Allphin A J, Nadkarni R, Clark D P, Gil C J, Tomov M L, Serpooshan V, Badea C T
Quantitative Imaging and Analysis Lab, Department of Radiology, Duke University Medical Center, Durham, NC, United States of America.
Wallace H. Coulter Department of Biomedical Engineering, Emory University School of Medicine and Georgia Institute of Technology, Atlanta, GA, United States of America.
Phys Med Biol. 2024 Aug 23;69(17). doi: 10.1088/1361-6560/ad6edd.
This study introduces a novel desktop micro-CT scanner designed for dynamic perfusion imaging in mice, aimed at enhancing preclinical imaging capabilities with high resolution and low radiation doses.The micro-CT system features a custom-built rotating table capable of both circular and helical scans, enabled by a small-bore slip ring for continuous rotation. Images were reconstructed with a temporal resolution of 3.125 s and an isotropic voxel size of 65m, with potential for higher resolution scanning. The system's static performance was validated using standard quality assurance phantoms. Dynamic performance was assessed with a custom 3D-bioprinted tissue-mimetic phantom simulating single-compartment vascular flow. Flow measurements ranged from 1.5to 9 ml min, with perfusion metrics such as time-to-peak, mean transit time, and blood flow index calculated.experiments involved mice with different genetic risk factors for Alzheimer's and cardiovascular diseases to showcase the system's capabilities for perfusion imaging.The static performance validation confirmed that the system meets standard quality metrics, such as spatial resolution and uniformity. The dynamic evaluation with the 3D-bioprinted phantom demonstrated linearity in hemodynamic flow measurements and effective quantification of perfusion metrics.experiments highlighted the system's potential to capture detailed perfusion maps of the brain, lungs, and kidneys. The observed differences in perfusion characteristics between genotypic mice illustrated the system's capability to detect physiological variations, though the small sample size precludes definitive conclusions.The turn-table micro-CT system represents a significant advancement in preclinical imaging, providing high-resolution, low-dose dynamic imaging for a range of biological and medical research applications. Future work will focus on improving temporal resolution, expanding spectral capabilities, and integrating deep learning techniques for enhanced image reconstruction and analysis.
本研究介绍了一种专为小鼠动态灌注成像设计的新型台式微型计算机断层扫描(micro-CT)扫描仪,旨在以高分辨率和低辐射剂量增强临床前成像能力。该微型CT系统的特点是有一个定制的旋转台,能够进行圆形和螺旋扫描,由一个用于连续旋转的小口径滑环实现。图像重建的时间分辨率为3.125秒,各向同性体素大小为65微米,具备更高分辨率扫描的潜力。使用标准质量保证体模验证了系统的静态性能。通过一个模拟单室血管流动的定制3D生物打印组织模拟体模评估动态性能。流量测量范围为1.5至9毫升/分钟,并计算了诸如达峰时间、平均通过时间和血流指数等灌注指标。实验涉及患有阿尔茨海默病和心血管疾病不同遗传风险因素的小鼠,以展示该系统的灌注成像能力。静态性能验证证实该系统符合空间分辨率和均匀性等标准质量指标。使用3D生物打印体模进行的动态评估证明了血流动力学流量测量的线性以及灌注指标的有效量化。实验突出了该系统捕捉脑、肺和肾详细灌注图的潜力。基因分型小鼠之间观察到的灌注特征差异说明了该系统检测生理变化的能力,不过样本量小妨碍得出明确结论。转台微型CT系统代表了临床前成像的重大进步,为一系列生物学和医学研究应用提供高分辨率、低剂量动态成像。未来的工作将集中在提高时间分辨率、扩展光谱能力以及整合深度学习技术以增强图像重建和分析。