2021
Methods | 13C MRS Measurements of in Vivo Rates of the Glutamate/Glutamine and GABA/Glutamine Neurotransmitter Cycles
Rothman D, De Feyter H, Mason G, de Graaf R, Hyder F, Behar K. Methods | 13C MRS Measurements of in Vivo Rates of the Glutamate/Glutamine and GABA/Glutamine Neurotransmitter Cycles. 2021, 688-700. DOI: 10.1016/b978-0-12-819460-7.00341-8.Chapters
2020
1772-P: Reversibility of Altered Brain Glucose Kinetics in T2DM
RANGEL E, GUNAWAN F, JIANG L, SAVOYE M, DAI F, ROTHMAN D, MASON G, HWANG J. 1772-P: Reversibility of Altered Brain Glucose Kinetics in T2DM. Diabetes 2020, 69 DOI: 10.2337/db20-1772-p.Peer-Reviewed Original ResearchBrain glucose levelsPoor glycemic controlGlycemic controlGlucose levelsCentral nervous system complicationsNervous system complicationsBrain glucose transportPlasma glucose levelsContinuous glucose monitoringUncontrolled T2DMT2DM subjectsSystem complicationsBMI changeHyperglycemic clampHealthy controlsDiabetes regimenPost interventionHierarchical linear regression modelsGlucose time coursesMagnetic resonance spectroscopyHbA1cGlucose kineticsGlucose monitoringNational InstituteT2DM
2009
Baseline brain energy supports the state of consciousness
Shulman RG, Hyder F, Rothman DL. Baseline brain energy supports the state of consciousness. Proceedings Of The National Academy Of Sciences Of The United States Of America 2009, 106: 11096-11101. PMID: 19549837, PMCID: PMC2708743, DOI: 10.1073/pnas.0903941106.Peer-Reviewed Original ResearchConceptsLoss of consciousnessBrain energyConscious stateHigh-frequency neuronal activityCerebral energy consumptionBrain energy consumptionCerebral energyEnsembles of neuronsRat brainSomatosensory responsesNeuronal activityGamma-band rangeNeuronal propertiesFiring rateSensory stimulationNeuronal signalingPET measurementsAnesthesiaFMRI patternsFMRI activity patternsOxygen consumptionState of consciousnessStimulationBehavioral abilitiesMagnetic resonance spectroscopy
2000
Human Brain β-Hydroxybutyrate and Lactate Increase in Fasting-Induced Ketosis
Pan J, Rothman D, Behar K, Stein D, Hetherington H. Human Brain β-Hydroxybutyrate and Lactate Increase in Fasting-Induced Ketosis. Cerebrovascular And Brain Metabolism Reviews 2000, 20: 1502-1507. PMID: 11043913, DOI: 10.1097/00004647-200010000-00012.Peer-Reviewed Original ResearchConceptsBHB levelsPlasma BHB levelsField magnetic resonance spectroscopyHigh-field magnetic resonance spectroscopyBrain lactateKetogenic dietCalcarine fissureNonfasted stateOccipital lobeHealthy adultsLactate increaseThird dayΒ-hydroxybutyrateKetosisBHB concentrationsBrainBHBGlucose phosphorylationLactate oxidationMagnetic resonance spectroscopy
1997
496 Preliminary assessment of cortical gaba levels in schizophrenics using magnetic resonance spectroscopy
Behar K, Rothman D, D’Souza D, Gil R, Petroff O, Abi-Saab D, Zuzarte E, Hooten M, Petrakis I, Sernyak M, White J, Webb E, Charnay D, Krystal J. 496 Preliminary assessment of cortical gaba levels in schizophrenics using magnetic resonance spectroscopy. Schizophrenia Research 1997, 24: 175-176. DOI: 10.1016/s0920-9964(97)82504-2.Peer-Reviewed Original Research
1996
Human brain GABA levels rise rapidly after initiation of vigabatrin therapy
