Role of [18F]FMISO PET Imaging for the Evaluation of Gliomas: A Comprehensive Literature Review
Abstract
1. Introduction
| Radiopharmaceutical | Mechanism of Uptake |
|---|---|
| [11C]MET | Protein synthesis |
| [18F]FET | Amino acid metabolism |
| [18F]FDG | Glycolysis |
| [18F]PSMA-1007 | Receptor binding |
| [18F]fluciclovine | Amino acid metabolism |
| [18F]DOPA | Amino acid uptake and dopamine synthesis |
| [11C]choline | Membrane replication |
| [18F]FLT | Protein synthesis |
| [68Ga]FAPI | Receptor binding |
2. Materials and Methods
3. Results
3.1. Assessment of Gliomas
3.2. Differential Diagnosis Between Different Gliomas
3.3. Comparison Between [18F]FMISO and Other Radiopharmaceuticals
3.4. Comparison Between [18F]FMISO and MRI
3.5. Correlation with Biomarkers
3.6. Prognosis and Therapy Response
3.7. Miscellanea
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
| [11C]MET | [11C]methionine |
| [18F]FDG | [18F]fluorodeoxyglucose |
| [18F]FLT | [18F]fluoroethyl-L-tyrosine |
| [18F]FMISO | [18F]fluoromisonidazole |
| AUC | Area under the curve |
| BBB | Blood–brain barrier |
| CBV | Cerebral blood flow |
| HGG | High grade glioma |
| hMTV | Volume of [18F]FMISO/[18F]FDG double-positive |
| hTLG | Product between hMTV and [18F]FDG SUVmean |
| HV | Hypoxic volume |
| IDH | Isocitrate dehydrogenase |
| LGG | Low grade glioma |
| MRI | Magnetic resonance imaging |
| OS | Overall survival |
| PCNSL | Primary central nervous system lymphoma |
| PET | Positron emission tomography |
| PFS | Progression-free survival |
| SUV | Standardized uptake value |
| T/B | tissue SUVmax/blood SUV ratio |
| TBR | Tumor-to-blood ratio |
| TNR | Tumor-to-normal ratio |
| VEGFR | Vascular endothelial growth factor receptor |
| WHO | World health organization |
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| First Author [N. Ref.] | Year | Country | Study Design | Setting | N. Glioma Pts. (Glioblastoma) |
|---|---|---|---|---|---|
| Valk PE [53] | 1992 | USA | Retrospective | Pretherapy | 3 (2) |
| Bruehlmeier M [54] | 2004 | Switzerland | Retrospective | Pre- and posttherapy | 9 (7) |
| Rajendran JG [55] | 2004 | USA, Ireland | Retrospective | Pretherapy | 5 (5) |
| Cher LM [56] | 2006 | Australia | Prospective | Pretherapy | 17 (7) |
| Spence AM [57] | 2008 | USA, Ireland | Retrospective | Pre- and posttherapy | 22 (22) |
| Swanson KR [58] | 2009 | USA | Retrospective | Pre- and posttherapy | 24 (24) |
| Szeto MD [59] | 2009 | USA | Retrospective | Pretherapy | 11 (11) |
| Kawai N [60] | 2011 | Japan | Prospective | Pretherapy | 10 (10) |
| Hirata K [61] | 2012 | Japan | Prospective | Pretherapy | 23 (14) |
| Yamamoto Y [62] | 2012 | Japan | Retrospective | Pretherapy | 30 (16) |
| Kawai N [63] | 2014 | Japan, China | Retrospective | Pre- and posttherapy | 32 (20) |
| Barajas RFJ [64] | 2016 | USA | Prospective | Pre- and posttherapy | 4 (0) |
| Gerstner ER [65] | 2016 | USA | Prospective | Pretherapy | 50 (50) |
| Yamaguchi S [66] | 2016 | Japan | Retrospective | Posttherapy | 18 (12) |
| Bekaert L [67] | 2016 | France | Prospective | Pretherapy | 33 (24) |
| Toyonaga T [84] | 2016 | Japan | Retrospective | Pretherapy | 25 (17) |
| Toyonaga T [85] | 2017 | Japan | Retrospective | Pretherapy | 32 (32) |
| Ferreira Da Ponte K [68] | 2017 | France | Prospective | Pretherapy | 23 (23) |
| Preibisch C [69] | 2017 | Germany | Prospective | Pretherapy | 12 (11) |
| Abdo R [70] | 2019 | Canada, France | Prospective | Pretherapy | 9 (9) |
| Abdo R [71] | 2019 | Canada, France | Prospective | Pretherapy | 9 (9) |
| Miyake K [72] | 2020 | Japan | Retrospective | Pretherapy | 113 (63) |
| Muzi M [73] | 2020 | USA, Ireland | Retrospective | Pre- and posttherapy | 72 (69) |
| Abdo R [74] | 2021 | Canada, France | Prospective | Pretherapy | 9 (9) |
| Collet S [75] | 2021 | France | Prospective | Pretherapy | 31 (31) |
| Huang S [76] | 2021 | USA | Prospective | Posttherapy | 33 (33) |
| Suzuki K [77] | 2021 | Japan | Retrospective | Pretherapy | 87 (58) |
| Uchinomura S [78] | 2022 | Japan | Retrospective | Pretherapy | 62 (62) |
