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Published on: June 14, 2018
Quantitative Imaging of ATM: PET and Autoradiography Studies Using [11C]AZD1390
Ramya Tokala1, Chi-Hyeon Yoo1, Joseph W Downey1
1Athinoula A. Martinos Center for Biomedical Imaging, Department of Radiology, Massachusetts General Hospital, Harvard Medical School, Charlestown, Massachusetts 02129, United States.
Abstract:
Ataxia-telangiectasia mutated (ATM) kinase plays a crucial role in DNA damage response and has emerged as a promising therapeutic target. AZD1390, an ATM kinase inhibitor developed by AstraZeneca, is currently in phase I clinical trials as a combination therapy with radiation for glioblastoma. Additionally, AZD1390 has been radiolabeled with carbon-11, and its brain penetrability was previously reported. In this study, we investigated in vivo brain uptake and specific binding of [11C]AZD1390 using PET imaging in nonhuman primates (NHP). To assess radiotracer saturability, an in vivo self-competition study was conducted, revealing an unexpected increase in radiotracer uptake after pretreatment with nonradioactive AZD1390, suggesting the involvement of potential efflux mechanisms. Further, in vitro autoradiography studies using competitive and saturation binding using nonhuman primate brain (cortical regions) confirmed the concentration-dependent displaceable and saturable binding of [11C]AZD1390. The binding parameters [Kd (0.23 nM), Ki (0.58 nM), and Bmax (267.0 fmol/mg tissue)] demonstrate the high affinity of [11C]AZD1390 and imply that ATM is present at levels (Bmax) sufficient for reliable quantification in the brain. While AZD1390 may not be ideal for accurately measuring ATM concentrations due to saturable efflux or other dose nonlinearity mechanisms, these findings support the overall feasibility of quantifying ATM in vivo using PET imaging.
Insights
The study evaluated [11C]AZD1390 PET imaging for brain ATM quantification in nonhuman primates. Despite potential efflux issues, findings support in vivo ATM measurement feasibility.
Area of Science:
- Neuroscience
- Pharmacology
- Radiochemistry
Background:
- Ataxia-telangiectasia mutated (ATM) kinase is vital for DNA repair and a therapeutic target.
- AZD1390, an ATM inhibitor, is in clinical trials for glioblastoma.
- Carbon-11 labeled AZD1390 ([11C]AZD1390) shows brain penetrability.
Purpose of the Study:
- To investigate the in vivo brain uptake and specific binding of [11C]AZD1390 using PET in nonhuman primates.
- To assess the saturability and affinity of [11C]AZD1390 binding to ATM in the brain.
- To evaluate the feasibility of quantifying brain ATM levels using PET imaging.
Main Methods:
- Positron emission tomography (PET) imaging in nonhuman primates.
- In vivo self-competition studies with nonradioactive AZD1390.
- In vitro autoradiography with nonhuman primate brain tissue.
Main Results:
- In vivo studies showed unexpected radiotracer uptake changes, suggesting efflux mechanisms.
- [11C]AZD1390 demonstrated concentration-dependent, saturable, and displaceable binding in vitro.
- High affinity (Kd=0.23 nM) and sufficient Bmax (267.0 fmol/mg) for ATM quantification were observed.
Conclusions:
- [11C]AZD1390 exhibits high affinity for ATM in primate brain tissue.
- While dose nonlinearity exists, PET imaging feasibility for in vivo ATM quantification is supported.
- Further research is needed to address potential efflux mechanisms for precise ATM measurement.
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