Chen Zhenyue, Deán-Ben Xosé Luis, Gottschalk Sven, Razansky Daniel
Opt Lett. 2017 Nov 15;42(22):4577-4580. doi: 10.1364/OL.42.004577.
Epifluorescence imaging is widely used in cell and molecular biology due to its excellent sensitivity, contrast, and ease of implementation. Optoacoustic imaging has been shown to deliver a highly complementary and unique set of capabilities for biological discovery, such as high spatial resolution in noninvasive deep tissue observations, fast volumetric imaging capacity, and spectrally enriched contrast. In this Letter, we report on a hybrid system combining planar fluorescence and real-time volumetric four-dimensional optoacoustic imaging by means of a fiberscope integrated within a handheld hemispherical ultrasound detection array. The in vivo imaging performance is demonstrated by non-invasive visualization of fast contrast agent perfusion through the mouse brain. The proposed synergistic combination of fluorescence and optoacoustic imaging can benefit numerous studies looking at multi-scale in vivo dynamics, such as functional neuroimaging, visualization of organ perfusion and contrast agent uptake, cell tracking, and pharmacokinetic and bio-distribution analysis.
由于具有出色的灵敏度、对比度和易于实施的特点,落射荧光成像在细胞和分子生物学中得到广泛应用。光声成像已被证明能为生物学发现提供一套高度互补且独特的能力,比如在无创深部组织观察中具有高空间分辨率、快速容积成像能力以及丰富的光谱对比度。在本信函中,我们报告了一种混合系统,该系统借助集成在手持式半球形超声检测阵列内的纤维镜,将平面荧光成像与实时容积四维光声成像相结合。通过对小鼠脑部快速造影剂灌注的无创可视化展示了其体内成像性能。所提出的荧光成像与光声成像的协同组合能够惠及众多研究多尺度体内动力学的研究,如功能神经成像、器官灌注和造影剂摄取的可视化、细胞追踪以及药代动力学和生物分布分析。