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OptiJ: Open-source optical projection tomography of large organ samples

Pedro P. Vallejo Ramirez, Joseph Zammit, Oliver Vanderpoorten, Fergus Riche, François-Xavier Blé, Xiao-Hong Zhou, Bogdan Spiridon, Christopher Valentine, Simeon P. Spasov, Pelumi W. Oluwasanya, Gemma Goodfellow, Marcus J. Fantham, Omid Siddiqui, Farah Alimagham, Miranda Robbins, Andrew Stretton, Dimitrios Simatos, Oliver Hadeler, Eric J. Rees, Florian Ströhl, Romain F. Laine, Clemens F. Kaminski
doi: https://doi.org/10.1101/656488
Pedro P. Vallejo Ramirez
1Laser Analytics Group, Department of Chemical Engineering and Biotechnology, University of Cambridge, Cambridge UK
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Joseph Zammit
2Sensor CDT 2015-2016 student cohort, University of Cambridge, Cambridge, UK
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Oliver Vanderpoorten
1Laser Analytics Group, Department of Chemical Engineering and Biotechnology, University of Cambridge, Cambridge UK
2Sensor CDT 2015-2016 student cohort, University of Cambridge, Cambridge, UK
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Fergus Riche
2Sensor CDT 2015-2016 student cohort, University of Cambridge, Cambridge, UK
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François-Xavier Blé
3Clinical Discovery Unit, Early Clinical Development, IMED Biotech Unit, AstraZeneca, Cambridge, UK
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Xiao-Hong Zhou
4Bioscience, Respiratory, Inflammation and Autoimmunity, IMED Biotech Unit, AstraZeneca, Gothenburg, Sweden
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Bogdan Spiridon
2Sensor CDT 2015-2016 student cohort, University of Cambridge, Cambridge, UK
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Christopher Valentine
2Sensor CDT 2015-2016 student cohort, University of Cambridge, Cambridge, UK
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Simeon P. Spasov
2Sensor CDT 2015-2016 student cohort, University of Cambridge, Cambridge, UK
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Pelumi W. Oluwasanya
2Sensor CDT 2015-2016 student cohort, University of Cambridge, Cambridge, UK
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Gemma Goodfellow
2Sensor CDT 2015-2016 student cohort, University of Cambridge, Cambridge, UK
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Marcus J. Fantham
1Laser Analytics Group, Department of Chemical Engineering and Biotechnology, University of Cambridge, Cambridge UK
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Omid Siddiqui
2Sensor CDT 2015-2016 student cohort, University of Cambridge, Cambridge, UK
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Farah Alimagham
2Sensor CDT 2015-2016 student cohort, University of Cambridge, Cambridge, UK
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Miranda Robbins
2Sensor CDT 2015-2016 student cohort, University of Cambridge, Cambridge, UK
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Andrew Stretton
2Sensor CDT 2015-2016 student cohort, University of Cambridge, Cambridge, UK
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Dimitrios Simatos
2Sensor CDT 2015-2016 student cohort, University of Cambridge, Cambridge, UK
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Oliver Hadeler
1Laser Analytics Group, Department of Chemical Engineering and Biotechnology, University of Cambridge, Cambridge UK
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Eric J. Rees
1Laser Analytics Group, Department of Chemical Engineering and Biotechnology, University of Cambridge, Cambridge UK
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Florian Ströhl
1Laser Analytics Group, Department of Chemical Engineering and Biotechnology, University of Cambridge, Cambridge UK
6Department of Physics and Technology, UiT The Arctic University of Norway, NO-9037 Tromsø, Norway
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Romain F. Laine
1Laser Analytics Group, Department of Chemical Engineering and Biotechnology, University of Cambridge, Cambridge UK
5Medical Research Council Laboratory for Molecular Cell Biology (LMCB), University College London, Gower Street, London, WC1E 6BT
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Clemens F. Kaminski
1Laser Analytics Group, Department of Chemical Engineering and Biotechnology, University of Cambridge, Cambridge UK
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  • For correspondence: cfk23@cam.ac.uk
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Abstract

The three-dimensional imaging of mesoscopic samples with Optical Projection Tomography (OPT) has become a powerful tool for biomedical phenotyping studies. OPT uses visible light to visualize the 3D morphology of large transparent samples. To enable a wider application of OPT, we present OptiJ, a low-cost, fully open-source OPT system capable of imaging large transparent specimens up to 13 mm tall and 8 mm deep with 50 μm resolution. OptiJ is based on off-the-shelf, easy-to-assemble optical components and an ImageJ plugin library for OPT data reconstruction. The software includes novel correction routines for uneven illumination and sample jitter in addition to CPU/GPU accelerated reconstruction for large datasets. We demonstrate the use of OptiJ to image and reconstruct cleared lung lobes from adult mice. We provide a detailed set of instructions to set up and use the OptiJ framework. Our hardware and software design are modular and easy to implement, allowing for further open microscopy developments for imaging large organ samples.

Footnotes

  • https://lag-opt.github.io

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The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. It is made available under a CC-BY 4.0 International license.
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Posted June 02, 2019.
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OptiJ: Open-source optical projection tomography of large organ samples
Pedro P. Vallejo Ramirez, Joseph Zammit, Oliver Vanderpoorten, Fergus Riche, François-Xavier Blé, Xiao-Hong Zhou, Bogdan Spiridon, Christopher Valentine, Simeon P. Spasov, Pelumi W. Oluwasanya, Gemma Goodfellow, Marcus J. Fantham, Omid Siddiqui, Farah Alimagham, Miranda Robbins, Andrew Stretton, Dimitrios Simatos, Oliver Hadeler, Eric J. Rees, Florian Ströhl, Romain F. Laine, Clemens F. Kaminski
bioRxiv 656488; doi: https://doi.org/10.1101/656488
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OptiJ: Open-source optical projection tomography of large organ samples
Pedro P. Vallejo Ramirez, Joseph Zammit, Oliver Vanderpoorten, Fergus Riche, François-Xavier Blé, Xiao-Hong Zhou, Bogdan Spiridon, Christopher Valentine, Simeon P. Spasov, Pelumi W. Oluwasanya, Gemma Goodfellow, Marcus J. Fantham, Omid Siddiqui, Farah Alimagham, Miranda Robbins, Andrew Stretton, Dimitrios Simatos, Oliver Hadeler, Eric J. Rees, Florian Ströhl, Romain F. Laine, Clemens F. Kaminski
bioRxiv 656488; doi: https://doi.org/10.1101/656488

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