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Hansen, H. D.

Publications and source records attributed to Hansen, H. D..

4 recordsLinked to original sources

Kinetic models for PET displacement studies

The traditional design of PET target engagement studies is based on a baseline scan and one or more scans after drug administration. We here evaluate an alternative design in which the drug is administered during an on-going scan (i.e., a displacement study). This approach results both in lower radiation exposure and lower costs. Existing kinetic models assume steady state. This condition is not present during a drug displacement and consequently, our aim here was to develop kinetic models for analysing PET displacement data. We modified existing compartment models to accommodate a time-variant increase in occupancy following the pharmacological in-scan intervention. Since this implies the use of differential equations that cannot be solved analytically, we developed instead one approximate and one numerical solution. Through simulations, we show that if the occupancy is relatively high, it can be estimated without bias and with good accuracy. The models were applied to PET data from six pigs where [11C]UCB-J was displaced by intravenous brivaracetam. The dose-occupancy relationship estimated from these scans showed good agreement with occupancies calculated with Lassen plot applied to baseline-block scans of two pigs. In summary, the proposed models provide a framework to determine target occupancy from a single displacement scan.

neuroscience↗

Differential D1 and D2 receptor internalization and recycling induced by amphetamine in vivo

The dopamine system plays a significant role in drug reward and the pathogenesis of addiction. Psychostimulant drugs acutely increase dopamine levels, triggering receptor internalization. In vitro data suggest that dopamine D1 receptors (D1R) recycle, whereas D2 receptors (D2R) degrade in response to activation. Yet, receptor fates in vivo remain unclear. This study bridges in vitro mechanisms and in vivo measurements of stimulant-induced modulation of receptor states using longitudinal multi-modal imaging combined with neuropharmacology. We demonstrate how repeated amphetamine administration differentially modulates D1R vs. D2R signaling in nonhuman primates over 24 hours using simultaneous positron emission tomography and functional magnetic resonance imaging. In contrast to predominantly inhibitory D2R signaling due to an initial amphetamine challenge, excitatory D1R functional signaling prevails three hours later, while D2Rs stay internalized. These results demonstrate differential externalization mechanisms of the D1R and D2R in vivo and a shift in receptor subtype activation after a dopamine surge.

neuroscience↗

Evaluation of the α-synuclein PET radiotracer (d3)-MODAG-001 in pigs

BackgroundA positron emission tomography (PET) radiotracer to neuroimage -synuclein aggregates would be a crucial addition for early diagnosis and treatment development in disorders such as Parkinsons disease, where elevated aggregate levels is a histopathological hallmark. The radiotracer (d3)-[11C]MODAG-001 has recently shown promise for visualization of -synuclein pre-formed fibrils (-PFF) in rodents. We here test the radiotracer in a pig model where proteins are intracerebrally injected immediately before scanning. Four pigs were injected in one hemisphere with 150 {micro}g -PFF, and in the other hemisphere, either 75 {micro}g -PFF or human brain homogenate from either dementia with Lewy bodies (DLB) or Alzheimers disease (AD) was injected. All pigs underwent one or two (d3)-[11C]MODAG-001 PET scans, quantified with the non-invasive Logan graphical analysis using the occipital cortex as a reference region. ResultsThe -PFF and AD homogenate injected brain regions had high uptake of (d3)-[11C]MODAG-001 compared to the occipital cortex or cerebellum. BPND values in 150 {micro}g -PFF injected regions was 0.78, and in the AD homogenate injected regions was 0.73. By contrast, the DLB homogenate injected region did not differ in uptake and clearance compared to the reference regions. The time-activity curves and BPND values in the 150 {micro}g and 75 {micro}g injected region of -PFFs show a dose-dependent effect, and the PET signal could be blocked by pretreatment with unlabeled MODAG-001. ConclusionWe find that both -PFF and AD brain homogenates give rise to increased binding of (d3)-[11C]MODAG-001 when injected into the pig brain. Despite its limited specificity for cerebral -synuclein pathology, (d3)-[11C]MODAG-001 shows promise as a lead tracer for future radiotracer development.

neuroscience↗

PET-BIDS, an extension to the brain imaging data structure for positron emission tomography

The Brain Imaging Data Structure (BIDS) is a standard for organizing and describing neuroimaging datasets. It serves not only to facilitate the process of data sharing and aggregation, but also to simplify the application and development of new methods and software for working with neuroimaging data. Here, we present an extension of BIDS to include positron emission tomography (PET) data (PET-BIDS). We describe the PET-BIDS standard in detail and share several open-access datasets curated following PET-BIDS. Additionally, we highlight several tools which are already available for converting, validating and analyzing PET-BIDS datasets.

neuroscience↗