Concepedia

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3D <sup>31</sup>P MR spectroscopic imaging of the human brain at 3 T with a <sup>31</sup>P receive array: An assessment of <sup>1</sup>H decoupling, T<sub>1</sub> relaxation times, <sup>1</sup>H‐<sup>31</sup>P nuclear Overhauser effects and NAD<sup>+</sup>

28

Citations

45

References

2019

Year

Abstract

<sup>31</sup> P MR spectroscopic imaging (MRSI) is a versatile technique to study phospholipid precursors and energy metabolism in the healthy and diseased human brain. However, mainly due to its low sensitivity, <sup>31</sup> P MRSI is currently limited to research purposes. To obtain 3D <sup>31</sup> P MRSI spectra with improved signal-to-noise ratio on clinical 3 T MR systems, we used a coil combination consisting of a dual-tuned birdcage transmit coil and a <sup>31</sup> P eight-channel phased-array receive insert. To further increase resolution and sensitivity we applied WALTZ4 <sup>1</sup> H decoupling and continuous wave nuclear Overhauser effect (NOE) enhancement and acquired high-quality MRSI spectra with nominal voxel volumes of ~ 17.6 cm<sup>3</sup> (effective voxel volume ~ 51 cm<sup>3</sup> ) in a clinically relevant measurement time of ~ 13 minutes, without exceeding SAR limits. Steady-state NOE enhancements ranged from 15 ± 9% (γ-ATP) and 33 ± 3% (phosphocreatine) to 48 ± 11% (phosphoethanolamine). Because of these improvements, we resolved and detected all <sup>31</sup> P signals of metabolites that have also been reported for ultrahigh field strengths, including resonances for NAD<sup>+</sup> , NADH and extracellular inorganic phosphate. T<sub>1</sub> times of extracellular inorganic phosphate were longer than for intracellular inorganic phosphate (3.8 ± 1.4s vs 1.8 ± 0.65 seconds). A comparison of measured T<sub>1</sub> relaxation times and NOE enhancements at 3 T with published values between 1.5 and 9.4 T indicates that T<sub>1</sub> relaxation of <sup>31</sup> P metabolite spins in the human brain is dominated by dipolar relaxation for this field strength range. Even although intrinsic sensitivity is higher at ultrahigh fields, we demonstrate that at a clinical field strength of 3 T, similar <sup>31</sup> P MRSI information content can be obtained using a sophisticated coil design combined with <sup>1</sup> H decoupling and NOE enhancement.

References

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