School of Mechanical Engineering, Shanghai Jiao Tong University, Shanghai 200240, China.
Key Laboratory for Micro/Nano Technology and System of Liaoning Province, Dalian University of Technology, Dalian 116024, China.
ACS Sens. 2024 Oct 25;9(10):5284-5292. doi: 10.1021/acssensors.4c01464. Epub 2024 Sep 3.
Intravital microscopy (IVM) is a valuable method for biomedical characterization of dynamic processes, which has been applied to many fields such as neuroscience, oncology, and immunology. During IVM, vibration suppression is a major challenge due to the inevitable respiration and heartbeat from live animals. In this study, taking liver IVM as an example, we have unraveled the vibration inhibition effect of liquid bridges by studying the friction characteristics of a moist surface on the mouse liver. We confirmed the presence of liquid bridges on the liver through fluorescence imaging, which can provide microscale and nondestructive liquid connections between adjacent surfaces. Liquid bridges were constructed to sufficiently stabilize the liver after abdominal dissection by covering it with a polymer film, taking advantage of the high adhesion properties of liquid bridges. We further prototyped a microscope-integrated vibration-damping device with adjustable film tension to simplify the sample preparation procedure, which remarkably decreased the liver vibration. In practical application scenarios, we observed the process of liposome phagocytosis by liver Kupffer cells with significantly improved image and video quality. Collectively, our method not only provided a feasible solution to vibration suppression in the field of IVM, but also has the potential to be applied to vibration damping of precision instruments or other fields that require nondestructive ″soft″ vibration damping.
活体显微镜成像(IVM)是一种对动态过程进行生物医学特征分析的重要方法,已被广泛应用于神经科学、肿瘤学和免疫学等多个领域。在 IVM 过程中,由于活动物不可避免的呼吸和心跳,振动抑制是一个主要挑战。在这项研究中,以肝脏 IVM 为例,我们通过研究湿润表面在小鼠肝脏上的摩擦特性,揭示了液桥的振动抑制效果。我们通过荧光成像确认了肝脏上存在液桥,液桥可以在相邻表面之间提供微观和非破坏性的液体连接。通过用聚合物膜覆盖肝脏来构建液桥,充分稳定肝脏,利用液桥的高粘附特性。我们进一步制作了一个显微镜集成的、具有可调膜张力的减振装置原型,以简化样品制备过程,显著降低了肝脏的振动。在实际应用场景中,我们观察到了脂质体被肝脏枯否细胞吞噬的过程,图像和视频质量得到了显著改善。总的来说,我们的方法不仅为 IVM 领域的振动抑制提供了一种可行的解决方案,还有望应用于精密仪器的减振或其他需要无损“软”减振的领域。