| Barajas RFJ [79] | 2022 | USA | Prospective | Posttherapy | 6 (6) |
| Suzuki T [80] | 2023 | Japan | Retrospective | Posttherapy | 7 (7) |
| Wang Y [81] | 2023 | Japan | Prospective | Pretherapy | 35 (22) |
| Okamoto M [82] | 2024 | Japan | Retrospective | Pretherapy | 33 (33) |
| Nehmeh SA [83] | 2025 | USA | Prospective | Pre- and posttherapy | 8 (8) |
| First Author [N. Ref.] | Device | Tracers | Main Findings |
|---|---|---|---|
| Valk PE [53] | PET | [18F]FMISO | [18F]FMISO was able to detect hypoxia in human gliomas in vivo. |
| Bruehlmeier M [54] | PET | [18F]FMISO and [15O]H2O | Late [18F]FMISO images provided a spatial description of hypoxia, independent of BBB disruption and tumor perfusion. |
| Rajendran JG [55] | PET | [18F]FMISO and [18F]FDG | No correlation between hypoxia and glucose metabolism was present. |
| Cher LM [56] | PET | [18F]FMISO and [18F]FDG | [18F]FMISO imaging was able to assess hypoxia and was prognostic for treatment outcomes in the majority of patients. |
| Spence AM [57] | PET | [18F]FMISO | Volume and intensity of hypoxia before radiotherapy were strongly associated with poorer time to progression and survival. |
| Swanson KR [58] | PET | [18F]FMISO | Local hypoxia induces an angiogenic response that later becomes visible on contrast-enhanced MRI. |
| Szeto MD [59] | PET | [18F]FMISO | Biological aggressiveness assessed by serial MRI was linked with hypoxic burden assessed on PET using a novel bio-mathematical model for glioma growth and invasion. |
| Kawai N [60] | PET | [18F]FMISO and [11C]MET | Viable hypoxic tissue assessed by [18F]FMISO PET is related to neovascularization and aggressiveness by [11C]MET PET. |
| Hirata K [61] | PET and PET/CT | [18F]FMISO and [18F]FDG | [18F]FMISO PET had the ability to distinguish glioblastoma from lower grade gliomas. |
| Yamamoto Y [62] | PET/CT | [18F]FMISO | [18F]FMISO PET was a potential tracer to noninvasively assess tumor grading in newly diagnosed gliomas. |
| Kawai N [63] | PET/CT | [18F]FMISO | Preoperative [18F]FMISO uptake is significantly correlated with the expression of VEGF, however with a large overlap of uptake between high- and low-grade glioma. [18F]FMISO PET appeared to be a suitable prognostic biomarker. |
| Barajas RFJ [64] | PET/MR | [18F]FMISO | The presence of pseudoprogression was associated with the absence of hypoxia. A reduction in hypoxic volume was observed concurrent with therapy in all patients with recurrent tumor. |
| Gerstner ER [65] | PET/CT | [18F]FMISO | Increased tumor perfusion, vascular volume, vascular permeability, and hypoxia were negative prognostic markers that could be measured safely and reliably using MRI and [18F]FMISO PET. |
| Yamaguchi S [66] | PET/CT | [18F]FMISO | Recurrent gliomas with decreasing [18F]FMISO accumulation after short-term bevacizumab application could derive a survival benefit. Change in [18F]FMISO PET appearance could identify resistant gliomas. |
| Bekaert L [67] | PET/CT | [18F]FMISO | Tumor hypoxia was associated with the expression of hypoxia markers and was related to angiogenesis. [18F]FMISO uptake was a mark of aggressiveness. |
| Toyonaga T [84] | PET/CT | [18F]FMISO | [18F]FMISO uptake within the lesion indicated the presence of histological micro-necrosis. |
| Toyonaga T [85] | PET/CT | [18F]FMISO and [18F]FDG | Volumes of tumor positive for both tracers were significant predictors for progression-free survival and overall survival. |
| Ferreira Da Ponte K [68] | PET/CT | [18F]FMISO | A significant correlation was found between hypoxia and hypervascularization. |
| Preibisch C [69] | PET | [18F]FMISO | Vascular deoxygenation and tissue hypoxia did not show high spatial correspondence, therefore revealing complementary information. |
| Abdo R [70] | PET/CT | [18F]FMISO | By comparing TBR and TNR with spectral analysis, moderate correlation at specific thresholding values and imaging times were reported. A time of 90 min was demonstrated to be enough to achieve an acceptable tumor contrast. |
