Department of Imaging Physics, The University of Texas M.D. Anderson Cancer Center, Houston, TX, USA.
GE Healthcare, Dallas, TX, USA.
Med Phys. 2021 Sep;48(9):4900-4908. doi: 10.1002/mp.15107. Epub 2021 Aug 10.
A specialized Helmholtz-style C volume transmit "clamshell" coil is currently being utilized for C excitation in pre-clinical and clinical hyperpolarized C MRI studies aimed at probing the metabolic activity of tumors in various target anatomy. Due to the widespread use of this C clamshell coil design, it is important that the effects of the C clamshell coil B profile on HP signal evolution and quantification are well understood. The goal of this study was to characterize the B field of the C clamshell coil and assess the impact of inhomogeneities on semi-quantitative and quantitative hyperpolarized MR imaging biomarkers of metabolism.
The B field of the C clamshell coil was mapped by hand using a network analyzer equipped with an S-parameter test set. Pharmacokinetic models were used to simulate signal evolution as a function of position-dependent local excitation angles, for various nominal excitation angles, which were assumed to be accurately calibrated at the isocenter. These signals were then quantified according to the normalized lactate ratio (nLac) and the apparent rate constant for the conversion of pyruvate to lactate (k ). The percent difference between these metabolic imaging biomarker maps and the reference value observed at the isocenter of the clamshell coil was calculated to estimate the potential for error due to position within the clamshell coil. Finally, regions were identified within the clamshell coil where deviations in B field inhomogeneity or imaging biomarker errors imparted by the B field were within ±10% of the value at the isocenter.
The B field maps show that a limited volume encompassed by a region measuring approximately 12.9 × 11.5 × 13.4 cm (X-direction, Y-direction, Z-direction) centered in the C clamshell coil will produce deviations in the B field within ±10% of that at the isocenter. For the metabolic imaging biomarkers that we evaluated, the case when the pyruvate excitation angle (θ ) and lactate excitation angle (θ ) were equal to 10° produced the largest volumetric region with deviations within ±10% of the value at the isocenter. Higher excitation angles yielded higher signal and SNR, but the size of the region in which uniform measurements could be collected near the isocenter of the coil was reduced at higher excitation angles. The tradeoff between the size of the homogenous region at the isocenter and signal intensity must be weighed carefully depending on the particular imaging application.
This work identifies regions and optimal excitation angles (θ and θ ) within the C clamshell coil where deviations in B field inhomogeneity or imaging biomarker errors imparted by the B field were within ±10% of the respective value at the isocenter, and thus where excitation angles are reproducible and well-calibrated. Semi-quantitative and quantitative metabolic imaging biomarkers can vary with position in the clamshell coil as a result of B field inhomogeneity, necessitating care in patient positioning and the selection of an excitation angle set that balances reproducibility and SNR performance over the target imaging volume.
目前,一种专门的亥姆霍兹式 C 容积发射“蛤壳”线圈正用于临床前和临床超极化 13 C MRI 研究中 C 激发,旨在探测各种目标解剖结构中肿瘤的代谢活性。由于这种 C 蛤壳线圈设计的广泛使用,因此了解 C 蛤壳线圈 B 轮廓对 HP 信号演化和定量的影响非常重要。本研究的目的是描述 C 蛤壳线圈的 B 场,并评估不均匀性对代谢的半定量和定量极化磁共振成像生物标志物的影响。
使用配备 S 参数测试套件的网络分析仪手动绘制 C 蛤壳线圈的 B 场图。使用药代动力学模型模拟信号随位置相关的局部激发角的演化,针对各种标称激发角,假设在等中心处精确校准。然后根据归一化乳酸比(nLac)和丙酮酸转化为乳酸的表观速率常数(k)对这些信号进行定量。计算这些代谢成像生物标志物图谱与蛤壳线圈等中心观察到的参考值之间的差异百分比,以估计由于在蛤壳线圈内的位置而导致的误差的可能性。最后,确定蛤壳线圈内 B 场不均匀性或 B 场引起的成像生物标志物误差偏离等中心值 10%以内的区域。
B 场图表明,在以大约 12.9×11.5×13.4 cm(X 方向、Y 方向、Z 方向)为中心的 C 蛤壳线圈内的有限体积内,将产生偏离等中心值 10%以内的 B 场。对于我们评估的代谢成像生物标志物,当丙酮酸激发角(θ)和乳酸激发角(θ)等于 10°时,产生了等中心值偏离 10%以内的最大体积区域。更高的激发角产生更高的信号和 SNR,但在更高的激发角下,在接近线圈等中心的位置收集均匀测量的区域的大小减小。根据特定的成像应用,必须仔细权衡等中心同质区域的大小与信号强度之间的权衡。
这项工作确定了 C 蛤壳线圈内的区域和最佳激发角(θ和θ),其中 B 场不均匀性或 B 场引起的成像生物标志物误差偏离等中心值的 10%以内,因此激发角是可重复的且校准良好。由于 B 场不均匀性,半定量和定量代谢成像生物标志物可能会在蛤壳线圈内的位置发生变化,因此需要注意患者的定位以及选择能够在目标成像体积上平衡可重复性和 SNR 性能的激发角集。