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Xenon-enhanced CT imaging of local pulmonary ventilation

机译:局部肺通气的氙气增强CT成像

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Abstract: We are using the unique features of electron beam CT (EBCT) in conjunction with respiratory and cardiac gating to explore the use of non-radioactive xenon gas as a pulmonary ventilation contrast agent. The goal is to construct accurate and quantitative high-resolution maps of local pulmonary ventilation in humans. We are evaluating xenon-enhanced computed tomography in the pig model with dynamic tracer washout/dilution and single breath inhalation imaging protocols. Scanning is done via an EBCT scanner which offers 50 msec scan aperture speeds. CT attenuation coefficients (image gray scale value) show a linear increase with xenon concentration (r $EQ 0.99). We measure a 1.55 Hounsfield Unit (HU) enhancement (kV $EQ 130, mA $EQ 623) per percentage increase in xenon gas concentration giving an approximately 155 HU enhancement with 100% xenon gas concentration as measured in a plexiglass super-syringe. Early results indicate that a single breath (from functional residual capacity to total lung capacity) of 100% xenon gas provides an average 32 $POM 1.85 (SE) HU enhancement in the lung parenchyma (maximum 50 HU) and should not encounter unwanted xenon side effects. However, changes in lung density occurring during even short breath holds (as short as 10 seconds) may limit using a single breath technique to synchronous volumetric scanning, currently possible only with EBCT. Preliminary results indicate close agreement between measured regional xenon concentration-time curves and theoretical predictions for the same sample. More than 10 breaths with inspirations to as high as 25 cmH$-2$/O airway pressure were needed to clear tracer from all lung regions and some regions had nearly linear rather than mono-exponential clearance curves. When regional parenchymal xenon concentration-time curves were analyzed, vertical gradients in ventilation and redistribution of ventilation at higher inspiratory flow rates were consistent with known pulmonary physiology. We present here a works in progress, showing results from two pigs illustrating the high resolution and detailed regional information obtainable with careful attention to cardiac and respiratory gating during a multi-breath washout period.!20
机译:摘要:我们将电子束CT(EBCT)的独特功能与呼吸和心脏门控相结合,探索将非放射性氙气用作肺通气造影剂的用途。目的是构建人类局部肺通气的准确和定量的高分辨率地图。我们正在使用动态示踪剂冲洗/稀释和单次呼吸吸入成像方案评估猪模型中的氙增强计算机断层扫描。扫描是通过EBCT扫描仪完成的,该扫描仪的扫描孔径速度为50毫秒。 CT衰减系数(图像灰度值)显示随着氙气浓度线性增加(r $ EQ 0.99)。我们测量了1.55的Hounsfield单位(HU)增强(kV $ EQ 130,mA $ EQ 623),氙气浓度每增加百分数,在有机玻璃超级注射器中测得的100%氙气浓度将增强约155 HU。早期结果表明,单次呼吸(从功能性残余容量到总肺容量)为100%氙气,可使肺实质中平均增加32 $ POM 1.85(SE)HU(最大50 HU),并且不应遇到不必要的氙侧效果。但是,即使是短暂的屏气(短至10秒),发生的肺密度变化也可能会限制使用单次呼吸技术同步进行体积扫描,而目前只有EBCT才可能。初步结果表明,测得的区域氙浓度-时间曲线与同一样品的理论预测值之间具有密切的一致性。需要进行十次以上的呼吸以激发高达25 cmH $ -2 $ / O的气道压力才能清除所有肺区域的示踪剂,并且某些区域的呼吸曲线几乎呈线性,而不是单指数。当分析局部实质性氙浓度-时间曲线时,较高的吸气流速下通气的垂直梯度和通气的重新分布与已知的肺部生理学一致。我们在这里展示的是一项正在进行的工作,显示了两只猪的结果,这些结果说明了在多呼吸冲洗期中仔细注意心脏和呼吸门控可获得的高分辨率和详细的区域信息。20

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