Wei Luxi, Wahyulaksana Geraldi, Te Lintel Hekkert Maaike, Beurskens Robert, Boni Enrico, Ramalli Alessandro, Noothout Emile, Duncker Dirk J, Tortoli Piero, van der Steen Antonius F W, de Jong Nico, Verweij Martin, Vos Hendrik J
Department of Cardiology, Erasmus MC University Medical Center, Rotterdam, The Netherlands.
Department of Cardiology, Erasmus MC University Medical Center, Rotterdam, The Netherlands.
Ultrasound Med Biol. 2023 Dec;49(12):2476-2482. doi: 10.1016/j.ultrasmedbio.2023.08.009. Epub 2023 Sep 11.
The aim of this study was to assess the feasibility and imaging options of contrast-enhanced volumetric ultrasound kidney vasculature imaging in a porcine model using a prototype sparse spiral array.
Transcutaneous freehand in vivo imaging of two healthy porcine kidneys was performed according to three protocols with different microbubble concentrations and transmission sequences. Combining high-frame-rate transmission sequences with our previously described spatial coherence beamformer, we determined the ability to produce detailed volumetric images of the vasculature. We also determined power, color and spectral Doppler, as well as super-resolved microvasculature in a volume. The results were compared against a clinical 2-D ultrasound machine.
Three-dimensional visualization of the kidney vasculature structure and blood flow was possible with our method. Good structural agreement was found between the visualized vasculature structure and the 2-D reference. Microvasculature patterns in the kidney cortex were visible with super-resolution processing. Blood flow velocity estimations were within a physiological range and pattern, also in agreement with the 2-D reference results.
Volumetric imaging of the kidney vasculature was possible using a prototype sparse spiral array. Reliable structural and temporal information could be extracted from these imaging results.
本研究旨在评估使用原型稀疏螺旋阵列在猪模型中进行对比增强容积超声肾脏血管成像的可行性和成像选项。
根据三种不同微泡浓度和发射序列的方案,对两只健康猪的肾脏进行经皮徒手活体成像。将高帧率发射序列与我们之前描述的空间相干波束形成器相结合,我们确定了生成详细血管容积图像的能力。我们还确定了功率、彩色和频谱多普勒,以及容积内的超分辨微血管。将结果与临床二维超声机器进行比较。
我们的方法能够对肾脏血管结构和血流进行三维可视化。可视化的血管结构与二维参考之间发现了良好的结构一致性。通过超分辨率处理可以看到肾皮质中的微血管模式。血流速度估计在生理范围内且模式与二维参考结果一致。
使用原型稀疏螺旋阵列可以对肾脏血管进行容积成像。可以从这些成像结果中提取可靠的结构和时间信息。