Petroff O, Rothman D, Behar K, Collins T, Mattson R. Human brain GABA levels rise rapidly after initiation of vigabatrin therapy. Neurology 1996, 47: 1567-1571.. PMID: 8960747, DOI: 10.1212/wnl.47.6.1567.Peer-Reviewed Original ResearchConceptsBrain GABA levelsBrain GABASingle oral doseOral doseGABA levelsSide effectsHuman brain GABA levelsEffective antiepileptic medicationsHours of administrationAntiepileptic medicationsVigabatrin therapyDay dosingIntractable epilepsySerial measurementsOccipital cortexVigabatrinDay 8Day 5GABAGABA transaminasePatientsDoseNext dayHuman brainMagnetic resonance spectroscopyThe effect of gabapentin on brain gamma‐aminobutyric acid in patients with epilepsy
Petroff O, Rothman D, Behar K, Lamoureux D, Mattson R. The effect of gabapentin on brain gamma‐aminobutyric acid in patients with epilepsy. Annals Of Neurology 1996, 39: 95-99. PMID: 8572673, DOI: 10.1002/ana.410390114.Peer-Reviewed Original ResearchConceptsGamma-aminobutyric acidBrain GABA levelsGABA levelsHuman brain GABA levelsBrain gamma-aminobutyric acidHigh-dose gabapentinAntiepileptic drug treatmentEffect of gabapentinPartial epilepsy patientsTreatment of epilepsyMechanism of actionAdjunctive therapyStandard dosesDrug treatmentEpilepsy patientsOccipital cortexGabapentinPatientsClinical useEpilepsyHuman brainMagnetic resonanceTreatmentMagnetic resonance spectroscopyVivo measurements
1995
In Vivo Measurement of Phenylalanine in Human Brain by Proton Nuclear Magnetic Resonance Spectroscopy
Novotny E, Avison M, Herschkowitz N, Petroff O, Prichard J, Seashore M, Rothman D. In Vivo Measurement of Phenylalanine in Human Brain by Proton Nuclear Magnetic Resonance Spectroscopy. Pediatric Research 1995, 37: 244-249. PMID: 7731764, DOI: 10.1203/00006450-199502000-00020.Peer-Reviewed Original ResearchConceptsPhe concentrationsPlasma Phe concentrationsEfficacy of therapyCerebral concentrationsUntreated subjectsCerebral metabolitesNeurometabolic disorderControl studyPKU patientsPlasma PheMagnetic resonance spectroscopyMajor causePhenylketonuriaClinical magnetic resonance imaging systemNuclear magnetic resonance spectroscopyMagnetic resonance imaging systemHuman brainResonance imaging systemDisordersSubjectsImaging systemProton nuclear magnetic resonance spectroscopic studiesMagnetic resonance spectroscopic studiesResonance spectroscopyPHE signal
1994
NMR studies of human brain function
Shulman R, Rothman D, Blamire A. NMR studies of human brain function. Trends In Biochemical Sciences 1994, 19: 522-526. PMID: 7846759, DOI: 10.1016/0968-0004(94)90050-7.Peer-Reviewed Original ResearchConceptsMagnetic resonance imagingPositron emission tomographyUnstimulated subjectsResonance imagingEmission tomographyBrain functionHuman brain functionSensory stimulationVisual stimulationBrain activityHuman brain activityHuman brainStimulationMetabolic rateSignificant improvementMagnetic resonance spectroscopySingle subjectSubjectsEstablished methodVigabatrin: Effects on Human Brain GABA Levels by Nuclear Magnetic Resonance Spectroscopy
Mattson R, Petroff O, Rothman D, Behar K. Vigabatrin: Effects on Human Brain GABA Levels by Nuclear Magnetic Resonance Spectroscopy. Epilepsia 1994, 35: s29-s32. PMID: 8039467, DOI: 10.1111/j.1528-1157.1994.tb05963.x.Peer-Reviewed Original ResearchConceptsBrain GABA levelsGABA levelsHuman brain GABA levelsGeneralized tonic-clonic seizuresTonic-clonic seizuresGamma-aminobutyric acid transaminaseNew antiepileptic drugsElevated brain GABA levelsTimes control valuesLong-term trialsDaily dosageAntiepileptic drugsClinical effectsGABA elevationCerebrospinal fluidSide effectsMagnetic resonance spectroscopyControl valuesIrreversible substrateResonance spectroscopyFirst studyDosageConcentrations 2VigabatrinSeizures
1993
Early temporal variation of cerebral metabolites after human stroke. A proton magnetic resonance spectroscopy study.
