Nuclear magnetic resonance spectroscopy.
1H-1 MR spectroscopy revealed normal metabolite levels, except for increased PHE levels.
2To the authors' knowledge, MR spectroscopy has never been used to investigate NMO.
3Proton MR spectroscopy in one child showed elevated white matter myo-inositol.
4Interest has been focused mainly on information provided by MR imaging and MR spectroscopy.
5All patients underwent proton MR spectroscopy at short echo times.
6Conclusions: In vivo proton MR spectroscopy, helps in tissue characterization of intracranial mass lesions.
7Conclusion: There is good correlation between MR spectroscopy metabolite ratios and a patient's clinical status.
8Proton MR spectroscopy with short echo times helps detect early abnormalities in clinically asymptomatic patients.
9Baseline proton MR spectroscopy showed a slight decrease in N-acetylaspartate and a normal choline level.
10MR spectroscopy(MRS) is a powerful method to evaluate brain metabolism directly and non-invasively.
11Liver fat was determined with hydrogen 1 MR spectroscopy.
12Forty patients were studied with H-1 MR spectroscopy.
13Proof-of-principle in vivo MR spectroscopy and functional MRI experiments were also demonstrated with the combined scanner.
14Blood Phe levels determined by MR spectroscopy (MRS) and ion-exchange chromatography showed excellent correlation.
15MR spectroscopy is also considered, with an overview of key metabolites and how they may be interpreted.
16Conclusion: H-1 MR spectroscopy can be used to image and noninvasively quantify total creatine in human muscle.
Translations for mr spectroscopy