IntroductionQuantitative positron emission tomography (PET) studies of neurodegenerative diseases typically require the measurement of arterial input functions (AIF), an invasive and risky procedure. This study aims to assess the reproducibility of [11C]DPA-713 PET kinetic analysis using population-based input function (PBIF). The final goal is to possibly eliminate the need for AIF.Materials and methodsEighteen subjects including six healthy volunteers (HV) and twelve Parkinson disease (PD) subjects from two [11C]-DPA-713 PET studies were included. Each subject underwent 90 min of dynamic PET imaging. Five healthy volunteers underwent a test-retest scan within the same day to assess the repeatability of the kinetic parameters. Kinetic mode...
Background: Quantification of kinetic parameters of positron emission tomography (PET) imaging agent...
International audienceTranslocator protein (TSPO) is expressed at a low level in healthy brain and i...
Pharmacokinetic modelling with arterial sampling is the gold standard for analysing dynamic PET data...
IntroductionQuantitative positron emission tomography (PET) studies of neurodegenerative diseases ty...
The input function (IF) is a core element in the quantification of Translocator protein 18 kDa with ...
There is a growing interest in using 18F-DPA-714 PET to study neuroinflammation and microglial activ...
Blood-based kinetic analysis of PET data relies on an accurate estimate of the arterial plasma input...
RationalTo validate a population-based input function (PBIF) model that alleviates the need for scan...
Abstract Purpose The PET radioligand (R)-[11C]PK11195 is used to quantify the 18-kDa translocator pr...
Blood-based kinetic analysis of PET data relies on an accurate estimate of the arterial plasma input...
Background: Accurate kinetic modeling of 18F-fluorodeoxyglucose ([18F]-FDG) positron emission tomogr...
RationalTo validate a population-based input function (PBIF) model that alleviates the need for scan...
Purpose Tracer kinetic modeling of tissue time activity curves and the individual input function bas...
Introduction: Recently, small animal PET studies have become of interest because various disease mod...
Background: Quantification of kinetic parameters of positron emission tomography (PET) imaging agent...
International audienceTranslocator protein (TSPO) is expressed at a low level in healthy brain and i...
Pharmacokinetic modelling with arterial sampling is the gold standard for analysing dynamic PET data...
IntroductionQuantitative positron emission tomography (PET) studies of neurodegenerative diseases ty...
The input function (IF) is a core element in the quantification of Translocator protein 18 kDa with ...
There is a growing interest in using 18F-DPA-714 PET to study neuroinflammation and microglial activ...
Blood-based kinetic analysis of PET data relies on an accurate estimate of the arterial plasma input...
RationalTo validate a population-based input function (PBIF) model that alleviates the need for scan...
Abstract Purpose The PET radioligand (R)-[11C]PK11195 is used to quantify the 18-kDa translocator pr...
Blood-based kinetic analysis of PET data relies on an accurate estimate of the arterial plasma input...
Background: Accurate kinetic modeling of 18F-fluorodeoxyglucose ([18F]-FDG) positron emission tomogr...
RationalTo validate a population-based input function (PBIF) model that alleviates the need for scan...
Purpose Tracer kinetic modeling of tissue time activity curves and the individual input function bas...
Introduction: Recently, small animal PET studies have become of interest because various disease mod...
Background: Quantification of kinetic parameters of positron emission tomography (PET) imaging agent...
International audienceTranslocator protein (TSPO) is expressed at a low level in healthy brain and i...
Pharmacokinetic modelling with arterial sampling is the gold standard for analysing dynamic PET data...