Journal article Closed Access
Hadewych Van Hauwermeiren; Jean-Paul Aben; Osama Ibrahim Ibrahim Soliman; Liesbeth Rosseel; Masafumi Ono; Bill Brunnett; Chun Chin Chang; Martijn Cox; Yoshinobu Onuma; Michele Pighi; Darren Mylotte; Rodrigo Modolo; Patrick W. Serruys; Willem Flameng; Rutao Wang; Hideyuki Kawashima; Philippe Pibarot
<?xml version='1.0' encoding='UTF-8'?> <record xmlns="http://www.loc.gov/MARC21/slim"> <leader>00000nam##2200000uu#4500</leader> <datafield tag="260" ind1=" " ind2=" "> <subfield code="c">2021-01-12</subfield> </datafield> <datafield tag="700" ind1=" " ind2=" "> <subfield code="a">Jean-Paul Aben</subfield> </datafield> <datafield tag="700" ind1=" " ind2=" "> <subfield code="a">Osama Ibrahim Ibrahim Soliman</subfield> </datafield> <datafield tag="700" ind1=" " ind2=" "> <subfield code="a">Liesbeth Rosseel</subfield> </datafield> <datafield tag="700" ind1=" " ind2=" "> <subfield code="a">Masafumi Ono</subfield> </datafield> <datafield tag="700" ind1=" " ind2=" "> <subfield code="a">Bill Brunnett</subfield> </datafield> <datafield tag="700" ind1=" " ind2=" "> <subfield code="a">Chun Chin Chang</subfield> </datafield> <datafield tag="700" ind1=" " ind2=" "> <subfield code="a">Martijn Cox</subfield> </datafield> <datafield tag="700" ind1=" " ind2=" "> <subfield code="a">Yoshinobu Onuma</subfield> </datafield> <datafield tag="700" ind1=" " ind2=" "> <subfield code="a">Michele Pighi</subfield> </datafield> <datafield tag="700" ind1=" " ind2=" "> <subfield code="a">Darren Mylotte</subfield> </datafield> <datafield tag="700" ind1=" " ind2=" "> <subfield code="a">Rodrigo Modolo</subfield> </datafield> <datafield tag="700" ind1=" " ind2=" "> <subfield code="a">Patrick W. Serruys</subfield> </datafield> <datafield tag="700" ind1=" " ind2=" "> <subfield code="a">Willem Flameng</subfield> </datafield> <datafield tag="700" ind1=" " ind2=" "> <subfield code="a">Rutao Wang</subfield> </datafield> <datafield tag="700" ind1=" " ind2=" "> <subfield code="a">Hideyuki Kawashima</subfield> </datafield> <datafield tag="700" ind1=" " ind2=" "> <subfield code="a">Philippe Pibarot</subfield> </datafield> <datafield tag="653" ind1=" " ind2=" "> <subfield code="a">Netherlands</subfield> </datafield> <datafield tag="653" ind1=" " ind2=" "> <subfield code="a">Cardiology and Cardiovascular Medicine</subfield> </datafield> <controlfield tag="001">85687</controlfield> <datafield tag="520" ind1=" " ind2=" "> <subfield code="a">This study aimed to validate a dedicated software for quantitative videodensitometric angiographic assessment of mitral regurgitation (QMR).Quantitative videodensitometric aortography of aortic regurgitation using the time-density principle is a well-documented technique, but the angiographic assessment of mitral regurgitation (MR) remains at best semi-quantitative and operator dependent.Fourteen sheep underwent surgical mitral valve replacement using 2 different prostheses. Pre-sacrifice left ventriculograms were used to assess MR fraction (MRF) using QMR and MR volume (MRV). In an independent core lab, the CAAS QMR 0.1 was used for QMR analysis. In vitro MRF and MRV were assessed in a mock circulation at a comparable cardiac output to the in vivo one by thermodilution. The correlations and agreements of in vitro and in vivo MRF, MRV, and interobserver reproducibility for QMR analysis were assessed using the averaged cardiac cycles (CCs).In vivo derived MRF by QMR strongly correlated with in vitro derived MRF, regardless of the number of the CCs analyzed (best correlation: 3 CCs y = 0.446 + 0.994x; R = 0.784; p =0.002). The mean absolute difference between in vitro derived MRF and in vivo derived MRF from 3 CCs was 0.01 ± 4.2% on Bland-Altman analysis. In vitro MRV and in vivo MRV from 3 CCs were very strongly correlated (y = 0.196 + 1.255x; R = 0.839; p 0.001). The mean absolute difference between in vitro MRV and in vivo MRV from 3 CCs was -1.4 ± 1.9 ml. There were very strong correlations of in vivo MRF between 2 independent analysts, regardless of the number of the CCs.In vivo MRF using the novel software is feasible, accurate, and highly reproducible. These promising results have led us to initiate the first human feasibility study comprising patients undergoing percutaneous mitral valve edge-to-edge repair.</subfield> </datafield> <datafield tag="540" ind1=" " ind2=" "> <subfield code="u">https://creativecommons.org/licenses/by-nc-nd/4.0/</subfield> <subfield code="a">Creative Commons Attribution-NonCommercial-NoDerivatives</subfield> </datafield> <datafield tag="245" ind1=" " ind2=" "> <subfield code="a">Validation of Prosthetic Mitral Regurgitation Quantification Using Novel Angiographic Platform by Mock Circulation.</subfield> </datafield> <datafield tag="542" ind1=" " ind2=" "> <subfield code="l">closed</subfield> </datafield> <datafield tag="650" ind1="1" ind2="7"> <subfield code="a">cc-by</subfield> <subfield code="2">opendefinition.org</subfield> </datafield> <datafield tag="980" ind1=" " ind2=" "> <subfield code="a">user-itmirror</subfield> </datafield> <datafield tag="041" ind1=" " ind2=" "> <subfield code="a">eng</subfield> </datafield> <controlfield tag="005">20230924130213.0</controlfield> <datafield tag="024" ind1=" " ind2=" "> <subfield code="a">10.1016/j.jcin.2021.04.046</subfield> <subfield code="2">doi</subfield> </datafield> <datafield tag="100" ind1=" " ind2=" "> <subfield code="a">Hadewych Van Hauwermeiren</subfield> </datafield> <datafield tag="980" ind1=" " ind2=" "> <subfield code="a">publication</subfield> <subfield code="b">article</subfield> </datafield> </record>
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