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Tomographic digital subtraction angiography for lung perfusion estimation in rodents.

机译:断层扫描数字减影血管造影用于评估啮齿动物的肺灌注。

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In vivo measurements of perfusion present a challenge to existing small animal imaging techniques such as magnetic resonance microscopy, micro computed tomography, micro positron emission tomography, and microSPECT, due to combined requirements for high spatial and temporal resolution. We demonstrate the use of tomographic digital subtraction angiography (TDSA) for estimation of perfusion in small animals. TDSA augments conventional digital subtraction angiography (DSA) by providing three-dimensional spatial information using tomosynthesis algorithms. TDSA is based on the novel paradigm that the same time density curves can be reproduced in a number of consecutive injections of microL volumes of contrast at a series of different angles of rotation. The capabilities of TDSA are established in studies on lung perfusion in rats. Using an imaging system developed in-house, we acquired data for four-dimensional (4D) imaging with temporal resolution of 140 ms, in-plane spatial resolution of 100 microm, and slice thickness on the order of millimeters. Based on a structured experimental approach, we optimized TDSA imaging providing a good trade-off between slice thickness, the number of injections, contrast to noise, and immunity to artifacts. Both DSA and TDSA images were used to create parametric maps of perfusion. TDSA imaging has potential application in a number of areas where functional perfusion measurements in 4D can provide valuable insight into animal models of disease and response to therapeutics.
机译:由于对高空间和时间分辨率的综合要求,体内灌注测量对现有的小动物成像技术(例如磁共振显微镜,微计算机断层扫描,微正电子发射断层扫描和microSPECT)提出了挑战。我们演示了层析成像数字减影血管造影(TDSA)用于估计小动物的灌注。 TDSA通过使用断层合成算法提供三维空间信息,从而增强了传统的数字减影血管造影(DSA)。 TDSA基于新颖的范例,可以在一系列不同的旋转角度连续多次注入微L对比体积的情况下,再现相同的时间密度曲线。 TDSA的功能已在大鼠肺灌注研究中确立。使用内部开发的成像系统,我们获得了时间分辨率为140毫秒,面内空间分辨率为100微米,切片厚度为毫米量级的四维(4D)成像数据。基于结构化的实验方法,我们优化了TDSA成像,从而在切片厚度,进样次数,噪声对比和对伪像的免疫力之间取得了良好的平衡。 DSA和TDSA图像均用于创建灌注参数图。 TDSA成像在许多领域都有潜在的应用,其中4D功能性灌注测量可以为疾病的动物模型和对治疗的反应提供有价值的见识。

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