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Published on: February 28, 2021
Hyperpolarized 13C MR metabolic imaging can detect neuroinflammation in vivo in a multiple sclerosis murine model
Caroline Guglielmetti1,2, Chloé Najac3, Alessandro Didonna4
1Department of Physical Therapy and Rehabilitation Science, University of California, San Francisco, CA 94143.
Abstract:
Proinflammatory mononuclear phagocytes (MPs) play a crucial role in the progression of multiple sclerosis (MS) and other neurodegenerative diseases. Despite advances in neuroimaging, there are currently limited available methods enabling noninvasive detection of MPs in vivo. Interestingly, upon activation and subsequent differentiation toward a proinflammatory phenotype MPs undergo metabolic reprogramming that results in increased glycolysis and production of lactate. Hyperpolarized (HP) 13C magnetic resonance spectroscopic imaging (MRSI) is a clinically translatable imaging method that allows noninvasive monitoring of metabolic pathways in real time. This method has proven highly useful to monitor the Warburg effect in cancer, through MR detection of increased HP [1-13C]pyruvate-to-lactate conversion. However, to date, this method has never been applied to the study of neuroinflammation. Here, we questioned the potential of 13C MRSI of HP [1-13C]pyruvate to monitor the presence of neuroinflammatory lesions in vivo in the cuprizone mouse model of MS. First, we demonstrated that 13C MRSI could detect a significant increase in HP [1-13C]pyruvate-to-lactate conversion, which was associated with a high density of proinflammatory MPs. We further demonstrated that the increase in HP [1-13C]lactate was likely mediated by pyruvate dehydrogenase kinase 1 up-regulation in activated MPs, resulting in regional pyruvate dehydrogenase inhibition. Altogether, our results demonstrate a potential for 13C MRSI of HP [1-13C]pyruvate as a neuroimaging method for assessment of inflammatory lesions. This approach could prove useful not only in MS but also in other neurological diseases presenting inflammatory components.
Insights
Hyperpolarized 13C MRSI detects increased lactate in neuroinflammation, aiding diagnosis of multiple sclerosis (MS) and other diseases. This noninvasive imaging method shows promise for monitoring inflammatory lesions in vivo.
Area of Science:
- Neuroimaging
- Metabolic Imaging
- Neuroinflammation
Background:
- Proinflammatory mononuclear phagocytes (MPs) drive neurodegeneration in diseases like multiple sclerosis (MS).
- Noninvasive in vivo detection of MPs remains challenging.
- Activated MPs exhibit metabolic reprogramming, including increased glycolysis and lactate production (Warburg effect).
Purpose of the Study:
- To investigate the potential of hyperpolarized (HP) 13C magnetic resonance spectroscopic imaging (MRSI) using HP [1-13C]pyruvate to monitor neuroinflammation.
- To assess the feasibility of this technique in the cuprizone mouse model of MS.
Main Methods:
- Utilized HP 13C MRSI with HP [1-13C]pyruvate in a cuprizone mouse model.
- Correlated MRSI-detected pyruvate-to-lactate conversion with MP density and inflammatory markers.
Main Results:
- HP 13C MRSI detected a significant increase in HP [1-13C]pyruvate-to-lactate conversion in the model.
- This metabolic change correlated with a high density of proinflammatory MPs.
- Increased HP [1-13C]lactate was linked to pyruvate dehydrogenase kinase 1 up-regulation and pyruvate dehydrogenase inhibition in activated MPs.
Conclusions:
- HP 13C MRSI of HP [1-13C]pyruvate shows potential as a noninvasive neuroimaging tool for assessing inflammatory lesions.
- This approach could be valuable for diagnosing and monitoring MS and other neuroinflammatory diseases.
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