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[18F]QTFT, a nicotinate-based radiotracer targeting P2Y12 with satisfactory blood‒brain barrier (BBB) permeability
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Ying-Qi Songa, Chunquan Shenga, b, *
Acta Pharmaceutica Sinica B | 2025, 15(2) : 1202 - 1204
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Acta Pharmaceutica Sinica B | 2025, 15(2): 1202-1204
EDITORIAL
[18F]QTFT, a nicotinate-based radiotracer targeting P2Y12 with satisfactory blood‒brain barrier (BBB) permeability
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Ying-Qi Songa, Chunquan Shenga, b, *
Affiliations
  • aKey Laboratory of Tropical Biological Resources of Ministry of Education, School of Pharmaceutical Sciences, Hainan University, Haikou 570228, China
  • bThe Center for Basic Research and Innovation of Medicine and Pharmacy (MOE), School of Pharmacy, Second Military Medical University (Naval Medical University), Shanghai 200433, China
About Author:

E-mail address: (Chunquan Sheng)

doi: 10.1016/j.apsb.2025.02.010
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[18F]QTFT  /  P2Y12 receptor  /  Blood‒brain barrier (BBB)  /  Positron emission tomography (PET)  /  Glioma
Ying-Qi Song, Chunquan Sheng. [18F]QTFT, a nicotinate-based radiotracer targeting P2Y12 with satisfactory blood‒brain barrier (BBB) permeability[J]. Acta Pharmaceutica Sinica B, 2025 , 15 (2) : 1202 -1204 . DOI: 10.1016/j.apsb.2025.02.010
Recently, a novel radiotracer, [18F]QTFT, synthesized by Li's group1 and published in Acta Pharmaceutica Sinica B, was identified as a PET tracer capable of specifically visualize the anti-inflammatory microglia target P2Y12. Compared to other probes, it exhibited high binding affinity and superior blood‒brain barrier (BBB) permeability. Moreover, the authors observed increased [18F]QTFT uptake in lesions in neuroinflammation models, and this selective uptake could be disrupted by QTFT and P2Y12 antagonists. Meanwhile, [18F]QTFT targeted aberrantly expressed P2Y12 in anti-inflammatory microglia to visualize brain lesions in models of glioma, epilepsy, and aging. Interestingly, enhanced [18F]QTFT radioactive signals were observed in the foci of an epileptic patient during a preliminary clinical trial. These findings demonstrated that [18F]QTFT, which targeted P2Y12 overexpressed in anti-inflammatory microglia, may serve as a novel diagnostic tool for imaging a variety of brain diseases.
Microglia are widely distributed throughout the brain and are the main innate immune cells2. They are also the first responders to pathological damage and are considered to be the main defense system of the brain3. Additionally, in the central nervous system (CNS), microglia serve as key regulators of inflammatory responses4. Traditionally, microglial activation is heterogeneous and classified into two opposing phenotypes, including M1-phenotype (neurotoxic) and M2-phenotype (neuroprotective)5,6. It has been reported that pro-inflammatory M1-microglia are detrimental and play an important role in disease progression, while anti-inflammatory M2-microglia contribute to damage repair and remission7. Therefore, visualizing microglia polarization is crucial for understanding the progress of diseases.
Positron emission tomography (PET) is widely used to visualize alterations of microglia due to its ultra-high sensitivity8. Molecular imaging using PET helps monitor the progression of neuroinflammation9. Some PET tracers have been reported to visualize pro-inflammatory microglia for a variety of neuroinflammatory targets, such as purinergic receptors P2X7, mitochondrial 18 kDa translocator protein (TSPO), cyclooxygenase isoenzymes (COX), and colony-stimulating factor 1 receptor (CSF1R)10-12. However, these tracers have significant limitations, including low permeability of the BBB, high non-specific plasma binding, and difficulties in distinguishing phenotypes, leading to a low signal-to-noise ratio in final images13. Therefore, there is an urgent need for the development of PET tracers specifically designed to image anti-inflammatory microglia.
P2Y receptors (P2YR), a class of seven-transmembrane proteins coupled to G proteins, are activated by extracellular signaling molecules or nucleotides, which are secreted by damaged cells or released under ischemic, inflammatory, and hypoxic conditions14. Based on the structural and similarities phylogenetic, P2YR could be divided into two subgroups: the ‘P2Y1R-like’ group (coupled to Gq) and the ‘P2Y12R-like’ group (coupled to Gi)15. Among these, P2Y12 subtype consists of two potential N-linked glycosylation sites and 342 amino acid residues16. Furthermore, P2Y12, a metabolic purinoceptor over-expressed in anti-inflammatory microglia, has been shown to have phenotypically dependent expression 17. Meanwhile, P2Y12 is a promising biomarker in brain tumors, epilepsy, and Alzheimer's disease18-20. However, the development of PET tracers selectively target P2Y12 in the brain has been quite limited.
