Balakrishnan Santosh, Bu Ruofei, Price Hillel, Zdanski Carlton, Oldenburg Amy L
Department of Biomedical Engineering, University of North Carolina at Chapel Hill.
Department of Physics and Astronomy, University of North Carolina at Chapel Hill.
Proc SPIE Int Soc Opt Eng. 2017 Feb;10039. doi: 10.1117/12.2250348.
We describe a novel, multi-modal imaging protocol for validating quantitative dynamic airway imaging performed using anatomical Optical Coherence Tomography (aOCT). The aOCT system consists of a catheter-based aOCT probe that is deployed via a bronchoscope, while a programmable ventilator is used to control airway pressure. This setup is employed on the bed of a Siemens Biograph CT system capable of performing respiratory-gated acquisitions. In this arrangement the position of the aOCT catheter may be visualized with CT to aid in co-registration. Utilizing this setup we investigate multiple respiratory pressure parameters with aOCT, and respiratory-gated CT, on both porcine trachea and live, anesthetized pigs. This acquisition protocol has enabled real-time measurement of airway deformation with simultaneous measurement of pressure under physiologically relevant static and dynamic conditions- inspiratory peak or peak positive airway pressures of 10-40 cm HO, and 20-30 breaths per minute for dynamic studies. We subsequently compare the airway cross sectional areas (CSA) obtained from aOCT and CT, including the change in CSA at different stages of the breathing cycle for dynamic studies, and the CSA at different peak positive airway pressures for static studies. This approach has allowed us to improve our acquisition methodology and to validate aOCT measurements of the dynamic airway for the first time. We believe that this protocol will prove invaluable for aOCT system development and greatly facilitate translation of OCT systems for airway imaging into the clinical setting.
我们描述了一种用于验证使用解剖光学相干断层扫描(aOCT)进行的定量动态气道成像的新型多模态成像方案。aOCT系统由通过支气管镜部署的基于导管的aOCT探头组成,同时使用可编程呼吸机来控制气道压力。此设置应用于能够进行呼吸门控采集的西门子Biograph CT系统的检查床上。在这种配置中,aOCT导管的位置可以通过CT可视化,以辅助进行配准。利用此设置,我们在猪气管和活体麻醉猪身上,使用aOCT和呼吸门控CT研究了多个呼吸压力参数。该采集方案能够在生理相关的静态和动态条件下,同时测量压力并实时测量气道变形——动态研究中吸气峰值或气道正压峰值为10 - 40 cm H₂O,呼吸频率为每分钟20 - 30次。随后,我们比较了从aOCT和CT获得的气道横截面积(CSA),包括动态研究中呼吸周期不同阶段的CSA变化,以及静态研究中不同气道正压峰值下的CSA。这种方法使我们能够改进采集方法,并首次验证了aOCT对动态气道的测量。我们相信,该方案对于aOCT系统开发将被证明具有极高价值,并极大地促进用于气道成像的OCT系统向临床应用的转化。