Department of Medical Imaging and Radiological Sciences, Chang Gung University, Taoyuan 33305, Taiwan.
Med Phys. 2011 Feb;38(2):802-9. doi: 10.1118/1.3534197.
The Weisskoff model has been widely applied for correcting the T1 effect of the contrast agent leakage in the measured dynamic susceptibility contrast (DSC)-MRI signals. This study aimed to modify the Weisskoff model for the inclusion of both T1 and T2 effects of the contrast agent extravasation.
A two-compartment model was proposed and implemented into the original Weisskoff model to describe the combined T1 and T2 effects from the contrast agent leakage in the measured DSC-MRI signals. A computer simulation was performed to evaluate the dependence of T, versus T2 dominance on imaging parameter, field strength, baseline T1, and severity of the leakage. The modified Weisskoff model was employed to correct the relative cerebral blood volume (rCBV) maps in three patients with brain tumors to demonstrate its use.
The resultant equation had the same mathematical form as the original model, but with a different expression for the fitting constant K2. This new parameter can be of either a positive or a negative value. Results of the computer simulation showed more probable T2 dominance with longer TE, higher field strength, shorter baseline T1, and greater extraction of the contrast agent. Clinical data were well fitted by the model, with a positive K2 indicating T1 dominance and underestimated rCBV and a negative K2 indicating T2 dominance and overestimated rCBV. The K2 values of normal-appearing brain tissues were distributed in a much smaller range than the K2 values of enhancing tumors. The ratios of corrected over uncorrected normalized CBV (nCBV) for gray matter (GM) were in the range between 1.04 and 1.05, meaning that the nCBV remained rather stable before and after correction. The ratios for the tumors were 0.65, 0.42, and 2.81, either much smaller or greater than the ratios for GM.
This study proposed a modified Weisskoff model that was able to explain both T1 and T2 dominant effects of the contrast agent extravasation in DSC-MRI. Further development is needed to make the K2 parameter a quantitative indicator of the vessel permeability.
Weisskoff 模型已广泛应用于校正测量动态磁敏感对比(DSC)-MRI 信号中对比剂渗漏的 T1 效应。本研究旨在修改 Weisskoff 模型,以纳入对比剂外渗的 T1 和 T2 效应。
提出了一个两室模型,并将其纳入原始的 Weisskoff 模型中,以描述测量的 DSC-MRI 信号中对比剂渗漏的 T1 和 T2 联合效应。进行了计算机模拟,以评估成像参数、场强、基线 T1 和渗漏严重程度对 T、与 T2 优势的依赖性。使用修正的 Weisskoff 模型校正了 3 例脑肿瘤患者的相对脑血容量(rCBV)图,以证明其用途。
所得方程与原始模型具有相同的数学形式,但拟合常数 K2 的表达式不同。这个新参数可以是正的也可以是负的。计算机模拟结果表明,随着 TE 延长、场强升高、基线 T1 缩短和对比剂提取增加,更可能出现 T2 优势。模型很好地拟合了临床数据,K2 为正表示 T1 优势和低估 rCBV,K2 为负表示 T2 优势和高估 rCBV。正常表现脑组织的 K2 值分布范围明显小于增强肿瘤的 K2 值分布范围。灰质(GM)的校正后与未校正的归一化 CBV(nCBV)比值在 1.04 到 1.05 之间,这意味着校正前后 nCBV 相对稳定。肿瘤的比值分别为 0.65、0.42 和 2.81,要么小得多,要么大得多,均小于 GM 的比值。
本研究提出了一种改进的 Weisskoff 模型,能够解释 DSC-MRI 中对比剂渗漏的 T1 和 T2 主导效应。需要进一步开发使 K2 参数成为血管通透性的定量指标。