de Graaf Robin A, Brown Peter B, McIntyre Scott, Nixon Terence W, Behar Kevin L, Rothman Douglas L
Magnetic Resonance Research Center, Yale University, School of Medicine, New Haven, Connecticut 06520-8043, USA.
Magn Reson Med. 2006 Aug;56(2):386-94. doi: 10.1002/mrm.20946.
Comprehensive and quantitative measurements of T1 and T2 relaxation times of water, metabolites, and macromolecules in rat brain under similar experimental conditions at three high magnetic field strengths (4.0 T, 9.4 T, and 11.7 T) are presented. Water relaxation showed a highly significant increase (T1) and decrease (T2) with increasing field strength for all nine analyzed brain structures. Similar but less pronounced effects were observed for all metabolites. Macromolecules displayed field-independent T2 relaxation and a strong increase of T1 with field strength. Among other features, these data show that while spectral resolution continues to increase with field strength, the absolute signal-to-noise ratio (SNR) in T1/T2-based anatomical MRI quickly levels off beyond approximately 7 T and may actually decrease at higher magnetic fields.
本文展示了在三种高磁场强度(4.0 T、9.4 T和11.7 T)下,于相似实验条件下对大鼠脑内水、代谢物和大分子的T1和T2弛豫时间进行的全面定量测量。对于所有九个分析的脑结构,随着场强增加,水弛豫显示出T1显著增加而T2显著降低。对所有代谢物观察到类似但不太明显的效应;大分子表现出场强无关的T2弛豫以及T1随场强强烈增加。这些数据表明,虽然光谱分辨率继续随场强增加,但基于T1/T2的解剖MRI中的绝对信噪比(SNR)在超过约7 T后迅速趋于平稳,并且在更高磁场下实际上可能降低等其他特点。