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Integrating light-sheet imaging with virtual reality to recapitulate developmental cardiac mechanics.
Ding, Yichen; Abiri, Arash; Abiri, Parinaz; Li, Shuoran; Chang, Chih-Chiang; Baek, Kyung In; Hsu, Jeffrey J; Sideris, Elias; Li, Yilei; Lee, Juhyun; Segura, Tatiana; Nguyen, Thao P; Bui, Alexander; Sevag Packard, René R; Fei, Peng; Hsiai, Tzung K.
Afiliação
  • Ding Y; Department of Medicine.
  • Abiri A; Department of Bioengineering, David Geffen School of Medicine, UCLA, Los Angeles, California, USA.
  • Abiri P; Department of Medicine.
  • Li S; Department of Biomedical Engineering, University of California, Irvine, Irvine, California, USA.
  • Chang CC; Department of Medicine.
  • Baek KI; Department of Bioengineering, David Geffen School of Medicine, UCLA, Los Angeles, California, USA.
  • Hsu JJ; Chemical and Biomolecular Engineering Department.
  • Sideris E; Department of Bioengineering, David Geffen School of Medicine, UCLA, Los Angeles, California, USA.
  • Li Y; Department of Bioengineering, David Geffen School of Medicine, UCLA, Los Angeles, California, USA.
  • Lee J; Department of Medicine.
  • Segura T; Chemical and Biomolecular Engineering Department.
  • Nguyen TP; Electrical Engineering Department, and.
  • Bui A; Department of Bioengineering, David Geffen School of Medicine, UCLA, Los Angeles, California, USA.
  • Sevag Packard RR; Department of Bioengineering, David Geffen School of Medicine, UCLA, Los Angeles, California, USA.
  • Fei P; Chemical and Biomolecular Engineering Department.
  • Hsiai TK; Department of Medicine.
JCI Insight ; 2(22)2017 11 16.
Article em En | MEDLINE | ID: mdl-29202458
Currently, there is a limited ability to interactively study developmental cardiac mechanics and physiology. We therefore combined light-sheet fluorescence microscopy (LSFM) with virtual reality (VR) to provide a hybrid platform for 3D architecture and time-dependent cardiac contractile function characterization. By taking advantage of the rapid acquisition, high axial resolution, low phototoxicity, and high fidelity in 3D and 4D (3D spatial + 1D time or spectra), this VR-LSFM hybrid methodology enables interactive visualization and quantification otherwise not available by conventional methods, such as routine optical microscopes. We hereby demonstrate multiscale applicability of VR-LSFM to (a) interrogate skin fibroblasts interacting with a hyaluronic acid-based hydrogel, (b) navigate through the endocardial trabecular network during zebrafish development, and (c) localize gene therapy-mediated potassium channel expression in adult murine hearts. We further combined our batch intensity normalized segmentation algorithm with deformable image registration to interface a VR environment with imaging computation for the analysis of cardiac contraction. Thus, the VR-LSFM hybrid platform demonstrates an efficient and robust framework for creating a user-directed microenvironment in which we uncovered developmental cardiac mechanics and physiology with high spatiotemporal resolution.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Mecânica / Técnicas de Imagem Cardíaca / Realidade Virtual / Coração / Microscopia de Fluorescência Idioma: En Ano de publicação: 2017 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Mecânica / Técnicas de Imagem Cardíaca / Realidade Virtual / Coração / Microscopia de Fluorescência Idioma: En Ano de publicação: 2017 Tipo de documento: Article