Matches in SemOpenAlex for { <https://semopenalex.org/work/W4385144244> ?p ?o ?g. }
- W4385144244 endingPage "104727" @default.
- W4385144244 startingPage "104727" @default.
- W4385144244 abstract "Coronary microvascular obstruction also known as no-reflow phenomenon is a major issue during myocardial infarction that bears important prognostic implications. Alterations of the microvascular network remains however challenging to assess as there is no imaging modality in the clinics that can image directly the coronary microvascular vessels. Ultrasound Localization Microscopy (ULM) imaging was recently introduced to map microvascular flows at high spatial resolution (∼10 μm). In this study, we developed an approach to image alterations of the microvascular coronary flow in ex vivo perfused swine hearts.A porcine model of myocardial ischemia-reperfusion was used to obtain microvascular coronary alterations and no-reflow. Four female hearts with myocardial infarction in addition to 6 controls were explanted and placed immediately in a dedicated preservation and perfusion box manufactured for ultrasound imaging. Microbubbles (MB) were injected into the vasculature to perform Ultrasound Localization Microscopy (ULM) imaging and a linear ultrasound probe mounted on a motorized device was used to scan the heart on multiple slices. The coronary microvascular anatomy and flow velocity was reconstructed using dedicated ULM algorithms and analyzed quantitatively.We were able to image the coronary microcirculation of ex vivo swine hearts at a resolution of tens of microns and measure flow velocities ranging from 10 mm/s in arterioles up to more than 200 mm/s in epicardial arteries. Under different aortic perfusion pressures, we measured in large arteries of a subset of control hearts an increase of flow velocity from 31 ± 11 mm/s at 87 mmHg to 47 ± 17 mm/s at 132 mmHg (N = 3 hearts, P < 0.05). This increase was compared with a control measurement with a flowmeter in the aorta. We also compared 6 control hearts to 4 hearts in which no-reflow was induced by the occlusion and reperfusion of a coronary artery. Using average MB velocity and average density of MB per unit of surface as two ULM quantitative markers of perfusion, we were able to detect areas of coronary no-reflow in good agreement with a control anatomical pathology analysis of the cardiac tissue. In the no-reflow zone, we measured an average perfusion of 204 ± 305 MB/mm2 compared to 3182 ± 1302 MB/mm2 in the surrounding re-perfused area.We demonstrated this approach can directly image and quantify coronary microvascular obstruction and no-reflow on large mammal perfused hearts. This is a first step for noninvasive, quantitative and affordable assessment of the coronary microcirculation function and particularly coronary microvascular anatomy in the infarcted heart. This approach has the potential to be extended to other clinical situations characterized by microvascular dysfunction.This study was supported by the French National Research Agency (ANR) under ANR-21-CE19-0002 grant agreement." @default.
- W4385144244 created "2023-07-23" @default.
- W4385144244 creator A5000182523 @default.
- W4385144244 creator A5001936852 @default.
- W4385144244 creator A5006303586 @default.
- W4385144244 creator A5015617477 @default.
- W4385144244 creator A5023712048 @default.
- W4385144244 creator A5032319138 @default.
- W4385144244 creator A5035929683 @default.
- W4385144244 creator A5044604637 @default.
- W4385144244 creator A5058726993 @default.
- W4385144244 creator A5080447163 @default.
- W4385144244 creator A5088716710 @default.
- W4385144244 creator A5089929742 @default.
- W4385144244 date "2023-08-01" @default.
- W4385144244 modified "2023-10-16" @default.
- W4385144244 title "Assessment of coronary microcirculation alterations in a porcine model of no-reflow using ultrasound localization microscopy: a proof of concept study" @default.
- W4385144244 cites W2055198379 @default.
- W4385144244 cites W2070712157 @default.
- W4385144244 cites W2123233546 @default.
- W4385144244 cites W2132401137 @default.
- W4385144244 cites W2136872970 @default.
- W4385144244 cites W2140800188 @default.
- W4385144244 cites W2141461755 @default.
- W4385144244 cites W2142935346 @default.
- W4385144244 cites W2165149777 @default.
- W4385144244 cites W2170774676 @default.
- W4385144244 cites W2222512263 @default.
- W4385144244 cites W2741900278 @default.
