FirstGlance/Virus Capsids and Other Large Assemblies

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==Bacterial Gas Vesicle==
==Bacterial Gas Vesicle==
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"Gas vesicles allow a diverse group of bacteria and archaea to move in the water column by controlling their buoyancy. These gas-filled cellular nanocompartments are formed by up to micrometers long protein shells that are permeable only to gas."<ref>2022 Preprint: Cryo-EM structure of gas vesicles for buoyancy-controlled motility, by Stefan T. Huber, Dion Terwiel, Wiel H. Evers, David Maresca, and Arjen J. Jakobi. DOI [https://doi.org/10.1101/2022.05.08.489936 10.1101/2022.05.08.489936].</ref>
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"Gas vesicles allow a diverse group of bacteria and archaea to move in the water column by controlling their buoyancy. These gas-filled cellular nanocompartments are formed by up to micrometers long protein shells that are permeable only to gas."<ref>2022 Preprint: Cryo-EM structure of gas vesicles for buoyancy-controlled motility, by Stefan T. Huber, Dion Terwiel, Wiel H. Evers, David Maresca, and Arjen J. Jakobi. DOI [https://doi.org/10.1101/2022.05.08.489936 10.1101/2022.05.08.489936].</ref> This model is a tube about 380 &Aring; in diameter and about 530 &Aring; long with open ends. The actual nanocompartments are much longer, and taper down to conical caps at the ends. This model has 930 copies of a single protein sequence of 88 amino acids ([https://www.uniprot.org/uniprotkb/A0A0B6AAV2/entry UniProt A0A0B6AAV2]). It is 9 MDa with about 900K atoms including hydrogen.
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'''Quick Start''': [https://bioinformatics.org/firstglance/fgij4/fg.htm?mol=7r1c Gas Vesicle 7r1c in FirstGlance]
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'''Quick Start''': [https://bioinformatics.org/firstglance/fgij4/fg.htm?mol=7r1c&bu=3 Gas Vesicle 7r1c in FirstGlance]

Revision as of 16:34, 31 July 2022

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References

  1. Brodsky FM. Cell biology: clathrin's Achilles' ankle. Nature. 2004 Dec 2;432(7017):568-9. doi: 10.1038/432568a. PMID:15577897 doi:http://dx.doi.org/10.1038/432568a
  2. Ding K, Zhang X, Mrazek J, Kickhoefer VA, Lai M, Ng HL, Yang OO, Rome LH, Zhou ZH. Solution Structures of Engineered Vault Particles. Structure. 2018 Mar 7. pii: S0969-2126(18)30054-6. doi:, 10.1016/j.str.2018.02.014. PMID:29551289 doi:http://dx.doi.org/10.1016/j.str.2018.02.014
  3. 2022 Preprint: Cryo-EM structure of gas vesicles for buoyancy-controlled motility, by Stefan T. Huber, Dion Terwiel, Wiel H. Evers, David Maresca, and Arjen J. Jakobi. DOI 10.1101/2022.05.08.489936.
  4. Hasan SS, Sun C, Kim AS, Watanabe Y, Chen CL, Klose T, Buda G, Crispin M, Diamond MS, Klimstra WB, Rossmann MG. Cryo-EM Structures of Eastern Equine Encephalitis Virus Reveal Mechanisms of Virus Disassembly and Antibody Neutralization. Cell Rep. 2018 Dec 11;25(11):3136-3147.e5. doi: 10.1016/j.celrep.2018.11.067. PMID:30540945 doi:http://dx.doi.org/10.1016/j.celrep.2018.11.067

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