» Articles » PMID: 37971957

High Throughput Tomography (HiTT) on EMBL Beamline P14 on PETRA III

Overview
Date 2023 Nov 16
PMID 37971957
Authors
Affiliations
Soon will be listed here.
Abstract

Here, high-throughput tomography (HiTT), a fast and versatile phase-contrast imaging platform for life-science samples on the EMBL beamline P14 at DESY in Hamburg, Germany, is presented. A high-photon-flux undulator beamline is used to perform tomographic phase-contrast acquisition in about two minutes which is linked to an automated data processing pipeline that delivers a 3D reconstructed data set less than a minute and a half after the completion of the X-ray scan. Combining this workflow with a sophisticated robotic sample changer enables the streamlined collection and reconstruction of X-ray imaging data from potentially hundreds of samples during a beam-time shift. HiTT permits optimal data collection for many different samples and makes possible the imaging of large sample cohorts thus allowing population studies to be attempted. The successful application of HiTT on various soft tissue samples in both liquid (hydrated and also dehydrated) and paraffin-embedded preparations is demonstrated. Furthermore, the feasibility of HiTT to be used as a targeting tool for volume electron microscopy, as well as using HiTT to study plant morphology, is demonstrated. It is also shown how the high-throughput nature of the work has allowed large numbers of `identical' samples to be imaged to enable statistically relevant sample volumes to be studied.

Citing Articles

Applications of synchrotron light in seed research: an array of x-ray and infrared imaging methodologies.

Ashe P, Tu K, Stobbs J, Dynes J, Vu M, Shaterian H Front Plant Sci. 2025; 15:1395952.

PMID: 40034948 PMC: 11873090. DOI: 10.3389/fpls.2024.1395952.


Present and future structural biology activities at DESY and the European XFEL.

Oberthur D, Hakanpaa J, Chatziefthymiou S, Pompidor G, Bean R, Chapman H J Synchrotron Radiat. 2025; 32(Pt 2):474-485.

PMID: 39964790 PMC: 11892905. DOI: 10.1107/S1600577525000669.


Synchrotron X-ray imaging of soft biological tissues - principles, applications and future prospects.

Albers J, Svetlove A, Duke E J Cell Sci. 2024; 137(20).

PMID: 39440473 PMC: 11529875. DOI: 10.1242/jcs.261953.


Studies of Fractal Microstructure in Nanocarbon Polymer Composites.

Artyukov I, Bellucci S, Kolesov V, Levin V, Morokov E, Polikarpov M Polymers (Basel). 2024; 16(10).

PMID: 38794548 PMC: 11125066. DOI: 10.3390/polym16101354.


Visualisation of gene expression within the context of tissues using an X-ray computed tomography-based multimodal approach.

Kairiss K, Sokolova N, Zilova L, Schlagheck C, Reinhardt R, Baumbach T Sci Rep. 2024; 14(1):8543.

PMID: 38609416 PMC: 11015006. DOI: 10.1038/s41598-024-58766-5.

References
1.
Gabadinho J, Beteva A, Guijarro M, Rey-Bakaikoa V, Spruce D, Bowler M . MxCuBE: a synchrotron beamline control environment customized for macromolecular crystallography experiments. J Synchrotron Radiat. 2010; 17(5):700-7. PMC: 3025540. DOI: 10.1107/S0909049510020005. View

2.
Miettinen A, Oikonomidis I, Bonnin A, Stampanoni M . NRStitcher: non-rigid stitching of terapixel-scale volumetric images. Bioinformatics. 2019; 35(24):5290-5297. DOI: 10.1093/bioinformatics/btz423. View

3.
Albers J, Pacile S, Markus M, Wiart M, Vande Velde G, Tromba G . X-ray-Based 3D Virtual Histology-Adding the Next Dimension to Histological Analysis. Mol Imaging Biol. 2018; 20(5):732-741. DOI: 10.1007/s11307-018-1246-3. View

4.
Delageniere S, Brenchereau P, Launer L, Ashton A, Leal R, Veyrier S . ISPyB: an information management system for synchrotron macromolecular crystallography. Bioinformatics. 2011; 27(22):3186-92. DOI: 10.1093/bioinformatics/btr535. View

5.
Dahlin L, Rix K, Dahl V, Dahl A, Jensen J, Cloetens P . Three-dimensional architecture of human diabetic peripheral nerves revealed by X-ray phase contrast holographic nanotomography. Sci Rep. 2020; 10(1):7592. PMC: 7200696. DOI: 10.1038/s41598-020-64430-5. View