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Tibiletti, M.

Publications and source records attributed to Tibiletti, M..

2 recordsLinked to original sources

Independent component analysis (ICA) applied to dynamic oxygen-enhanced MRI (OE-MRI) for robust functional lung imaging at 3 T

PurposeDynamic lung oxygen-enhanced MRI (OE-MRI) is challenging due to the presence of confounding signals and poor signal-to-noise ratio, particularly at 3 T. We have created a robust pipeline utilizing independent component analysis (ICA) to automatically extract the oxygen-induced signal change from confounding factors to improve the accuracy and sensitivity of lung OE-MRI. MethodsDynamic OE-MRI was performed on healthy participants using a dual-echo multi- slice spoiled gradient echo sequence at 3 T and cyclical gas delivery. ICA was applied to each echo within a thoracic mask. The ICA component relating to the oxygen-enhancement signal was automatically identified using correlation analysis. The oxygen-enhancement component was reconstructed, and the percentage signal enhancement (PSE) was calculated. The lung PSE of current smokers was compared with non-smokers; scan-rescan repeatability, ICA pipeline repeatability, and reproducibility between two vendors, were assessed. ResultsICA successfully extracted a consistent oxygen-enhancement component for all participants. Lung tissue and oxygenated blood displayed opposite oxygen-induced signal enhancements. A significant difference in PSE was observed between the lungs of current smokers and non-smokers. The scan-rescan repeatability, and the ICA pipeline repeatability, were good. ConclusionThe developed pipeline demonstrated sensitivity to the signal enhancements of the lung tissue and oxygenated blood at 3 T. The difference in lung PSE between current smokers and non-smokers indicates a likely sensitivity to lung function alterations that may be seen in mild pathology, supporting future use of our methods in patient studies.

physiology↗

Dynamic oxygen-enhanced MRI of the lung at 3 T: feasibility, repeatability and reproducibility

PurposeDynamic T1-weighted lung oxygen enhanced MRI (OE-MRI) is challenging at 3 T due to decreased longitudinal relaxivity of oxygen and increased magnetic susceptibility difference between air and tissue interfaces relative to 1.5 T, leading to poor signal quality. In this work, we evaluate the robustness of an alternative T2*-sensitised lung dynamic OE-MRI protocol in humans at 3 T. MethodsSimulations were performed to predict OE contrast behaviour and optimise the MRI protocol. Sixteen healthy subjects underwent dynamic free-breathing OE-MRI acquisitions using a dual echo RF-spoiled gradient echo acquisition at 3 T on two MRI scanners at different institutions. Non-linear registration and tissue density variation correction were applied. Percent signal enhancement (PSE) maps and {Delta}R2* were derived. Intra-class correlation coefficient (ICC) and Bland-Altman analyses were used to evaluate reproducibility of the OE indices across two sites and vendors as well as scan-rescan repeatability. ResultsSimulations and experimental data show negative contrast on oxygen inhalation due to substantial dominance of {Delta}R2* at TE longer than 0.2 ms when using our chosen flip angle and TR. Mean PSE values were TE dependent and mean {Delta}R2* was 0.14 ms-1 {+/-} 0.03 ms-1, ICC values for intra-scanner (ICCintra) and inter-scanner (ICCinter) variability for OE indices were high (ICCintra > 0.74; ICCinter = 0.70) and 95% limits of agreement showed strong agreement of repeated measures. ConclusionOur results demonstrate excellent scan-rescan repeatability for the PSE indices and good reproducibility for {Delta}R2* across two sites and vendors, suggesting potential utility in multi-centre clinical studies.

biophysics↗