? In contrast to the hemodynamic and glucose/oxygen metabolic consequences of altered electrical activity, the neurochemical, neuroenergetic and metabolic basis of brain activation at the neuroglial level is not as well researched in vivo, It is our long-term objective to obtain a comprehensive assessment of cerebral carbohydrate metabolism as it relates to increased brain activity and neuronal/glial compartmentation in the intact brain. Our central hypothesis is that glutamate neurotransmission represents a fraction of total brain glucose consumption and that the malate-aspartate shuttle is a major rate-determining mechanism in oxidative brain glucose metabolism. The overall strategy is to measure glial and neuronal energy metabolism, malate-aspartate shuttle (MAS) activity, brain glycogen metabolism and glucose transport in rats, hibernating squirrels and humans using an emerging new tool, state-of-the-art 13C and 1H NMR spectroscopy at ultra-high magnetic fields, combined with functional MR imaging. The project represents the continuation of our ongoing effort, the outcome of which will be to provide an unprecedented comprehensive understanding of the neurochemical basis of brain function in vivo at the cellular level, with the potential to characterize disease progression long before structural changes are evident in many neurodegenerative and other diseases of the brain, where glutamate has been implicated. ? ?

Agency
National Institute of Health (NIH)
Institute
National Institute of Neurological Disorders and Stroke (NINDS)
Type
Research Project (R01)
Project #
5R01NS038672-07
Application #
7031753
Study Section
Diagnostic Radiology Study Section (RNM)
Program Officer
Babcock, Debra J
Project Start
2000-04-10
Project End
2007-03-31
Budget Start
2006-04-01
Budget End
2007-03-31
Support Year
7
Fiscal Year
2006
Total Cost
$337,861
Indirect Cost
Name
University of Minnesota Twin Cities
Department
Radiation-Diagnostic/Oncology
Type
Schools of Medicine
DUNS #
555917996
City
Minneapolis
State
MN
Country
United States
Zip Code
55455
Tiret, Brice; Shestov, Alexander A; Valette, Julien et al. (2015) Metabolic Modeling of Dynamic (13)C NMR Isotopomer Data in the Brain In Vivo: Fast Screening of Metabolic Models Using Automated Generation of Differential Equations. Neurochem Res 40:2482-92
Deelchand, Dinesh Kumar; Nguyen, Tra-My; Zhu, Xiao-Hong et al. (2015) Quantification of in vivo ³¹P NMR brain spectra using LCModel. NMR Biomed 28:633-41
Deelchand, Dinesh Kumar; Iltis, Isabelle; Henry, Pierre-Gilles (2014) Improved quantification precision of human brain short echo-time (1) H magnetic resonance spectroscopy at high magnetic field: a simulation study. Magn Reson Med 72:20-5
Jeffrey, F Mark; Marin-Valencia, Isaac; Good, Levi B et al. (2013) Modeling of brain metabolism and pyruvate compartmentation using (13)C NMR in vivo: caution required. J Cereb Blood Flow Metab 33:1160-7
Shestov, Alexander A; Valette, Julien; Deelchand, Dinesh K et al. (2012) Metabolic modeling of dynamic brain ¹³C NMR multiplet data: concepts and simulations with a two-compartment neuronal-glial model. Neurochem Res 37:2388-401
Mochel, Fanny; N'Guyen, Tra-My; Deelchand, Dinesh et al. (2012) Abnormal response to cortical activation in early stages of Huntington disease. Mov Disord 27:907-10
Shestov, Alexander A; Emir, Uzay E; Kumar, Anjali et al. (2011) Simultaneous measurement of glucose transport and utilization in the human brain. Am J Physiol Endocrinol Metab 301:E1040-9
Ennis, Kathleen; Deelchand, Dinesh Kumar; Tkac, Ivan et al. (2011) Determination of oxidative glucose metabolism in vivo in the young rat brain using localized direct-detected ¹³C NMR spectroscopy. Neurochem Res 36:1962-8
van de Ven, Kim C C; de Galan, Bastiaan E; van der Graaf, Marinette et al. (2011) Effect of acute hypoglycemia on human cerebral glucose metabolism measured by ¹³C magnetic resonance spectroscopy. Diabetes 60:1467-73
Melø, Torun M; Håberg, Asta K; Risa, Øystein et al. (2011) Tricarboxylic acid cycle activity measured by 13C magnetic resonance spectroscopy in rats subjected to the kaolin model of obstructed hydrocephalus. Neurochem Res 36:1801-8

Showing the most recent 10 out of 46 publications