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Internal physiology of live krill revealed using new aquaria techniques and mixed optical microscopy and optical coherence tomography (OCT) imaging techniques

机译:使用新的水族馆技术以及混合光学显微镜和光学相干断层扫描(OCT)成像技术揭示了活体磷虾的内部生理学

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摘要

The accurate observation of physiological changes on in vivo samples of important animal species such as Euphasia superba (Antarctic krill) is an important goal in helping to understand how environmental changes can affect animal development. Using a custom made ‘krill trap’, live un-anaesthetized krill were confined for seven hours, during which three hours of optical imaging were obtained and no subsequent ill effects observed. The trap enabled two imaging methods to be employed: Optical Coherence Tomography (OCT) and microscopy. OCT enabled internal structure and tissues to be imaged to a depth of approximately 2 mm and resolution of approximately 12 μm. Microscopy was used to observe heart rate. During our experiments, we imaged a range of internal structures in live animals including the heart and gastric areas. The trap design enables a new generation of mixed modality imaging of these animals in vivo. These techniques will enable detailed studies of the internal physiology of live krill to be undertaken under a wide range of environmental conditions and have the potential to highlight important variations in behaviour and animal development.
机译:准确观察重要动物物种(例如欧亚磷虾)的体内样本上的生理变化是帮助了解环境变化如何影响动物发育的重要目标。使用定制的“磷虾陷阱”,将未经麻醉的活体磷虾限制在七个小时内,在此期间获得了三个小时的光学成像,并且未观察到随后的不良影响。该陷阱使得可以采用两种成像方法:光学相干断层扫描(OCT)和显微镜检查。 OCT使内部结构和组织的成像深度约为2 mm,分辨率约为12μm。使用显微镜观察心率。在我们的实验过程中,我们为活体动物(包括心脏和胃部区域)的一系列内部结构成像。捕集阱设计可对这些动物进行体内的新一代混合形态成像。这些技术将使活磷虾的内部生理学的详细研究能够在各种环境条件下进行,并有可能突出行为和动物发育的重要变化。

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