Jenkins M W, Adler D C, Gargesha M, Huber R, Rothenberg F, Belding J, Watanabe M, Wilson D L, Fujimoto J G, Rollins A M
Department of Biomedical Engineering, Case Western Reserve University, Cleveland, Ohio 44106, USA.
Opt Express. 2007 May 14;15(10):6251-67. doi: 10.1364/oe.15.006251.
The embryonic avian heart is an important model for studying cardiac developmental biology. The mechanisms that govern the development of a four-chambered heart from a peristaltic heart tube are largely unknown due in part to a lack of adequate imaging technology. Due to the small size and rapid motion of the living embryonic avian heart, an imaging system with high spatial and temporal resolution is required to study these models. Here, an optical coherence tomography (OCT) system using a buffered Fourier Domain Mode Locked (FDML) laser is applied for ultrahigh-speed non-invasive imaging of embryonic quail hearts at 100,000 axial scans per second. The high scan rate enables the acquisition of high temporal resolution 2D datasets (195 frames per second or 5.12 ms between frames) and 3D datasets (10 volumes per second). Spatio-temporal details of cardiac motion not resolvable using previous OCT technology are analyzed. Visualization and measurement techniques are developed to non-invasively observe and quantify cardiac motion throughout the brief period of systole (less than 50 msec) and diastole. This marks the first time that the preseptated embryonic avian heart has been imaged in 4D without the aid of gating and the first time it has been viewed in cross section during looping with extremely high temporal resolution, enabling the observation of morphological dynamics of the beating heart during systole.
胚胎期的禽心脏是研究心脏发育生物学的重要模型。从蠕动的心脏管发育成四腔心脏的机制在很大程度上尚不清楚,部分原因是缺乏足够的成像技术。由于活体胚胎期禽心脏体积小且运动迅速,需要一个具有高空间和时间分辨率的成像系统来研究这些模型。在此,一种使用缓冲傅里叶域锁模(FDML)激光器的光学相干断层扫描(OCT)系统被应用于对鹌鹑胚胎心脏进行每秒100,000次轴向扫描的超高速无创成像。高扫描速率能够获取高时间分辨率的二维数据集(每秒195帧或帧间间隔5.12毫秒)和三维数据集(每秒10个容积)。分析了使用先前OCT技术无法分辨的心脏运动的时空细节。开发了可视化和测量技术,以在整个短暂的收缩期(小于50毫秒)和舒张期无创地观察和量化心脏运动。这标志着首次在无需门控的情况下对预分隔的胚胎期禽心脏进行四维成像,也是首次在心脏环化过程中以极高的时间分辨率观察其横截面,从而能够观察到收缩期跳动心脏的形态动力学。