Di Costanzo Alfonso, Trojsi F, Tosetti M, Giannatempo G M, Nemore F, Piccirillo M, Bonavita S, Tedeschi G, Scarabino T
Department of Neurological Sciences, Second University of Naples, Piazza L. Miraglia 2, 80138 Naples, Italy.
Eur J Radiol. 2003 Nov;48(2):146-53. doi: 10.1016/j.ejrad.2003.08.009.
Proton magnetic resonance spectroscopy (1H-MRS) of the brain reveals specific biochemical information about cerebral metabolites, which may support clinical diagnoses and enhance the understanding of neurological disorders. The advantages of performing 1H-MRS at higher field strengths include better signal to noise ratio (SNR) and increased spectral, spatial and temporal resolution, allowing the acquisition of high quality, easily quantifiable spectra in acceptable imaging times. In addition to improved measurement precision of N-acetylaspartate, choline, creatine and myo-inositol, high-field systems allow the high-resolution measurement of other metabolites, such as glutamate, glutamine, gamma-aminobutyric acid, scyllo-inositol, aspartate, taurine, N-acetylaspartylglutamate, glucose and branched amino acids, thus extending the range of metabolic information. However, these advantages may be hampered by intrinsic field-dependent technical difficulties, such as decreased T2 signal, chemical shift dispersion errors, J-modulation anomalies, increased magnetic susceptibility, eddy current artifacts, limitations in the design of homogeneous and sensitive radiofrequency (RF) coils, magnetic field instability and safety issues. Several studies demonstrated that these limitations could be overcome, suggesting that the appropriate optimization of high-field 1H-MRS would expand the application in the fields of clinical research and diagnostic routine.
脑部的质子磁共振波谱(1H-MRS)揭示了有关脑代谢物的特定生化信息,这可能有助于临床诊断并增进对神经系统疾病的理解。在更高场强下进行1H-MRS的优势包括更好的信噪比(SNR)以及更高的光谱、空间和时间分辨率,从而能够在可接受的成像时间内采集高质量、易于量化的波谱。除了提高对N-乙酰天门冬氨酸、胆碱、肌酸和肌醇的测量精度外,高场系统还能对其他代谢物进行高分辨率测量,如谷氨酸、谷氨酰胺、γ-氨基丁酸、异肌醇、天冬氨酸、牛磺酸、N-乙酰天门冬氨酰谷氨酸、葡萄糖和支链氨基酸,从而扩展了代谢信息的范围。然而,这些优势可能会受到内在的场依赖技术难题的阻碍,如T2信号降低、化学位移分散误差、J调制异常、磁化率增加、涡流伪影、均匀且灵敏的射频(RF)线圈设计的局限性、磁场不稳定性和安全问题。多项研究表明这些局限性是可以克服的,这表明对高场1H-MRS进行适当优化将扩大其在临床研究和诊断常规领域的应用。