European Journal of Nuclear Medicine and Molecular Imaging· 2026Q1
Glioblastomada TSPO-PET sinyallerinin hücresel ve ekstraselüler kompartmanlara dağılımı ve kan-beyin bariyeri (KBB) bozulmasının etkisi
Allocation of TSPO-PET signals to cellular and extracellular compartments in dependence of blood-brain barrier disruption in experimental glioblastoma
- 0atıf
- Q1SCImago
- 2026yıl
Kısa özet
Deneysel glioblastomda TSPO-PET sinyal özgüllüğü erken evre tümörlerde %72 iken, geç evre tümörlerde %59'a düşmektedir; spesifik olmayan alımın kan-beyin bariyeri (KBB) bozulmasından kaynaklandığı ve ekstraselüler alanda lokalize olduğu belirlenmiştir.
Yapay zekâ ile başlık ve abstract'tan üretildi; tam metin okunmaz.
Ana noktalar
- Erken evre glioblastomda TSPO-PET sinyal özgüllüğü %72 iken, geç evre tümörlerde bu oran %59'a düşmektedir.
- KBB bozulmasından kaynaklanan spesifik olmayan TSPO izleyici alımı, ekstraselüler kompartmanda lokalizedir.
- Hücresel TSPO izleyici alımı, analiz edilen tüm hücre kesitlerinde (tümör hücreleri, TAM'lar, kalan hücreler) yüksek özgüllük göstermektedir.
- Blokaj sonrası PET sinyal azalması ile Dekstran yoğunluğu arasında güçlü bir korelasyon (R=-0.824) gözlemlenmiştir, bu da KBB etkisini göstermektedir.
Yapay zekâ ile başlık ve abstract'tan üretildi; tam metin okunmaz.
Özet (abstract)
Abstract Background Translocator protein (TSPO)-PET imaging facilitates monitoring of glioblastoma in preclinical models and patients. However, specificity of TSPO-PET signals remains to be investigated. In this study, we aimed to decipher exact contributions of cellular and extracellular compartments including the impact of blood-brain barrier (BBB) disruption to TSPO-PET signals in an experimental glioblastoma mouse model. Methods Mice with implanted glioblastoma (SB28; n = 36 early-stage, n = 39 late-stage; GFP(+)) were injected with the TSPO tracer [ 18 F]GE-180 (21 MBq ± 1.5 MBq). Dynamic 60 min microPET scans were performed with and without prior blocking by excessive cold radiotracer. Tumors were dissociated, followed by cell sorting of tumor cells, tumor-associated microglia/macrophages (TAMs, CD11b(+)) and non-tumor/non-TAM (i.e. remaining) cells with subsequent gamma emission measures and flow cytometry (scRadiotracing) to calculate radioactivity per single cell. PET signals and single-cell tracer uptake in tumors and non-lesional hemispheres were compared between blocked and unblocked conditions. N = 10 mice were intravenously injected with fluorescent Dextran to investigate BBB disruption by confocal microscopy in correlation with TSPO-PET signals of the same animals. Results TSPO-PET indicated strong but incomplete signal reduction after blocking in tumors (early-stage: -72%; late-stage: -59%, p < 0.001) and contralateral hemispheres (early stage: -65%, late-stage: -63%, p < 0.001) compared to unblocked animals. We found nearly complete blocking of radiotracer uptake across all analyzed cell fractions (tumor cells: -95%, p = 0.0039; TAMs: -98%, p < 0.0001; remaining cells: -99%, p = 0.0033) compared to unblocked mice, regardless of tumor stages. There was a significant correlation of PET signal reduction ( R =-0.824, p = 0.0034) as well as residual PET signal upon blocking ( R = 0.809, p = 0.0046) with Dextran intensity. Conclusion Specificity of TSPO-PET signals in experimental glioblastoma reaches 72% in early-stage tumors, but decreases to 59% in late-stage SB28 tumors, due to progressive contributions of BBB disruption. Non-specific TSPO tracer uptake is driven by BBB disruption and fully allocated to the extracellular compartment, whereas cellular TSPO tracer uptake shows strong specificity.
Yazarların özeti; kaynağından alınmıştır. European Journal of Nuclear Medicine and Molecular Imaging, 2026 · DOI ↗
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Alan: Genetik (Tıp)
GeneticsMedicine