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1.
Eur Radiol Exp ; 3(1): 15, 2019 04 03.
Artigo em Inglês | MEDLINE | ID: mdl-30945029

RESUMO

BACKGROUND: Conventional ultrasound (US) provides important qualitative information, although there is a need to evaluate the influence of the input parameters on the output signal and standardise the acquisition for an adequate quantitative perfusion assessment. The present study analyses how the variation in the input parameters influences the measurement of the perfusion parameters. METHODS: A software tool with simulator of the conventional US signal was created, and the influence of the different input variables on the derived biomarkers was analysed by varying the image acquisition configuration. The input parameters considered were the dynamic range, gain, and frequency of the transducer. Their influence on mean transit time (MTT), the area under the curve (AUC), maximum intensity (MI), and time to peak (TTP) parameters as outputs of the quantitative perfusion analysis was evaluated. A group of 13 patients with hepatocarcinoma was analysed with both a commercial tool and an in-house developed software. RESULTS: The optimal calculated inputs which minimise errors while preserving images' readability consisted of gain of 15 dB, dynamic range of 60 dB, and frequency of 1.5 MHz. The comparison between the in-house developed software and the commercial software provided different values for MTT and AUC, while MI and TTP were highly similar. CONCLUSION: Input parameter selection introduces variability and errors in US perfusion parameter estimation. Our results may add relevant insight into the current knowledge of conventional US perfusion and its use in lesions characterisation, playing in favour of optimised standardised parameter configuration to minimise variability.


Assuntos
Carcinoma Hepatocelular/diagnóstico por imagem , Neoplasias Hepáticas/diagnóstico por imagem , Idoso , Carcinoma Hepatocelular/fisiopatologia , Feminino , Humanos , Circulação Hepática , Neoplasias Hepáticas/fisiopatologia , Masculino , Pessoa de Meia-Idade , Software , Ultrassonografia/métodos
2.
Rev. ing. bioméd ; 2(4): 46-53, graf
Artigo em Espanhol | LILACS | ID: lil-773339

RESUMO

Las arritmias cardíacas más frecuentes en humanos tienen origen auricular. El modelado de la actividad auricular se ha convertido en una importante herramienta en el análisis de arritmias como la fibrilación auricular. Estudios experimentales han demostrado que la fibrilación auricular tiende a perpetuarse, generando cambios electrofisiológicos denominados remodelado auricular. En este trabajo se presenta un modelo tridimensional geométricamente realista de la aurícula humana, al cual se le incorporan: anisotropía, dirección de las fibras y heterogeneidad en la conductividad. En un modelo del potencial de acción acoplado al modelo tridimensional, se estudió el efecto del remodelado auricular sobre el potencial de acción y su propagación teniendo en cuenta sus efectos sobre las corrientes iónicas. El modelo reprodujo el comportamiento de la actividad eléctrica en toda la superficie auricular. El remodelado redujo la duración del potencial de acción, el periodo refractario efectivo y la velocidad de conducción. Los resultados sugieren que en el modelo tridimensional desarrollado, es posible simular la actividad eléctrica auricular en condiciones fisiológicas y con remodelado eléctrico auricular.


The most common cardiac arrhythmias in humans originate in the atrium. Modelling of the atrial activity has become an important tool to analyze arrhythmias such as atrial fibrillation. Experimental studies have shown that atrial fibrillation tends to be perpetual, generating electrophysiological changes called atrial remodeling. In this study we present a geometrically realistic three-dimensional (3D) model of human atrium, which incorporates anisotropy, direction of the fibers and conductive heterogeneity. The effects of remodeling on the ionic currents were applied to an action potential model coupled to the 3D model. The effects of remodeling on the action potential and its propagation were studied the model reproduced the electrical activity behavior across the atrial surface. Remodelling induced a reduction in the action potential duration, the effective refractory period and the conduction velocity. Our results suggest that in the developed 3D model of human atrium is possible to simulate the atrial electrical activity under physiological conditions and with atrial electrical remodeling.

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