Literature DB >> 29949752

ConfocalVR: Immersive Visualization for Confocal Microscopy.

Caroline Stefani1, Adam Lacy-Hulbert1, Thomas Skillman2.   

Abstract

ConfocalVR is a virtual reality (VR) application created to improve the ability of researchers to study the complexity of cell architecture. Confocal microscopes take pictures of fluorescently labeled proteins or molecules at different focal planes to create a stack of two-dimensional images throughout the specimen. Current software applications reconstruct the three-dimensional (3D) image and render it as a two-dimensional projection onto a computer screen where users need to rotate the image to expose the full 3D structure. This process is mentally taxing, breaks down if you stop the rotation, and does not take advantage of the eye's full field of view. ConfocalVR exploits consumer-grade VR systems to fully immerse the user in the 3D cellular image. In this virtual environment, the user can (1) adjust image viewing parameters without leaving the virtual space, (2) reach out and grab the image to quickly rotate and scale the image to focus on key features, and (3) interact with other users in a shared virtual space enabling real-time collaborative exploration and discussion. We found that immersive VR technology allows the user to rapidly understand cellular architecture and protein or molecule distribution. We note that it is impossible to understand the value of immersive visualization without experiencing it first hand, so we encourage readers to get access to a VR system, download this software, and evaluate it for yourself. The ConfocalVR software is available for download at http://www.confocalvr.com, and is free for nonprofits.
Copyright © 2018 The Authors. Published by Elsevier Ltd.. All rights reserved.

Entities:  

Keywords:  ImageJ; cellular visualization; confocal microscopy; virtual collaboration; virtual reality

Mesh:

Year:  2018        PMID: 29949752      PMCID: PMC6805139          DOI: 10.1016/j.jmb.2018.06.035

Source DB:  PubMed          Journal:  J Mol Biol        ISSN: 0022-2836            Impact factor:   5.469


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6.  αv Integrins combine with LC3 and atg5 to regulate Toll-like receptor signalling in B cells.

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Authors:  Curtis T Rueden; Johannes Schindelin; Mark C Hiner; Barry E DeZonia; Alison E Walter; Ellen T Arena; Kevin W Eliceiri
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  7 in total
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2.  vLUME: 3D virtual reality for single-molecule localization microscopy.

Authors:  Alexander Spark; Alexandre Kitching; Daniel Esteban-Ferrer; Anoushka Handa; Alexander R Carr; Lisa-Maria Needham; Aleks Ponjavic; Ana Mafalda Santos; James McColl; Christophe Leterrier; Simon J Davis; Ricardo Henriques; Steven F Lee
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5.  The VRNetzer platform enables interactive network analysis in Virtual Reality.

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6.  A Novel Gesture-Based Control System for Fluorescence Volumetric Data in Virtual Reality.

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7.  singlecellVR: Interactive Visualization of Single-Cell Data in Virtual Reality.

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8.  Virtual Reality as Tool for Bioprinting Quality Inspection: A Proof of Principle.

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9.  TeraVR empowers precise reconstruction of complete 3-D neuronal morphology in the whole brain.

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Review 10.  Virtual and augmented reality for biomedical applications.

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