The ultimate goal of this project is to develop a Positron Emission Tomography (PET) radiotracer for brain imaging of the cyclic nucleotide phosphodiesterase 10A (PDE10A). PDE10A is specifically expressed in the brain with high levels in striatal medium-sized spiny projection neurons (MSN) where it plays a critical role in the regulation of both cyclic guanosine monophosphate (cGMP) and cyclic adenosine monophosphate (cAMP). Abnormal striatal levels of PDE10A affect striatal output and may contribute substantially to the pathophysiology of schizophrenia, Huntington's disease (HD) and other mental disorders. Decreased striatal PDE10A level has been correlated with the severity of HD, while inhibition of PDE10A has been proposed as a novel therapeutic strategy for treating schizophrenia and related conditions. Thus, a PET radiotracer for PDE10A would be a valuable tool for clinical neuroscience research. To achieve the goal of this project, we first radiolabeled a representative PDE10A compound, 2-((4-(1-[11C]methyl-4-(pyridin-4-yl)-1H-pyrazol-3- yl)phenoxy)-methyl)quinoline ([11C]MP-10) with C-11. MP-10 is a high potency PDE10A inhibitor (IC50 = 0.37 nM) with high selectivity (1000 fold) for PDE10A vs. other PDEs and CNS receptors. We also successfully modified the structure of MP-10 to make a fluorine analogue, TuJF103 (IC50 = 0.27 nM). Preliminary biodistribution evaluation of [11C]MP-10 and [18F]TUJF103 in rats, and microPET imaging studies of both radiotracers in monkeys displayed good contrast between the target (striatal) and the reference (cerebellum) region. However, analysis of the time-activity curves of striatum and cerebellum and subsequent metabolite analysis of rat brain and blood indicated the presence of lipophilic radiolabeled metabolites that accumulate non-specifically in the brain. Such metabolites could limit the clinical utility of either [11C]MP-10 or [18F]TUJF103 as novel PET tracers for imaging PDE10A. To overcome such concerns, this proposal will optimize the structure of MP-10 to synthesize new analogues with high affinity and selectivity for PDE10A; radiolabel lead candidates with C-11 or F-18 and then use in vivo methods to validate optimal PET radiotracers for imaging PDE10A in the brain. Consequently, the specific aims of the R21 component include: (1) synthesize new analogues by structural optimization of MP-10; (2) measure the affinities of new analogues in vitro; (3) radiolabel the ligands having high affinities (IC50<15 nM) and high selectivity (> 100 fold) with C-11 or F-18; (4) conduct biodistribution and brain uptake studies of radiotracers in rats to identify at least two promising candidates.
The specific aims of the R33 component will be the continued evaluation of these candidate radiotracers in primates with the goal of identifying a PET tracer suitable for translational clinical evaluation for imaging PDE10A in the brain with PET.

Public Health Relevance

Huntington's disease is a progressive neurological disorder of motor, cognitive, and psychiatric disturbances. It was reported more than 15,000 Americans have HD. At least other 150,000 have a 50% risk of developing the disease and thousands more of their relatives live with the possibility that they might develop HD. A PET radiotracer of PDE10A may help physician to quantify the progression of Huntington Disease based on the PET measurement of PDE10A level in patients with the Huntington disease patients.

Agency
National Institute of Health (NIH)
Institute
National Institute of Mental Health (NIMH)
Type
Exploratory/Developmental Grants Phase II (R33)
Project #
5R33MH092797-05
Application #
8856351
Study Section
Clinical Molecular Imaging and Probe Development (CMIP)
Program Officer
Brady, Linda S
Project Start
2011-02-01
Project End
2017-04-30
Budget Start
2015-05-01
Budget End
2017-04-30
Support Year
5
Fiscal Year
2015
Total Cost
Indirect Cost
Name
Washington University
Department
Radiation-Diagnostic/Oncology
Type
Schools of Medicine
DUNS #
068552207
City
Saint Louis
State
MO
Country
United States
Zip Code
63130
Yue, Xuyi; Dhavale, Dhruva D; Li, Junfeng et al. (2018) Design, synthesis, and in vitro evaluation of quinolinyl analogues for ?-synuclein aggregation. Bioorg Med Chem Lett 28:1011-1019
Yue, Xuyi; Luo, Zonghua; Liu, Hui et al. (2018) Radiosynthesis and evaluation of a fluorine-18 labeled radioligand targeting vesicular acetylcholine transporter. Bioorg Med Chem Lett 28:3425-3430
Jin, Hongjun; Yue, Xuyi; Liu, Hui et al. (2018) Kinetic modeling of [18 F]VAT, a novel radioligand for positron emission tomography imaging vesicular acetylcholine transporter in non-human primate brain. J Neurochem 144:791-804
Jin, Hongjun; Han, Junbin; Resing, Derek et al. (2018) Synthesis and in vitro characterization of a P2X7 radioligand [123I]TZ6019 and its response to neuroinflammation in a mouse model of Alzheimer disease. Eur J Pharmacol 820:8-17
Luo, Zonghua; Rosenberg, Adam J; Liu, Hui et al. (2018) Syntheses and in vitro evaluation of new S1PR1 compounds and initial evaluation of a lead F-18 radiotracer in rodents. Eur J Med Chem 150:796-808
Liu, Chunling; Liu, Hui; Jin, Hongjun et al. (2018) Cholinergic imbalance in lumbar spinal cord of a rat model of multiple sclerosis. J Neuroimmunol 318:29-35
Liu, Hui; Jin, Hongjun; Han, Junbin et al. (2018) Upregulated Sphingosine 1-Phosphate Receptor 1 Expression in Human and Murine Atherosclerotic Plaques. Mol Imaging Biol 20:448-456
Liu, Hui; Jin, Hongjun; Luo, Zonghua et al. (2018) In Vivo Characterization of Two 18F-Labeled PDE10A PET Radioligands in Nonhuman Primate Brains. ACS Chem Neurosci 9:1066-1073
Yue, Xuyi; Jin, Hongjun; Liu, Hui et al. (2017) Synthesis, resolution, and in vitro evaluation of three vesicular acetylcholine transporter ligands and evaluation of the lead fluorine-18 radioligand in a nonhuman primate. Org Biomol Chem 15:5197-5209
Jin, Hongjun; Yang, Hao; Liu, Hui et al. (2017) A promising carbon-11-labeled sphingosine-1-phosphate receptor 1-specific PET tracer for imaging vascular injury. J Nucl Cardiol 24:558-570

Showing the most recent 10 out of 43 publications