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用于心脏结构与功能多尺度快速成像的心脏光片荧光显微镜技术

Cardiac Light-Sheet Fluorescent Microscopy for Multi-Scale and Rapid Imaging of Architecture and Function.

作者信息

Fei Peng, Lee Juhyun, Packard René R Sevag, Sereti Konstantina-Ioanna, Xu Hao, Ma Jianguo, Ding Yichen, Kang Hanul, Chen Harrison, Sung Kevin, Kulkarni Rajan, Ardehali Reza, Kuo C-C Jay, Xu Xiaolei, Ho Chih-Ming, Hsiai Tzung K

机构信息

School of Optical and Electronic Information, Huazhong University of Science and Technology, Wuhan, China.

Department of Mechanical &Aerospace Engineering, University of California, Los Angeles (UCLA), Los Angeles, CA, USA.

出版信息

Sci Rep. 2016 Mar 3;6:22489. doi: 10.1038/srep22489.

Abstract

Light Sheet Fluorescence Microscopy (LSFM) enables multi-dimensional and multi-scale imaging via illuminating specimens with a separate thin sheet of laser. It allows rapid plane illumination for reduced photo-damage and superior axial resolution and contrast. We hereby demonstrate cardiac LSFM (c-LSFM) imaging to assess the functional architecture of zebrafish embryos with a retrospective cardiac synchronization algorithm for four-dimensional reconstruction (3-D space + time). By combining our approach with tissue clearing techniques, we reveal the entire cardiac structures and hypertrabeculation of adult zebrafish hearts in response to doxorubicin treatment. By integrating the resolution enhancement technique with c-LSFM to increase the resolving power under a large field-of-view, we demonstrate the use of low power objective to resolve the entire architecture of large-scale neonatal mouse hearts, revealing the helical orientation of individual myocardial fibers. Therefore, our c-LSFM imaging approach provides multi-scale visualization of architecture and function to drive cardiovascular research with translational implication in congenital heart diseases.

摘要

光片荧光显微镜(LSFM)通过用单独的薄激光片照射标本,实现多维度和多尺度成像。它允许快速平面照明,以减少光损伤,并具有卓越的轴向分辨率和对比度。我们在此展示心脏光片荧光显微镜(c-LSFM)成像,通过一种用于四维重建(三维空间 + 时间)的回顾性心脏同步算法来评估斑马鱼胚胎的功能结构。通过将我们的方法与组织透明技术相结合,我们揭示了成年斑马鱼心脏在阿霉素治疗后的整个心脏结构和过度小梁化。通过将分辨率增强技术与c-LSFM相结合,以在大视野下提高分辨能力,我们展示了使用低倍物镜解析大规模新生小鼠心脏的整个结构,揭示了单个心肌纤维的螺旋方向。因此,我们的c-LSFM成像方法提供了结构和功能的多尺度可视化,以推动心血管研究,并对先天性心脏病具有转化意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d977/4776137/c5337099263d/srep22489-f1.jpg

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