamic status, coronary pressure, and Doppler-derived coronary flow velocity were measured in a nonoccluded left anterior descending coronary artery as the non-IRA from baseline, balloon occlusion of the left circumflex coronary artery, and 15 min after reperfusion of the left circumflex coronary artery. Results: Among the 6 experimental subjects, the median diameter stenosis of the non-IRA was 33.9% (interquartile range: 21.7% to 46.1%). During balloon occlusion of the IRA, there were transient significant changes in both resting and hyperemic aortic pressure, distal coronary pressure, averaged peak velocity, transstenotic pressure gradient, and microvascular resistance of the non-IRA (p < 0.020 for all). After reperfusion of the IRA, the resting averaged peak velocity (p = 0.002) and resting transstenotic pressure gradient (p = 0.004) were significantly increased and resting microvascular resistance (p = 0.004) was significantly decreased compared with their values in the baseline phase. However, the hyperemic averaged peak velocity (p = 0.479), hyperemic transstenotic pressure gradient (p = 0.778), and hyperemic microvascular resistance (p = 0.816) were not significantly different compared with those in the baseline phase. After reperfusion, fractional flow reserve in the non-IRA was not significantly different (0.94 ± 0.01 vs. 0.93 ± 0.01; p = 0.353), while coronary flow reserve (1.93 ± 0.07 vs. 1.36 ± 0.07; p = 0.025) and instantaneous wave-free ratio (0.97 ± 0.01 vs. 0.93 ± 0.01; p = 0.001) were significantly lower than baseline values. Conclusions: In a porcine model of acute myocardial infarction, occlusion of the IRA induced significant changes in systemic hemodynamic status and coronary circulatory indexes of the non-IRA. However, after reperfusion of the IRA, fractional flow reserve did not change significantly, whereas coronary flow reserve and instantaneous wave-free ratio showed significant changes compared with baseline values.-
dc.publisherElsevier-
dc.titleCoronary circulatory indexes in non-infarct-related vascular territories in a porcine acute myocardial infarction model-
dc.title.alternativeCoronary circulatory indexes in non-infarct-related vascular territories in a porcine acute myocardial infarction model-
dc.typeArticle-
dc.citation.titleJACC-Cardiovascular Interventions-
dc.citation.number10-
dc.citation.endPage1167-
dc.citation.startPage1155-
dc.citation.volume13-
dc.contributor.affiliatedAuthorKyung Seob Lim-
dc.contributor.alternativeName이승훈-
dc.contributor.alternativeName김현국-
dc.contributor.alternativeName이주명-
dc.contributor.alternativeName홍영준-
dc.contributor.alternativeName임경섭-
dc.contributor.alternativeName김한별-
dc.contributor.alternativeName최기홍-
dc.contributor.alternativeName신은석-
dc.contributor.alternativeName남창욱-
dc.contributor.alternativeName도준형-
dc.contributor.alternativeName양정훈-
dc.contributor.alternativeName송영빈-
dc.contributor.alternativeName한주용-
dc.contributor.alternativeName최승혁-
dc.contributor.alternativeName정명호-
dc.contributor.alternativeNameSamady-
dc.contributor.alternativeNameEscaned-
dc.identifier.bibliographicCitationJACC-Cardiovascular Interventions, vol. 13, no. 10, pp. 1155-1167-
dc.identifier.doi10.1016/j.jcin.2020.03.006-
dc.subject.keywordacute coronary syndrome-
dc.subject.keywordacute myocardial infarction-
dc.subject.keywordcoronary flow reserve-
dc.subject.keywordfractional flow reserve-
dc.subject.keywordinstantaneous wave-free ratio-
dc.subject.localacute coronary syndrome-
dc.subject.localAcute myocardial infarction-
dc.subject.localacute myocardial infarction-
dc.subject.localacute myocardial infaction-
dc.subject.localcoronary flow reserve-
dc.subject.localFractional flow reserve-
dc.subject.localfractional flow reserve-
dc.subject.localinstantaneous wave-free ratio-
dc.description.journalClassY-
Appears in Collections:
Ochang Branch Institute > Division of National Bio-Infrastructure > Futuristic Animal Resource & Research Center > 1. Journal Articles
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