Recently, the authors designed and synthesized four P2Y12 radiotracers, and then found one of the tracers exhibited favorable computational binding energy with P2Y12 protein by using computer-aided design (Fig. 1). Meanwhile, [18F]QTFT showed strong stability in mice, as no significant release of free 18F or metabolites was observed within 2 h. In the membrane-binding assay, the binding affinity of [18F]QTFT for the P2Y12 receptor was evaluated, yielding a dissociation constant (Kd) of 14.43 nmol/L. Additionally, the cellular uptake of [18F]QTFT in a P2Y12-positive glioblastoma cell increased with incubation time and significantly decreased upon the addition of the P2Y12 inhibitor. [18F]QTFT demonstrated effective BBB penetration, because its endothelial transmission value reached 19.6%. In brain pharmacokinetics, the peak SUV of [18F]QTFT was 1.77 ± 0.27 and the retention level was SUVmean = 0.69 ± 0.11, demonstrating high brain penetration and accumulation. With a half-life of 30.57 min, an ex vivo pharmacokinetic research showed that [18F]QTFT exhibited rapid blood clearance. In a competitive study using a C6 glioma model that overexpresses P2Y12, they found that clopidogrel (a P2Y12 inhibitor) significantly inhibited the uptake of [18F]QTFT by subcutaneous tumors. In summary, [18F]QTFT showed high brain permeability and selective P2Y12 binding properties, making it suitable for further imaging studies.
Compared with the LPS-induced pro-inflammatory group, the expression of P2Y12 was higher in the IL-4-induced anti-inflammatory group, and the PET signal at the lesion site was also increased, indicating that [18F]QTFT also exhibited good targeting specificity against P2Y12in vivo. Similarly, P2Y12 was upregulated only in the acute phase, but not in the chronic phase, resulting in higher [18F]QTFT PET signals in the ipsilateral hippocampus in the acute phase (T/N ratio = 1.81 ± 0.22 at 60 min p.i.), whereas the PET tracer in the latent and chronic epilepsy showed relatively lower accumulation in brain lesions (T/N ratio = 1.14 ± 0.05 and 1.12 ± 0.03, respectively). Aging is a significant contributor to neurodegenerative diseases. The authors also found that P2Y12 expression was reduced in the aging brain compared to the young mice, which could be visualized using [18F]QTFT, indicating a lower uptake. In glioma imaging experiments, it was observed that the target-to-normal (T/N) ratio of the amino acid metabolism imaging agent [18F]FET (1.17 ± 0.02) was lower than that of [18F]QTFT in tumors (1.47 ± 0.01). This finding further demonstrated that [18F]QTFT could specifically image microglia expressing P2Y12. In a pilot clinical trial involving patients with temporal lobe epilepsy, it was found that the signal intensity of dynamic [18F]QTFT PET imaging was high (SUVmean of epileptic lesions was 1.29 ± 0.28). Additionally, [18F]QTFT showed significant BBB permeability, as indicated by a peak SUV in the lesions of 2.50 ± 1.58. These findings suggested that [18F]QTFT could be a valuable tool for localizing lesions in patients with epilepsy and indicated its potential for translational applications.
In this study, the authors designed and synthesized a series of P2Y12-specific radiotracers, with the P2Y12 inhibitor AZD1283 as the lead compound. They retained key binding units, such as the nicotinate group and the hydrogen bond receptor, which interacted with Tyr105 and Lys280 of the P2Y12 receptor through hydrophobic or ππ stacking interactions. Additionally, they selected QTFT for fluorine-18 radiolabeling to develop a P2Y12-specific PET probe, which various brain disease models with P2Y12 expression, effectively circumventing P-gp-mediated efflux and demonstrating significant BBB permeability. However, the study has certain limitations. High uptake and off-target effects of [18F]QTFT in the liver may increase the risk of radiation exposure. Therefore, further optimization is required to enhance its targeting and reduce unintended uptake. Furthermore, the study focused primarily on specific stages of epilepsy, glioma, and aging disease models. The next step should involve evaluating the imaging performance of the probe at various stages of disease progression. Consequently, this study provided a significant reference for imaging in neuroinflammation-related brain diseases, and its potential clinical application should be further explored.
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Year 2025 volume 15 Issue 2
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doi: 10.1016/j.apsb.2025.02.010
  • Receive Date:2025-02-07
  • Online Date:2026-09-17
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  • Received:2025-02-07
  • Revised:2025-02-12
  • Accepted:2025-02-14
Affiliations
    aKey Laboratory of Tropical Biological Resources of Ministry of Education, School of Pharmaceutical Sciences, Hainan University, Haikou 570228, China
    bThe Center for Basic Research and Innovation of Medicine and Pharmacy (MOE), School of Pharmacy, Second Military Medical University (Naval Medical University), Shanghai 200433, China

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表12种不同金属材料的力学参数

Family
属数
Number of
genus
种数
Number of
species
占总种数比例
Percentage of
total species (%)

Genus
种数
Number of
species
占总种数比例
Percentage of total
species (%)
鹅膏菌科Amanitaceae 2 11 5.26 鹅膏菌属 Amanita 10 4.78
小菇科 Mycenaceae 2 12 5.74 丝盖伞属 Inocybe 5 2.39
多孔菌科 Polyporaceae 8 14 6.70 蜡蘑属 Laccaria 5 2.39
红菇科 Russulaceae 3 23 11.00 小皮伞属 Marasmius 6 2.87
小菇属 Mycena 11 5.26
光柄菇属 Pluteus 5 2.39
红菇属 Russula 17 8.13
栓菌属 Trametes 5 2.39
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