Molecular Targets for PET Imaging of Activated Microglia: The Current Situation and Future Expectations
Claire Tronel1, Bérenger Largeau2, Maria Joao Santiago Ribeiro3,4
1INSERM U930, Université François Rabelais de Tours, 10 boulevard Tonnelé, 37032 Tours, France. claire.tronel@univ-tours.fr.
Abstract:
Microglia, as cellular mediators of neuroinflammation, are implicated in the pathogenesis of a wide range of neurodegenerative diseases. Positron emission tomography (PET) imaging of microglia has matured over the last 20 years, through the development of radiopharmaceuticals targeting several molecular biomarkers of microglial activation and, among these, mainly the translocator protein-18 kDa (TSPO). Nevertheless, current limitations of TSPO as a PET microglial biomarker exist, such as low brain density, even in a neurodegenerative setting, expression by other cells than the microglia (astrocytes, peripheral macrophages in the case of blood brain barrier breakdown), genetic polymorphism, inducing a variation for most of TSPO PET radiopharmaceuticals' binding affinity, or similar expression in activated microglia regardless of its polarization (pro- or anti-inflammatory state), and these limitations narrow its potential interest. We overview alternative molecular targets, for which dedicated radiopharmaceuticals have been proposed, including receptors (purinergic receptors P2X7, cannabinoid receptors, α7 and α4β2 nicotinic acetylcholine receptors, adenosine 2A receptor, folate receptor β) and enzymes (cyclooxygenase, nitric oxide synthase, matrix metalloproteinase, β-glucuronidase, and enzymes of the kynurenine pathway), with a particular focus on their respective contribution for the understanding of microglial involvement in neurodegenerative diseases. We discuss opportunities for these potential molecular targets for PET imaging regarding their selectivity for microglia expression and polarization, in relation to the mechanisms by which microglia actively participate in both toxic and neuroprotective actions in brain diseases, and then take into account current clinicians' expectations.
Insights
Limitations in translocator protein-18 kDa (TSPO) PET imaging for microglia highlight the need for alternative biomarkers. This review explores novel targets for better understanding neuroinflammation in neurodegenerative diseases.
Area of Science:
- Neuroscience
- Medical Imaging
- Molecular Biology
Background:
- Microglia mediate neuroinflammation in neurodegenerative diseases.
- Positron emission tomography (PET) imaging of microglia has advanced, primarily using translocator protein-18 kDa (TSPO) radiopharmaceuticals.
- TSPO has limitations as a biomarker, including low brain density, non-specific binding, and inability to distinguish microglial polarization.
Purpose of the Study:
- To review alternative molecular targets for PET imaging of microglia beyond TSPO.
- To assess the potential of these targets in understanding microglial roles in neurodegenerative diseases.
- To evaluate targets based on selectivity for microglia and polarization states.
Main Methods:
- Literature review of PET imaging biomarkers for microglia.
- Analysis of alternative molecular targets, including receptors and enzymes.
- Discussion of the contribution of these targets to understanding microglial involvement in neurodegeneration.
Main Results:
- Several alternative targets show promise, including purinergic receptors (P2X7), cannabinoid receptors, nicotinic acetylcholine receptors (α7, α4β2), adenosine 2A receptor, and folate receptor β.
- Enzymatic targets include cyclooxygenase, nitric oxide synthase, matrix metalloproteinase, β-glucuronidase, and kynurenine pathway enzymes.
- These targets offer potential for improved selectivity and distinction of microglial activation states.
Conclusions:
- Alternative molecular targets offer significant opportunities to overcome TSPO limitations in PET imaging of neuroinflammation.
- These novel targets can enhance our understanding of microglia's dual role (toxic and neuroprotective) in brain diseases.
- Future PET imaging development should focus on targets with high selectivity for microglial polarization.


