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PET Imaging of Neuroinflammation Using [11C]DPA-713 in a Mouse Model of Ischemic Stroke
Published on: June 14, 2018
Tracking the inflammatory response in stroke in vivo by sensing the enzyme myeloperoxidase
Michael O Breckwoldt1, John W Chen, Lars Stangenberg
1Center for Systems Biology, Massachusetts General Hospital, Harvard Medical School, CNY-149, 13th Street, Charlestown, MA 02129, USA.
Abstract:
Inflammation can extend ischemic brain injury and adversely affect outcome in experimental animal models. A key difficulty in translating animal studies to humans is the lack of a definitive method to confirm and track inflammation in the brain in vivo. Myeloperoxidase (MPO), a key inflammatory enzyme secreted by activated neutrophils and macrophages/microglia, can generate highly reactive oxygen species to cause additional damage in cerebral ischemia. We report here that a functional, enzyme-activatable MRI agent can accurately track the oxidative activity of MPO noninvasively in stroke in living animals. We found that MPO is widely distributed in ischemic tissues, correlates positively with infarct size, and is detected even 3 weeks postinfarction. The peak level of MPO activity, determined by activation of the MPO-sensing agent in vivo and confirmed by MPO activity and quantitative RT-PCR assays, occurred on day 3 after ischemia. Both neutrophils and macrophages/microglia contribute to secrete MPO in the ischemic brain, although neutrophils peak earlier (days 1-3) whereas macrophages/microglia are most abundant later (days 3-7). In contrast to the conventional MRI agent diethylenetriamine-pentatacetate gadolinium, which reports blood-brain barrier disruption, MPO imaging is able to additionally track MPO activity and confirm inflammation on the molecular level in vivo, information that was previously only possible to obtain on ex vivo brain sections and impossible to assess in living human patients. Our findings could allow efficient noninvasive serial screening of therapies targeting inflammation and the use of MPO imaging as an imaging biomarker to risk-stratify patients.
Insights
A novel MRI agent can noninvasively track myeloperoxidase (MPO) activity in stroke, confirming brain inflammation in vivo. This MPO imaging correlates with infarct size and aids in assessing treatment efficacy.
Area of Science:
- Neuroscience
- Medical Imaging
- Biochemistry
Background:
- Cerebral ischemia exacerbates brain injury through inflammation.
- Tracking in vivo brain inflammation noninvasively is a significant challenge in stroke research.
- Myeloperoxidase (MPO), an enzyme from activated immune cells, contributes to oxidative damage in ischemic stroke.
Purpose of the Study:
- To develop and validate an enzyme-activatable MRI agent for noninvasive tracking of MPO activity in vivo.
- To assess the correlation between MPO activity, infarct size, and immune cell infiltration in a stroke model.
- To evaluate the potential of MPO imaging as a biomarker for stroke inflammation and therapy screening.
Main Methods:
- Development of a functional, enzyme-activatable MRI contrast agent targeting MPO.
- In vivo MRI studies in animal models of stroke to track MPO activity.
- Ex vivo validation using MPO activity assays and quantitative RT-PCR.
Main Results:
- The MRI agent accurately tracked MPO oxidative activity noninvasively in living animals with stroke.
- MPO was widely distributed in ischemic tissues, positively correlated with infarct size, and detectable up to 3 weeks post-infarction.
- Peak MPO activity was observed on day 3 post-ischemia, with contributions from both neutrophils and macrophages/microglia at different time points.
Conclusions:
- MPO-specific MRI provides a novel method for in vivo molecular imaging of inflammation in stroke.
- This technique offers advantages over conventional MRI by tracking MPO activity, not just blood-brain barrier disruption.
- MPO imaging holds promise for noninvasive screening of anti-inflammatory therapies and risk stratification of stroke patients.
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