Assembly and Mechanical Properties of the Cargo-Free and Cargo-Loaded Bacterial Nanocompartment Encapsulin
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Publication date
2016-07-07
Authors
Snijder, Joost
Kononova, Olga
Barbu, Ioana M
Uetrecht, Charlotte
Rurup, W Frederik
Koay, Melissa S T
Burnley, Rebecca J
Cornelissen, Jeroen J L M
Roos, Wouter H
Barsegov, Valeri
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Abstract
Prokaryotes mostly lack membranous compartments that are typical of eukaryotic cells, but instead, they have various protein-based organelles. These include bacterial microcompartments like the carboxysome and the virus-like nanocompartment encapsulin. Encapsulins have an adaptable mechanism for enzyme packaging, which makes it an attractive platform to carry a foreign protein cargo. Here we investigate the assembly pathways and mechanical properties of the cargo-free and cargo-loaded nanocompartments, using a combination of native mass spectrometry, atomic force microscopy and multiscale computational molecular modeling. We show that encapsulin dimers assemble into rigid single-enzyme bacterial containers. Moreover, we demonstrate that cargo encapsulation has a mechanical impact on the shell. The structural similarity of encapsulins to virus capsids is reflected in their mechanical properties. With these robust mechanical properties encapsulins provide a suitable platform for the development of nanotechnological applications.
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Snijder, J, Kononova, O, Barbu, I M, Uetrecht, C, Rurup, W F, Koay, M S T, Burnley, R J, Cornelissen, J J L M, Roos, W H, Barsegov, V, Wuite, G J L & Heck, A J R 2016, 'Assembly and Mechanical Properties of the Cargo-Free and Cargo-Loaded Bacterial Nanocompartment Encapsulin', Biomacromolecules, vol. 17, no. 8, pp. 2522–2529. https://doi.org/10.1021/acs.biomac.6b00469