State Key Laboratory of Brain and Cognitive Science, Institute of Biophysics, Chinese Academy of Sciences, Beijing, China.
Magn Reson Med. 2010 Apr;63(4):1050-8. doi: 10.1002/mrm.22299.
MR acoustic radiation force imaging provides a promising method to monitor therapeutic ultrasound treatments. By measuring the displacement induced by the acoustic radiation force, MR acoustic radiation force imaging can locate the focal spot, without a significant temperature rise. In this work, the encoding gradient for MR acoustic radiation force imaging is optimized to achieve an enhanced accuracy and precision of the displacement measurement. By analyzing the sources of artifacts, bulk motion and eddy currents are shown to introduce errors to the measurement, and heavy diffusion-weighting is shown to result in noisy displacement maps. To eliminate these problems, a new encoding scheme is proposed, which utilizes a pair of bipolar gradients. Improved precision is achieved with robustness against bulk motion and background phase distortion, and improved accuracy is achieved with reduced diffusion-weighting and optimized encoding pulse width. The experiment result shows that the signal-to-noise ratio can be enhanced by more than 2-fold. These significant improvements are obtained at no cost of scan time or encoding sensitivity, enabling the detection of a displacement less than 0.l microm in a gel phantom with MR acoustic radiation force imaging.
磁共振声辐射力成像为监测治疗性超声治疗提供了一种很有前途的方法。通过测量声辐射力引起的位移,磁共振声辐射力成 像可以定位焦点,而不会导致明显的温升。在这项工作中,优化了磁共振声辐射力成像的编码梯度,以实现对位移测量的增强精度和精 确度。通过分析伪影的来源,表明体动和涡流会给测量带来误差,并且重扩散加权会导致位移图产生噪声。为了解决这些问题,提出了 一种新的编码方案,该方案利用一对双极梯度。通过提高稳健性来抵抗体动和背景相位失真,从而提高精度,并通过减少扩散加权和优 化编码脉冲宽度来提高准确性。实验结果表明,信噪比可以提高 2 倍以上。这些显著的改进是在不增加扫描时间或编码灵敏度的情况下 实现的,从而可以在凝胶模型中检测到小于 0.l 微米的位移。