| Abdo R [71] | PET/CT | [18F]FMISO | Some differences in defining the hypoxic volumes within a tumor when using TBR with the single static imaging protocol, while the compartmental analysis allowed for the determination of the levels of hypoxia within the tumor sub-volumes. |
| Miyake K [72] | PET/CT | [18F]FMISO, [18F]FDG, [11C]MET, and [18F]FLT | Combined administration of different PET tracers might aid in the preoperative differential diagnosis of gliomas according to the 2016 WHO criteria. |
| Muzi M [73] | PET/CT | [18F]FMISO | SUVpeak, HV and T/Bmax together with age had a significant predictive value when combined in a multivariate prognostic model. Adding selected radiomic features to this model further increased predictive performance. |
| Abdo R [74] | PET/CT | [18F]FMISO | Dynamic PET acquisition adds more accuracy and flexibility in locating the hypoxia regions in glioblastoma multiforme tumors. |
| Collet S [75] | PET/CT | [18F]FMISO and [18F]FLT | Different multiparametric imaging methods had value when used to assess tumor heterogeneity and to define tumor volumes and subvolumes that are likely to be resistant to conventional therapies. |
| Huang S [76] | PET/CT | [18F]FMISO | High hypoxia volume, enhancing and non-enhancing tumor volumes, and srCBV were all inversely correlated to glioblastoma patient outcomes following bevacizumab failure. |
| Suzuki K [77] | PET/CT | [18F]FMISO and [18F]FDG | Tumor hypoxia was informative for prediction of the IDH mutation status, though with low accuracy. |
| Uchinomura S [78] | PET/CT | [18F]FMISO and [18F]FDG | [18F]FMISO PET was as helpful for differentiating PCNSL from glioblastoma as [18F]FDG PET. |
| Barajas RFJ [79] | PET/MR | [18F]FMISO | [18F]FMISO PET/MRI was able to distinguish recurrent tumor from pseudoprogression at the time of presumed disease progression. |
| Suzuki T [80] | PET/CT | [18F]FMISO | [18F]FMISO-PET effectively visualized tumor microenviroment oxygenation after neoadjuvant bevacizumab. Increased tracer accumulation at the time of recurrence suggested that PET might be useful for monitoring the duration of therapy efficacy. |
| Wang Y [81] | PET/CT | [18F]FMISO | [18F]FMISO PET might provide a valuable tool for differentiating between IDH mutation status of 2021 WHO classification grade 3 and 4 adult-type diffuse gliomas. |
| Okamoto M [82] | PET/CT | [18F]FMISO and [18F]FDG | Glucose-6-phosphatase 3 was affluently expressed in glioblastoma tissues with coincidentally high [18F]FDG and [18F]FMISO accumulation. Further, it might work as a prognostic biomarker of glioblastoma. |
| Nehmeh SA [83] | PET/CT | [18F]FMISO and [18F]FLT | Dual [18F]FMISO and [18F]FLT PET can provide detailed characterization of tumor microenvironment and the interaction of multiple hallmarks that yield radioresistance. |
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Dondi, F.; Bellini, P.; Miceli, A.; Lucchini, S.; Viganò, G.L.; Rinaldi, R.; Camoni, L.; Cossandi, M.; Muni, A.; Bertagna, F. Role of [18F]FMISO PET Imaging for the Evaluation of Gliomas: A Comprehensive Literature Review. Diagnostics 2026, 16, 1284. https://doi.org/10.3390/diagnostics16091284
Dondi F, Bellini P, Miceli A, Lucchini S, Viganò GL, Rinaldi R, Camoni L, Cossandi M, Muni A, Bertagna F. Role of [18F]FMISO PET Imaging for the Evaluation of Gliomas: A Comprehensive Literature Review. Diagnostics. 2026; 16(9):1284. https://doi.org/10.3390/diagnostics16091284
Chicago/Turabian StyleDondi, Francesco, Pietro Bellini, Alberto Miceli, Silvia Lucchini, Gian Luca Viganò, Roberto Rinaldi, Luca Camoni, Michela Cossandi, Alfredo Muni, and Francesco Bertagna. 2026. "Role of [18F]FMISO PET Imaging for the Evaluation of Gliomas: A Comprehensive Literature Review" Diagnostics 16, no. 9: 1284. https://doi.org/10.3390/diagnostics16091284
APA StyleDondi, F., Bellini, P., Miceli, A., Lucchini, S., Viganò, G. L., Rinaldi, R., Camoni, L., Cossandi, M., Muni, A., & Bertagna, F. (2026). Role of [18F]FMISO PET Imaging for the Evaluation of Gliomas: A Comprehensive Literature Review. Diagnostics, 16(9), 1284. https://doi.org/10.3390/diagnostics16091284

