The cerebral blood flow (CBF) is a potential biomarker for neurological disease. However, the arterial transit time (ATT) of the labeled blood is known to potentially affect CBF quantification. Furthermore, ATT could be an interesting biomarker in itself, as it may reflect underlying macro and microvascular pathologies. Currently, no optimized magnetic resonance imaging (MRI) sequence exists to measure ATT in mice. Recently, time-encoded labeling schemes have been implemented in rats and humans, enabling ATT mapping with higher signal-to-noise ratio (SNR) and shorter scan time than multi-delay arterial spin labeling (ASL). In this study, we show that time-encoded pseudo-continuous arterial spin labeling (te-pCASL) also enables transit time ...
Multi-post-labeling-delay pseudo-continuous arterial spin labeling (multi-PLD PCASL) allows for abso...
In evaluating the sensitivity of arterial spin labeling (CASL) and for quantification of perfusion, ...
Perfusion imaging by arterial spin labeling (ASL) can be highly sensitive to the transit time from t...
The cerebral blood flow (CBF) is a potential biomarker for neurological disease. However, the arteri...
The arterial transit time (δa) is a potentially important physiological parameter which may provide ...
Duhamel, Guillaume Callot, Virginie Tachrount, Mohamed Alsop, David C Cozzone, Patrick J Research Su...
Brain and tumour blood flow can be measured noninvasively using arterial spin labelling (ASL) magnet...
Brain and tumour blood flow can be measured noninvasively using arterial spin labelling (ASL) magnet...
Among numerous magnetic resonance imaging (MRI) techniques, perfusion MRI provides insight into the ...
Cerebral blood flow is an important parameter in many diseases and functional studies that can be ac...
Accurate knowledge of brain tissue perfusion and clear visualisation of cerebral arteries are of gre...
Arterial spin labeling (ASL) perfusion imaging provides direct and absolute measurement of cerebral ...
Purpose: Arterial spin labeling (ASL) perfusion imaging indicates direct and absolute measurement of...
Multi-post-labeling-delay pseudo-continuous arterial spin labeling (multi-PLD PCASL) allows for abso...
In this thesis I have described the introduction and validation of a new spatial...
Multi-post-labeling-delay pseudo-continuous arterial spin labeling (multi-PLD PCASL) allows for abso...
In evaluating the sensitivity of arterial spin labeling (CASL) and for quantification of perfusion, ...
Perfusion imaging by arterial spin labeling (ASL) can be highly sensitive to the transit time from t...
The cerebral blood flow (CBF) is a potential biomarker for neurological disease. However, the arteri...
The arterial transit time (δa) is a potentially important physiological parameter which may provide ...
Duhamel, Guillaume Callot, Virginie Tachrount, Mohamed Alsop, David C Cozzone, Patrick J Research Su...
Brain and tumour blood flow can be measured noninvasively using arterial spin labelling (ASL) magnet...
Brain and tumour blood flow can be measured noninvasively using arterial spin labelling (ASL) magnet...
Among numerous magnetic resonance imaging (MRI) techniques, perfusion MRI provides insight into the ...
Cerebral blood flow is an important parameter in many diseases and functional studies that can be ac...
Accurate knowledge of brain tissue perfusion and clear visualisation of cerebral arteries are of gre...
Arterial spin labeling (ASL) perfusion imaging provides direct and absolute measurement of cerebral ...
Purpose: Arterial spin labeling (ASL) perfusion imaging indicates direct and absolute measurement of...
Multi-post-labeling-delay pseudo-continuous arterial spin labeling (multi-PLD PCASL) allows for abso...
In this thesis I have described the introduction and validation of a new spatial...
Multi-post-labeling-delay pseudo-continuous arterial spin labeling (multi-PLD PCASL) allows for abso...
In evaluating the sensitivity of arterial spin labeling (CASL) and for quantification of perfusion, ...
Perfusion imaging by arterial spin labeling (ASL) can be highly sensitive to the transit time from t...