Department of Biomedical Engineering, University at Buffalo, State University of New York, Buffalo, NY, USA.
Department of Biomedical Engineering, Duke University, Durham, NC, USA.
Nat Commun. 2021 Mar 16;12(1):1682. doi: 10.1038/s41467-021-21930-w.
Functional intestinal imaging holds importance for the diagnosis and evaluation of treatment of gastrointestinal diseases. Currently, preclinical imaging of intestinal motility in animal models is performed either invasively with excised intestines or noninvasively under anesthesia, and cannot reveal intestinal dynamics in the awake condition. Capitalizing on near-infrared optics and a high-absorbing contrast agent, we report the Trans-illumination Intestine Projection (TIP) imaging system for free-moving mice. After a complete system evaluation, we performed in vivo studies, and obtained peristalsis and segmentation motor patterns of free-moving mice. We show the in vivo typical segmentation motor pattern, that was previously shown in ex vivo studies to be controlled by intestinal pacemaker cells. We also show the effects of anesthesia on motor patterns, highlighting the possibility to study the role of the extrinsic nervous system in controlling motor patterns, which requires unanesthetized live animals. Combining with light-field technologies, we further demonstrated 3D imaging of intestine in vivo (3D-TIP). Importantly, the added depth information allows us to extract intestines located away from the abdominal wall, and to quantify intestinal motor patterns along different directions. The TIP system should open up avenues for functional imaging of the GI tract in conscious animals in natural physiological states.
功能性肠道成像对于胃肠道疾病的诊断和治疗评估具有重要意义。目前,动物模型中肠道蠕动的临床前成像要么通过切除的肠道进行侵入性检测,要么在麻醉下进行非侵入性检测,而无法揭示清醒状态下的肠道动力学。利用近红外光学和高吸收对比剂,我们报告了用于自由活动小鼠的 Trans-illumination Intestine Projection(TIP)成像系统。在进行了完整的系统评估后,我们进行了体内研究,并获得了自由活动小鼠的蠕动和分段运动模式。我们展示了体内典型的分段运动模式,之前的体外研究表明该模式受肠道起搏细胞控制。我们还展示了麻醉对运动模式的影响,突出了研究外源性神经系统在控制运动模式中的作用的可能性,这需要未麻醉的活体动物。结合光场技术,我们进一步展示了体内肠道的 3D 成像(3D-TIP)。重要的是,添加的深度信息使我们能够提取远离腹壁的肠道,并沿着不同方向量化肠道运动模式。TIP 系统有望为在自然生理状态下的清醒动物的胃肠道功能成像开辟道路。