Institute of Biomedical Physics, Medical University of Innsbruck, Innsbruck, Austria.
Center for Medical Physics and Biomedical Engineering, Medical University of Vienna, Vienna, Austria.
Nat Commun. 2024 Mar 16;15(1):2391. doi: 10.1038/s41467-024-46506-2.
Organoid and spheroid technology provide valuable insights into developmental biology and oncology. Optical coherence tomography (OCT) is a label-free technique that has emerged as an excellent tool for monitoring the structure and function of these samples. However, mature organoids are often too opaque for OCT. Access to multi-angle views is highly desirable to overcome this limitation, preferably with non-contact sample handling. To fulfil these requirements, we present an ultrasound-induced reorientation method for multi-angle-OCT, which employs a 3D-printed acoustic trap inserted into an OCT imaging system, to levitate and reorient zebrafish larvae and tumor spheroids in a controlled and reproducible manner. A model-based algorithm was developed for the physically consistent fusion of multi-angle data from a priori unknown angles. We demonstrate enhanced penetration depth in the joint 3D-recovery of reflectivity, attenuation, refractive index, and position registration for zebrafish larvae, creating an enabling tool for future applications in volumetric imaging.
类器官和球体技术为发育生物学和肿瘤学提供了有价值的见解。光学相干断层扫描(OCT)是一种无标记技术,已成为监测这些样本结构和功能的优秀工具。然而,成熟的类器官通常对 OCT 来说过于不透明。为了克服这一限制,非常希望获得多角度视图,最好采用非接触式样品处理。为了满足这些要求,我们提出了一种用于多角度-OCT 的超声诱导重定向方法,该方法采用插入到 OCT 成像系统中的 3D 打印声阱,以可控和可重复的方式悬浮和重定向斑马鱼幼虫和肿瘤球体。开发了一种基于模型的算法,用于从先前未知角度的多角度数据进行物理一致的融合。我们证明了在斑马鱼幼虫的反射率、衰减、折射率和位置注册的联合 3D 恢复中增强了穿透深度,为未来的体积成像应用创造了一种使能工具。