- W4385144244 cites W2755633017 @default.
- W4385144244 cites W2765113479 @default.
- W4385144244 cites W2809883623 @default.
- W4385144244 cites W2900781141 @default.
- W4385144244 cites W3000957625 @default.
- W4385144244 cites W3136113373 @default.
- W4385144244 cites W4224023067 @default.
- W4385144244 cites W4225821863 @default.
- W4385144244 cites W4285505989 @default.
- W4385144244 cites W4289783375 @default.
- W4385144244 cites W4321793773 @default.
- W4385144244 cites W4323572248 @default.
- W4385144244 cites W4366494229 @default.
- W4385144244 doi "https://doi.org/10.1016/j.ebiom.2023.104727" @default.
- W4385144244 hasPubMedId "https://pubmed.ncbi.nlm.nih.gov/37487415" @default.
- W4385144244 hasPublicationYear "2023" @default.
- W4385144244 type Work @default.
- W4385144244 citedByCount "1" @default.
- W4385144244 countsByYear W43851442442023 @default.
- W4385144244 crossrefType "journal-article" @default.
- W4385144244 hasAuthorship W4385144244A5000182523 @default.
- W4385144244 hasAuthorship W4385144244A5001936852 @default.
- W4385144244 hasAuthorship W4385144244A5006303586 @default.
- W4385144244 hasAuthorship W4385144244A5015617477 @default.
- W4385144244 hasAuthorship W4385144244A5023712048 @default.
- W4385144244 hasAuthorship W4385144244A5032319138 @default.
- W4385144244 hasAuthorship W4385144244A5035929683 @default.
- W4385144244 hasAuthorship W4385144244A5044604637 @default.
- W4385144244 hasAuthorship W4385144244A5058726993 @default.
- W4385144244 hasAuthorship W4385144244A5080447163 @default.
- W4385144244 hasAuthorship W4385144244A5088716710 @default.
- W4385144244 hasAuthorship W4385144244A5089929742 @default.
- W4385144244 hasBestOaLocation W43851442441 @default.
- W4385144244 hasConcept C126322002 @default.
- W4385144244 hasConcept C126838900 @default.
- W4385144244 hasConcept C12722491 @default.
- W4385144244 hasConcept C136229726 @default.
- W4385144244 hasConcept C143753070 @default.
- W4385144244 hasConcept C146957229 @default.
- W4385144244 hasConcept C150903083 @default.
- W4385144244 hasConcept C158846371 @default.
- W4385144244 hasConcept C164705383 @default.
- W4385144244 hasConcept C207001950 @default.
- W4385144244 hasConcept C26291073 @default.
- W4385144244 hasConcept C2776157398 @default.
- W4385144244 hasConcept C2776820930 @default.
- W4385144244 hasConcept C2776931568 @default.
- W4385144244 hasConcept C2778742706 @default.
- W4385144244 hasConcept C500558357 @default.
- W4385144244 hasConcept C64012434 @default.
- W4385144244 hasConcept C71924100 @default.
- W4385144244 hasConcept C86803240 @default.
- W4385144244 hasConceptScore W4385144244C126322002 @default.
- W4385144244 hasConceptScore W4385144244C126838900 @default.
- W4385144244 hasConceptScore W4385144244C12722491 @default.
- W4385144244 hasConceptScore W4385144244C136229726 @default.
- W4385144244 hasConceptScore W4385144244C143753070 @default.
- W4385144244 hasConceptScore W4385144244C146957229 @default.
- W4385144244 hasConceptScore W4385144244C150903083 @default.
- W4385144244 hasConceptScore W4385144244C158846371 @default.
- W4385144244 hasConceptScore W4385144244C164705383 @default.
- W4385144244 hasConceptScore W4385144244C207001950 @default.
- W4385144244 hasConceptScore W4385144244C26291073 @default.
- W4385144244 hasConceptScore W4385144244C2776157398 @default.
- W4385144244 hasConceptScore W4385144244C2776820930 @default.
- W4385144244 hasConceptScore W4385144244C2776931568 @default.
- W4385144244 hasConceptScore W4385144244C2778742706 @default.
- W4385144244 hasConceptScore W4385144244C500558357 @default.
- W4385144244 hasConceptScore W4385144244C64012434 @default.