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联合子阵声镊可实现对细胞的可控平移、旋转和变形。

Joint subarray acoustic tweezers enable controllable cell translation, rotation, and deformation.

机构信息

Department of Mechanical Engineering and Materials Science, Duke University, Durham, NC, USA.

Department of Mechanical Engineering, Virginia Polytechnical Institute and State University, Blacksburg, VA, USA.

出版信息

Nat Commun. 2024 Oct 20;15(1):9059. doi: 10.1038/s41467-024-52686-8.

Abstract

Contactless microscale tweezers are highly effective tools for manipulating, patterning, and assembling bioparticles. However, current tweezers are limited in their ability to comprehensively manipulate bioparticles, providing only partial control over the six fundamental motions (three translational and three rotational motions). This study presents a joint subarray acoustic tweezers platform that leverages acoustic radiation force and viscous torque to control the six fundamental motions of single bioparticles. This breakthrough is significant as our manipulation mechanism allows for controlling the three translational and three rotational motions of single cells, as well as enabling complex manipulation that combines controlled translational and rotational motions. Moreover, our tweezers can gradually increase the load on an acoustically trapped cell to achieve controllable cell deformation critical for characterizing cell mechanical properties. Furthermore, our platform allows for three-dimensional (3D) imaging of bioparticles without using complex confocal microscopy by rotating bioparticles with acoustic tweezers and taking images of each orientation using a standard microscope. With these capabilities, we anticipate the JSAT platform to play a pivotal role in various applications, including 3D imaging, tissue engineering, disease diagnostics, and drug testing.

摘要

无接触微夹钳是用于操纵、图案化和组装生物颗粒的高效工具。然而,当前的微夹钳在全面操纵生物颗粒的能力方面存在局限性,只能对六个基本运动(三个平移运动和三个旋转运动)提供部分控制。本研究提出了一种联合子阵声镊平台,利用声辐射力和粘性扭矩来控制单个生物颗粒的六个基本运动。这一突破意义重大,因为我们的操纵机制允许控制单个细胞的三个平移和三个旋转运动,并且能够实现结合受控平移和旋转运动的复杂操纵。此外,我们的镊可以逐渐增加声捕获细胞上的负载,以实现对细胞机械性能进行特征分析所需的可控细胞变形。此外,我们的平台允许通过使用声镊旋转生物颗粒并使用标准显微镜对每个方向进行成像,在不使用复杂共聚焦显微镜的情况下进行三维(3D)生物颗粒成像。有了这些功能,我们预计 JSAT 平台将在各种应用中发挥关键作用,包括 3D 成像、组织工程、疾病诊断和药物测试。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5bf7/11491459/52fcee594948/41467_2024_52686_Fig1_HTML.jpg

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