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ABSTRACT: Purpose
The purpose of this study was to investigate the effect of magnetization exchange on the measurement of tryptophan and NAD+ T1 relaxation times and to determine the magnetization exchange rates with a two-spin system model using downfield 1H MRS spectroscopy at 7 T in human brain.Methods
We collected downfield 1H MRS spectra in the human brain of eight healthy volunteers using a spectrally selective single-slice sequence (excitation window: 9.7 ± 2 ppm) at 7 T. Alternating selective and broadband saturation recovery experiments were performed to probe magnetization transfer-dependent changes in T1 recovery. The apparent T1 was modeled independently for each experiment for the tryptophan resonance at 10.1 ppm and for the NAD+ resonances at 9.3, 9.1, and 8.9 ppm. The magnetization exchange rate was modeled explicitly using a two-spin model to fit both experiments simultaneously.Results
The apparent T1 relaxation times measured from broadband saturation recovery experiments were significantly longer for each resonance compared to those measured from selective saturation (p < 0.001). The ratio of broadband to selective T1 was significantly larger for tryptophan than NAD+ (TRP: 19 ± 6 vs. NAD+: 9 ± 3; p < 0.01). Using the two-spin model, we modeled the T1 of each resonance (ms): T1,TRP = 622.3 ± 405.5; T1,NAD,H2 = 924.9 ± 233.7; T1,NAD,H6 = 1800.0 ± 985.5; T1,NAD,H4 = 2057.3 ± 573.5. The chemical exchange rate of tryptophan was 12.3 ± 3.1 Hz; the cross-relaxation rates of NAD+ were (Hz): σNAD,H2 = 5.7 ± 1.6, σNAD,H6 = 3.3 ± 0.8, and σNAD,H4 = 3.0 ± 1.5. The tryptophan exchange rate was significantly faster than the rates for NAD+ (p < 0.001).Conclusion
Tryptophan chemical exchange and NAD+ cross-relaxation with water can be quantified in vivo in human brain at 7 T using downfield spectroscopy.
SUBMITTER: Swago S
PROVIDER: S-EPMC12746366 | biostudies-literature | 2026 Mar
REPOSITORIES: biostudies-literature

Magnetic resonance in medicine 20251014 3
<h4>Purpose</h4>The purpose of this study was to investigate the effect of magnetization exchange on the measurement of tryptophan and NAD<sup>+</sup> T<sub>1</sub> relaxation times and to determine the magnetization exchange rates with a two-spin system model using downfield <sup>1</sup>H MRS spectroscopy at 7 T in human brain.<h4>Methods</h4>We collected downfield <sup>1</sup>H MRS spectra in the human brain of eight healthy volunteers using a spectrally selective single-slice sequence (excita ...[more]