Imaging of brain oxygenation with magnetic resonance imaging: A validation with positron emission tomography in the healthy and tumoural brain

被引:20
作者
Valable, Samuel [1 ]
Corroyer-Dulmont, Aurelien [1 ]
Chakhoyan, Ararat [1 ]
Durand, Lucile [1 ]
Toutain, Jerome [1 ]
Divoux, Didier [1 ]
Barre, Louisa [2 ]
MacKenzie, Eric T. [1 ]
Petit, Edwige [1 ]
Bernaudin, Myriam [1 ]
Touzani, Omar [1 ]
Barbier, Emmanuel L. [3 ,4 ]
机构
[1] Normandie Univ, UNICAEN, CEA,CNRS, ISTCT,CERVOxy Grp, Caen, France
[2] Normandie Univ, UNICAEN, CEA,CNRS, ISTCT,LDM TEP Grp, Caen, France
[3] INSERM, U1216, Grenoble, France
[4] Univ Grenoble Alpes, Grenoble Inst Neurosci, Grenoble, France
关键词
Hypoxia; oxygenation; glioblastoma; magnetic resonance imaging; positron emission tomography; rat; NEAR-INFRARED SPECTROSCOPY; CEREBRAL-BLOOD-FLOW; ANTIANGIOGENIC TREATMENT; TISSUE OXYGENATION; HUMAN GLIOMA; IN-VIVO; HYPOXIA; RAT; PET; PENUMBRA;
D O I
10.1177/0271678X16671965
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
The partial pressure in oxygen remains challenging to map in the brain. Two main strategies exist to obtain surrogate measures of tissue oxygenation: the tissue saturation studied by magnetic resonance imaging (StO2-MRI) and the identification of hypoxia by a positron emission tomography (PET) biomarker with 3-[F-18]fluoro-1-(2-nitro-1-imidazolyl)-2-propanol ([F-18]-FMISO) as the leading radiopharmaceutical. Nonetheless, a formal validation of StO2-MRI against FMISO-PET has not been performed. The objective of our studies was to compare the two approaches in (a) the normal rat brain when the rats were submitted to hypoxemia; (b) animals implanted with four tumour types differentiated by their oxygenation. Rats were submitted to normoxic and hypoxemic conditions. For the brain tumour experiments, U87-MG, U251-MG, 9L and C6 glioma cells were orthotopically inoculated in rats. For both experiments, StO2-MRI and [F-18]-FMISO PET were performed sequentially. Under hypoxemia conditions, StO2-MRI revealed a decrease in oxygen saturation in the brain. Nonetheless, [F-18]-FMISO PET, pimonidazole immunohistochemistry and molecular biology were insensitive to hypoxia. Within the context of tumours, StO2-MRI was able to detect hypoxia in the hypoxic models, mimicking [F-18]-FMISO PET with high sensitivity/specificity. Altogether, our data clearly support that, in brain pathologies, StO2-MRI could be a robust and specific imaging biomarker to assess hypoxia.
引用
收藏
页码:2584 / 2597
页数:14
相关论文
共 38 条
[1]   Diffusion and perfusion correlates of the 18F-MISO PET lesion in acute stroke: pilot study [J].
Alawneh, Josef A. ;
Moustafa, Ramez R. ;
Marrapu, S. Tulasi ;
Jensen-Kondering, Ulf ;
Morris, Rhiannon S. ;
Jones, P. Simon ;
Aigbirhio, Franklin I. ;
Fryer, Tim D. ;
Carpenter, T. Adrian ;
Warburton, Elizabeth A. ;
Baron, Jean-Claude .
EUROPEAN JOURNAL OF NUCLEAR MEDICINE AND MOLECULAR IMAGING, 2014, 41 (04) :736-744
[2]  
Baron JC, 1999, STROKE, V30, P1150
[3]   Brain genomic response following hypoxia and re-oxygenation in the neonatal rat - Identification of genes that might contribute to hypoxia-induced ischemic tolerance [J].
