Cerebral Ketones Detected by 3T MR Spectroscopy in Patients with High-Grade Glioma on an Atkins-Based Diet.

A Berrington, K C Schreck, B J Barron, L Blair, D D M Lin, A L Hartman, E Kossoff, L Easter, C T Whitlow, Y Jung, F-C Hsu, M C Cervenka, J O Blakeley, P B Barker, R E Strowd

Journal: AJNR. American journal of neuroradiology 2020;40(11):1908-1915

PMID: 31649157

Abstract

BACKGROUND AND PURPOSE

Ketogenic diets are being explored as a possible treatment for several neurological diseases, but the physiologic impact on the brain is unknown. The objective of this study was to evaluate the feasibility of 3T MR spectroscopy to monitor brain ketone levels in patients with high-grade gliomas who were on a ketogenic diet (a modified Atkins diet) for 8 weeks.

MATERIALS AND METHODS

Paired pre- and post-ketogenic diet MR spectroscopy data from both the lesion and contralateral hemisphere were analyzed using LCModel software in 10 patients.

RESULTS

At baseline, the ketone bodies acetone and β-hydroxybutyrate were nearly undetectable, but by week 8, they increased in the lesion for both acetone (0.06 ± 0.03 ≥ 0.27 ± 0.06 IU, = .005) and β-hydroxybutyrate (0.07 ± 0.07 ≥ 0.79 ± 0.32 IU, = .046). In the contralateral brain, acetone was also significantly increased (0.041 ± 0.01 ≥ 0.16 ± 0.04 IU, = .004), but not β-hydroxybutyrate. Acetone was detected in 9/10 patients at week 8, and β-hydroxybutyrate, in 5/10. Acetone concentrations in the contralateral brain correlated strongly with higher urine ketones ( = 0.87, = .001) and lower fasting glucose ( = -0.67, = .03). Acetoacetate was largely undetectable. Small-but-statistically significant decreases in NAA were also observed in the contralateral hemisphere at 8 weeks.

CONCLUSIONS

This study suggests that 3T MR spectroscopy is feasible for detecting small cerebral metabolic changes associated with a ketogenic diet, provided that appropriate methodology is used.

© 2019 by American Journal of Neuroradiology.

Address: From the Russell H. Morgan Departments of Radiology and Radiological Science (A.B., D.D.M.L., P.B.B.).; Neurology (K.C.S., L.B., A.L.H., E.K., M.C.C., J.O.B., R.E.S.).; Institute of Clinical and Translational Research (B.J.B.), Johns Hopkins University School of Medicine, Baltimore, Maryland.; Pediatrics (L.B., A.L.H.).; Clinical and Translational Science Institute (L.E., R.E.S.).; Departments of Radiology (C.T.W., Y.J.).; Biostatistics and Data Science (F.-C.H.), Division of Public Health Sciences.; From the Russell H. Morgan Departments of Radiology and Radiological Science (A.B., D.D.M.L., P.B.B.) [email protected].; F. M. Kirby Research Center for Functional Brain Imaging (P.B.B., R.E.S.), Kennedy Krieger Institute, Baltimore, Maryland.; Departments of Neurology, Hematology and Oncology (R.E.S.), Wake Forest School of Medicine, Winston-Salem, North Carolina.
Bant logo

© Copyright 2026, Nutrition Evidence

NED wishes to thank the following organisations for their support:

We use cookies to improve your experience and analyze site traffic with Google Analytics. By continuing to use our site, you agree to our use of cookies. Learn more.