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利用激光镊子控制超透镜在封闭环境中进行扫描超分辨率成像

Scanning Super-Resolution Imaging in Enclosed Environment by Laser Tweezer Controlled Superlens.

作者信息

Wen Yangdong, Yu Haibo, Zhao Wenxiu, Li Pan, Wang Feifei, Ge Zhixing, Wang Xiaoduo, Liu Lianqing, Li Wen Jung

机构信息

State Key Laboratory of Robotics, Shenyang Institute of Automation, Shenyang, China; Institutes for Robotics and Intelligent Manufacturing, Chinese Academy of Sciences, Shenyang, China; University of the Chinese Academy of Sciences, Beijing, China.

State Key Laboratory of Robotics, Shenyang Institute of Automation, Shenyang, China; Institutes for Robotics and Intelligent Manufacturing, Chinese Academy of Sciences, Shenyang, China.

出版信息

Biophys J. 2020 Dec 15;119(12):2451-2460. doi: 10.1016/j.bpj.2020.10.032. Epub 2020 Nov 13.

Abstract

Super-resolution imaging using microspheres has attracted tremendous scientific attention recently because it has managed to overcome the diffraction limit and allowed direct optical imaging of structures below 100 nm without the aid of fluorescent microscopy. To allow imaging of specific areas on the surface of samples, the migration of the microspheres to specific locations on two-dimensional planes should be controlled to be as precise as possible. The common approach involves the attachment of microspheres on the tip of a probe. However, this technology requires additional space for the probe and could not work in an enclosed environment, e.g., in a microfluidic enclosure, thereby reducing the range of potential applications for microlens-based super-resolution imaging. Herein, we explore the use of laser trapping to manipulate microspheres to achieve super-resolution imaging in an enclosed microfluidic environment. We have demonstrated that polystyrene microsphere lenses could be manipulated to move along designated routes to image features that are smaller than the optical diffraction limit. For example, a silver nanowire with a diameter of 90 nm could be identified and imaged. In addition, a mosaic image could be constructed by fusing a sequence of images of a sample in an enclosed environment. Moreover, we have shown that it is possible to image Escherichia coli bacteria attached on the surface of an enclosed microfluidic device with this method. This technology is expected to provide additional super-resolution imaging opportunities in enclosed environments, including microfluidic, lab-on-a-chip, and organ-on-a-chip devices.

摘要

近年来,使用微球的超分辨率成像技术引起了科学界的极大关注,因为它成功克服了衍射极限,无需荧光显微镜辅助就能对100纳米以下的结构进行直接光学成像。为了实现对样品表面特定区域的成像,需要尽可能精确地控制微球在二维平面上迁移到特定位置。常见的方法是将微球附着在探针尖端。然而,这种技术需要为探针留出额外空间,并且无法在封闭环境中(例如微流体封装中)工作,从而缩小了基于微透镜的超分辨率成像的潜在应用范围。在此,我们探索利用激光捕获来操纵微球,以在封闭的微流体环境中实现超分辨率成像。我们已经证明,可以操纵聚苯乙烯微球透镜沿着指定路径移动,以对小于光学衍射极限的特征进行成像。例如,可以识别并成像直径为90纳米的银纳米线。此外,通过融合封闭环境中样品的一系列图像可以构建镶嵌图像。而且,我们已经表明,用这种方法可以对附着在封闭微流体装置表面的大肠杆菌进行成像。这项技术有望在包括微流体、芯片实验室和芯片器官装置在内的封闭环境中提供更多超分辨率成像机会。

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