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一种与水折射率匹配的聚合物可实现荧光显微镜中的多种应用。

A polymer index-matched to water enables diverse applications in fluorescence microscopy.

作者信息

Han Xiaofei, Su Yijun, White Hamilton, O'Neill Kate M, Morgan Nicole Y, Christensen Ryan, Potarazu Deepika, Vishwasrao Harshad D, Xu Stephen, Sun Yilun, Huang Shar-Yin, Moyle Mark W, Dai Qionghai, Pommier Yves, Giniger Edward, Albrecht Dirk R, Probst Roland, Shroff Hari

机构信息

Laboratory of High Resolution Optical Imaging, National Institute of Biomedical Imaging and Bioengineering, National Institutes of Health, Bethesda, MD 20892, USA.

Department of Biomedical Engineering, Worcester Polytechnic Institute, 100 Institute Road, Worcester, MA 01609, USA.

出版信息

Lab Chip. 2021 Apr 20;21(8):1549-1562. doi: 10.1039/d0lc01233e.

Abstract

We demonstrate diffraction-limited and super-resolution imaging through thick layers (tens-hundreds of microns) of BIO-133, a biocompatible, UV-curable, commercially available polymer with a refractive index (RI) matched to water. We show that cells can be directly grown on BIO-133 substrates without the need for surface passivation and use this capability to perform extended time-lapse volumetric imaging of cellular dynamics 1) at isotropic resolution using dual-view light-sheet microscopy, and 2) at super-resolution using instant structured illumination microscopy. BIO-133 also enables immobilization of 1) Drosophila tissue, allowing us to track membrane puncta in pioneer neurons, and 2) Caenorhabditis elegans, which allows us to image and inspect fine neural structure and to track pan-neuronal calcium activity over hundreds of volumes. Finally, BIO-133 is compatible with other microfluidic materials, enabling optical and chemical perturbation of immobilized samples, as we demonstrate by performing drug and optogenetic stimulation on cells and C. elegans.

摘要

我们展示了通过厚层(数十至数百微米)的BIO-133进行衍射极限和超分辨率成像,BIO-133是一种生物相容性、可紫外固化、市售的聚合物,其折射率(RI)与水匹配。我们表明细胞可以直接在BIO-133基板上生长,无需表面钝化,并利用这种能力对细胞动力学进行长时间延时体积成像:1) 使用双视图光片显微镜以各向同性分辨率成像,2) 使用即时结构照明显微镜以超分辨率成像。BIO-133还能够固定:1) 果蝇组织,使我们能够追踪先驱神经元中的膜斑,以及2) 秀丽隐杆线虫,这使我们能够成像和检查精细的神经结构,并在数百个体积上追踪全神经元钙活性。最后,BIO-133与其他微流体材料兼容,能够对固定样本进行光学和化学扰动,正如我们通过对细胞和秀丽隐杆线虫进行药物和光遗传学刺激所证明的那样。

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