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  4. In vivo characterization of brain metabolism by 1 H MRS, 13 C MRS and 18 FDG PET reveals significant glucose oxidation of invasively growing glioma cells
 
research article

In vivo characterization of brain metabolism by 1 H MRS, 13 C MRS and 18 FDG PET reveals significant glucose oxidation of invasively growing glioma cells

Lai, Marta  
•
Vassallo, Irene
•
Lanz, Bernard
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2018
International Journal of Cancer

Glioblastoma are notorious for their highly invasive growth, diffusely infiltrating adjacent brain structures that precludes complete resection, and is a major obstacle for cure. To characterize this "invisible" tumor part, we designed a high resolution multimodal imaging approach assessing in vivo the metabolism of invasively growing glioma xenografts in the mouse brain. Animals were subjected longitudinally to Magnetic Resonance Imaging (MRI) and (1) H spectroscopy (MRS) at ultra high field (14.1 Tesla) that allowed the measurement of 16 metabolic biomarkers to characterize the metabolic profiles. As expected, the neuronal functionality was progressively compromised as indicated by decreasing N-acetyl aspartate, glutamate and gamma-aminobutyric acid, and reduced neuronal TCA cycle (-58%) and neurotransmission (-50%). The dynamic metabolic changes observed, captured differences in invasive growth that was modulated by reexpression of the tumor suppressor gene WNT inhibitory factor 1 (WIF1) in the orthotopic xenografts that attenuates invasion. At late stage mice were subjected to (13) C MRS with infusion of [1,6-(13) C]glucose and (18) FDG Positron Emission Tomography (PET) to quantify cell-specific metabolic fluxes involved in glucose metabolism. Most interestingly, this provided the first in vivo evidence for significant glucose oxidation in glioma cells. This suggests that the infiltrative front of glioma does not undergo the glycolytic switch per se, but that environmental triggers may induce metabolic reprogramming of tumor cells.

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Type
research article
DOI
10.1002/ijc.31299
PubMed ID

29417580

Author(s)
Lai, Marta  
Vassallo, Irene
Lanz, Bernard
Poitry-Yamate, Carole
Hamou, Marie-France
Cudalbu, Cristina
Gruetter, Rolf
Hegi, Monika E.
Date Issued

2018

Published in
International Journal of Cancer
Volume

143

Issue

1

Start page

127

End page

138

Subjects

CIBM-AIT

•

CIBM-PET

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
CIBM  
LIFMET  
Available on Infoscience
May 22, 2018
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/146522
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