Bernaudin, M ;
Tang, Y ;
Reilly, M ;
Petit, E ;
Sharp, FR .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2002, 277 (42) :39728-39738
[4]   Reduced CMRO2 and Cerebrovascular Reserve in Patients With Severe Intracranial Arterial Stenosis: A Combined Multiparametric qBOLD Oxygenation and BOLD fMRI Study [J].
Bouvier, Julien ;
Detante, Olivier ;
Tahon, Florence ;
Attye, Arnaud ;
Perret, Thomas ;
Chechin, David ;
Barbieux, Marianne ;
Boubagra, Kamel ;
Garambois, Katia ;
Tropres, Irene ;
Grand, Sylvie ;
Barbier, Emmanuel L. ;
Krainik, Alexandre .
HUMAN BRAIN MAPPING, 2015, 36 (02) :695-706
[5]   Changes in Brain Tissue Oxygenation After Treatment of Diffuse Traumatic Brain Injury by Erythropoietin [J].
Bouzat, Pierre ;
Millet, Anne ;
Boue, Yvonnick ;
Pernet-Gallay, Karin ;
Trouve-Buisson, Thibaut ;
Gaide-Chevronnay, Lucie ;
Barbier, Emmanuel L. ;
Payen, Jean-Francois .
CRITICAL CARE MEDICINE, 2013, 41 (05) :1316-1324
[6]   A robotic system for 18F-FMISO PET-guided intratumoral pO2 measurements [J].
Chang, Jenghwa ;
Wen, Bixiu ;
Kazanzides, Peter ;
Zanzonico, Pat ;
Finn, Ronald D. ;
Fichtinger, Gabor ;
Ling, C. Clifton .
MEDICAL PHYSICS, 2009, 36 (11) :5301-5309
[7]   Tissue oxygen saturation mapping with magnetic resonance imaging [J].
Christen, Thomas ;
Bouzat, Pierre ;
Pannetier, Nicolas ;
Coquery, Nicolas ;
Moisan, Anaick ;
Lemasson, Benjamin ;
Thomas, Sebastien ;
Grillon, Emmanuelle ;
Detante, Olivier ;
Remy, Chantal ;
Payen, Jean-Francois ;
Barbier, Emmanuel Luc .
JOURNAL OF CEREBRAL BLOOD FLOW AND METABOLISM, 2014, 34 (09) :1550-1557
[8]   Evaluation of a quantitative blood oxygenation level-dependent (qBOLD) approach to map local blood oxygen saturation [J].
Christen, Thomas ;
Lemasson, Benjamin ;
Pannetier, Nicolas ;
Farion, Regine ;
Segebarth, Christoph ;
Remy, Chantal ;
Barbier, Emmanuel L. .
NMR IN BIOMEDICINE, 2011, 24 (04) :393-403
[9]   Multimodal imaging based on MRI and PET reveals [18F]FLT PET as a specific and early indicator of treatment efficacy in a preclinical model of recurrent glioblastoma [J].
Corroyer-Dulmont, Aurelien ;
Peres, Elodie A. ;
Gerault, Aurelie N. ;
Savina, Ariel ;
Bouquet, Fanny ;
Divoux, Didier ;
Toutain, Jerome ;
Ibazizene, Meziane ;
MacKenzie, Eric T. ;
Barre, Louisa ;
Bernaudin, Myriam ;
Petit, Edwige ;
Valable, Samuel .
EUROPEAN JOURNAL OF NUCLEAR MEDICINE AND MOLECULAR IMAGING, 2016, 43 (04) :682-694
[10]   Imaging modalities to assess oxygen status in glioblastoma [J].
Corroyer-Dulmont, Aurelien ;
Chakhoyan, Ararat ;
Collet, Solene ;
Durand, Lucile ;
MacKenzie, Eric T. ;
Petit, Edwige ;
Bemaudin, Myriam ;
Touzani, Omar ;
Valable, Samuel .
FRONTIERS IN MEDICINE, 2015, 2