Graham G, Blamire A, Rothman D, Brass L, Fayad P, Petroff O, Prichard J. Early temporal variation of cerebral metabolites after human stroke. A proton magnetic resonance spectroscopy study. Stroke 1993, 24: 1891-1896. PMID: 8248973, DOI: 10.1161/01.str.24.12.1891.Peer-Reviewed Original ResearchConceptsAcetyl-aspartate signalProton magnetic resonance spectroscopyCerebral infarctionProton magnetic resonance spectroscopy studyLactate signalAbundant leukocyte infiltrationAcetyl-aspartate peakNonhemorrhagic cerebral infarctionAcute cerebral infarctionDays of strokeMagnetic resonance spectroscopy studyContralateral normal brainClearance of lactateCreatine/phosphocreatineMagnetic resonance spectroscopyLong-term elevationLate deathsHuman strokeSubacute stageLeukocyte infiltrationChronic periodLesion volumeCerebral metabolitesInfarct zoneSecond examination
1992
Cerebral Lactate Turnover after Electroshock: In vivo Measurements by 1H/13C Magnetic Resonance Spectroscopy
Petroff O, Novotny E, Avison M, Rothman D, Alger J, Ogino T, Shulman G, Prichard J. Cerebral Lactate Turnover after Electroshock: In vivo Measurements by 1H/13C Magnetic Resonance Spectroscopy. Cerebrovascular And Brain Metabolism Reviews 1992, 12: 1022-1029. PMID: 1400641, DOI: 10.1038/jcbfm.1992.139.Peer-Reviewed Original ResearchConceptsBlood lactateLactate poolNuclear magnetic resonance spectroscopyMetabolic stateBrain lactateBlood gasesBlood glucoseElevated lactateMagnetic resonance spectroscopyProlonged elevationRabbit brainPerchloric acid extractsPathological conditionsBrain activationBrainResonance spectroscopyLactate turnoverHigh resolution 1H NMRIntracellular pHElectroshockLactateHuman brainVivo 1HSignificant changesAcid extractsSpectroscopic imaging of stroke in humans: histopathology correlates of spectral changes.
Petroff O, Graham G, Blamire A, Al-Rayess M, Rothman D, Fayad P, Brass L, Shulman R, Prichard J. Spectroscopic imaging of stroke in humans: histopathology correlates of spectral changes. Neurology 1992, 42: 1349-54. PMID: 1620345, DOI: 10.1212/wnl.42.7.1349.Peer-Reviewed Original ResearchConceptsCells/mm2Foamy macrophagesElevation of lactateGlial densityNeuropathologic examinationBrain macrophagesHuman strokeHistopathology correlateMacrophage densityInfarctsHigh lactateHistopathologic sectionsStrokeLactate concentrationMedial marginMacrophagesLactate signalMonthsLactate poolWeeksLactateCellular localizationMetabolic turnoverMagnetic resonanceMagnetic resonance spectroscopyProton magnetic resonance spectroscopy of cerebral lactate and other metabolites in stroke patients.
Graham G, Blamire A, Howseman A, Rothman D, Fayad P, Brass L, Petroff O, Shulman R, Prichard J. Proton magnetic resonance spectroscopy of cerebral lactate and other metabolites in stroke patients. Stroke 1992, 23: 333-340. PMID: 1542892, DOI: 10.1161/01.str.23.3.333.Peer-Reviewed Original ResearchConceptsProton magnetic resonance spectroscopyStroke patientsCerebral lactateDeep cerebral infarctsElevated cerebral lactateSmall subcortical infarctsCortical stroke patientsN-acetylaspartate levelsLong-term elevationCerebral infarctsCortical strokeOngoing ischemiaSymptom onsetBrain lactateElevated lactateInitial insultSubcortical infarctsN-acetylaspartateInfarct regionLesion onsetMagnetic resonance spectroscopyInfarctsPatientsFirst weekStroke
1991
13C-NMR measurements of muscle glycogen during low-intensity exercise
Price T, Rothman D, Avison M, Buonamico P, Shulman R. 13C-NMR measurements of muscle glycogen during low-intensity exercise. Journal Of Applied Physiology 1991, 70: 1836-1844. PMID: 2055862, DOI: 10.1152/jappl.1991.70.4.1836.Peer-Reviewed Original ResearchConceptsLow-intensity exerciseMuscle glycogenLight exerciseProtocol 1Blood velocityHours of exerciseMaximum voluntary contractionMin of onsetExercised legNonexercised legFemoral arteryVoluntary contractionGlycogen repletionHeavy exercisePlantar flexionGastrocnemius muscleFemale subjectsGlycogen levelsGlycogen metabolismFive minutesExerciseGlycogenSubjectsMagnetic resonance spectroscopyLeg