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| DOI | 10.1007/S12265-022-10350-W | ||||
| Año | 2023 | ||||
| Tipo | artículo de investigación |
Citas Totales
Autores Afiliación Chile
Instituciones Chile
% Participación
Internacional
Autores
Afiliación Extranjera
Instituciones
Extranjeras
Aortic stenosis is a condition which is fatal if left untreated. Novel quantitative imaging techniques which better characterise transvalvular pressure drops are being developed but require refinement and validation. A customisable and cost-effective workbench valve phantom circuit capable of replicating valve mechanics and pathology was created. The reproducibility and relationship of differing haemodynamic metrics were assessed from ground truth pressure data alongside imaging compatibility. The phantom met the requirements to capture ground truth pressure data alongside ultrasound and magnetic resonance image compatibility. The reproducibility was successfully tested. The robustness of three different pressure drop metrics was assessed: whilst the peak and net pressure drops provide a robust assessment of the stenotic burden in our phantom, the peak-to-peak pressure drop is a metric that is confounded by non-valvular factors such as wave reflection. The peak-to-peak pressure drop is a metric that should be reconsidered in clinical practice. Graphical abstract: The left panel shows manufacture of low cost, functional valves. The central section demonstrates circuit layout, representative MRI and US images alongside gross valve morphologies. The right panel shows the different pressure drop metrics that were assessed for reproducibility[Figure not available: see fulltext.].
| Ord. | Autor | Género | Institución - País |
|---|---|---|---|
| 1 | Gill, Harminder | Hombre |
King's College London - Reino Unido
St Thomas' Hospital - Reino Unido Guys & St Thomas Hosp - Reino Unido Kings Coll London - Reino Unido |
| 2 | Fernandes, Joao Filipe | - |
King's College London - Reino Unido
Kings Coll London - Reino Unido |
| 3 | Nio, Amanda | Mujer |
King's College London - Reino Unido
Kings Coll London - Reino Unido |
| 4 | Dockerill, Cameron | Hombre |
King's College London - Reino Unido
Kings Coll London - Reino Unido |
| 5 | Shah, Nili | Mujer |
King's College London - Reino Unido
Kings Coll London - Reino Unido |
| 6 | Ahmed, Naajia | - |
King's College London - Reino Unido
Kings Coll London - Reino Unido |
| 7 | Raymond, Jason | Hombre |
University of Oxford - Reino Unido
UNIV OXFORD - Reino Unido |
| 8 | Wang, Shu | - |
King's College London - Reino Unido
Kings Coll London - Reino Unido |
| 9 | SOTELO-PARRAGUEZ, JULIO ANDRES | Hombre |
Universidad de Valparaíso - Chile
Pontificia Universidad Católica de Chile - Chile Instituto Milenio en Ingeniería e Inteligencia Artificial para la Salud - Chile |
| 10 | Urbina, Jesus | Hombre |
Pontificia Universidad Católica de Chile - Chile
Instituto Milenio en Ingeniería e Inteligencia Artificial para la Salud - Chile |
| 11 | URIBE-ESPINOZA, SERGIO ANDRES | Hombre |
Pontificia Universidad Católica de Chile - Chile
Instituto Milenio en Ingeniería e Inteligencia Artificial para la Salud - Chile |
| 12 | Rajani, Ronak | Mujer |
King's College London - Reino Unido
St Thomas' Hospital - Reino Unido Guys & St Thomas Hosp - Reino Unido Kings Coll London - Reino Unido |
| 13 | Rhode, Kawal | - |
King's College London - Reino Unido
Kings Coll London - Reino Unido |
| 14 | Lamata, Pablo | Hombre |
King's College London - Reino Unido
Kings Coll London - Reino Unido |
| Fuente |
|---|
| Medical Research Council |
| Wellcome Trust |
| UK Medical Research Council |
| EU |
| British Heart Foundation |
| H2020 Marie Skłodowska-Curie Actions |
| King’s College London |
| ANID Fondecyt |
| Agencia Nacional de Investigación y Desarrollo |
| Wellcome/EPSRC Centre for Medical Engineering |
| ANID - Millennium Science Initiative Program |
| Wellcome Trust Senior Research Fellowship |
| ANID FONDECYT de Iniciacion en Investigacion |
| Centre For Medical Engineering, King’s College London |
| EU’s Horizon 2020 R&I programme |
| King's College London MRC Doctoral Training Partnership in Biomedi-cal Sciences |
| BHF Translational Award |
| Agradecimiento |
|---|
| This work was supported by BHF Translational Award (TG/17/3/33406)(PL); EU’s Horizon 2020 R&I programme under the Marie Skłodowska-Curie (764738)(PL); CD was supported by the UK Medical Research Council [MR/N013700/1] and the King’s College London MRC Doctoral Training Partnership in Biomedical Sciences; Wellcome/EPSRC Centre for Medical Engineering (WT203148/Z/16/Z)(PL); Wellcome Trust Senior Research Fellowship (209450/Z/17/Z)(PL); ANID – Millennium Science Initiative Program(ICN2021_004); ANID FONDECYT de Iniciación en Investigación (11200481), ANID FONDECYT (1181057)(J.S., J.U. and S.U). |
| This work was supported by BHF Translational Award (TG/17/3/33406)(PL); EU's Horizon 2020 R&I programme under the Marie Sklodowska-Curie (764738)(PL); CD was supported by the UK Medical Research Council [MR/N013700/1] and the King's College London MRC Doctoral Training Partnership in Biomedi-cal Sciences; Wellcome/EPSRC Centre for Medical Engineering (WT203148/Z/16/Z)(PL); Wellcome Trust Senior Research Fel-lowship (209450/Z/17/Z)(PL); ANID - Millennium Science Ini-tiative Program(ICN2021_004); ANID FONDECYT de Iniciacion en Investigacion (11200481), ANID FONDECYT (1181057)(J.S., J.U. and S.U). |