User:Nikhil Malvankar/Cytochrome nanowires
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| - | Seamless micrometer-long polymerization of hundreds of cytochromes is without precedent, to the knowledge of the authors. The filaments whose structure was determined here were obtained from electrode-grown cells. However, fumarate-grown cells produced filaments with similar sinusoidal morphology. The purified OmcS filaments have morphology and power spectra similar to cell-attached filaments previously thought to be type IV pili. Direct current electrical conductivity of | + | Seamless micrometer-long polymerization of hundreds of cytochromes is without precedent, to the knowledge of the authors. The filaments whose structure was determined here were obtained from electrode-grown cells. However, fumarate-grown cells produced filaments with similar sinusoidal morphology. The purified OmcS filaments have morphology and power spectra similar to cell-attached filaments previously thought to be type IV pili. Direct current electrical conductivity of individual wild type ~4 nm OmcS filaments was confirmed, and was comparable to previously reported filament conductivity values. |
Cells with the ''omcS'' gene deleted (''ΔomcS'') produced thinner (~1.7 nm) filaments that were smooth (not sinusoidal) and had electrical conductivity >100-fold lower than the OmcS filaments. ''ΔomcS'' cells can produce electrically conductive biofilms, but that conductivity might well depend on filaments of OmcZ, whose expression is known to increase in ''ΔomcS'' cells. | Cells with the ''omcS'' gene deleted (''ΔomcS'') produced thinner (~1.7 nm) filaments that were smooth (not sinusoidal) and had electrical conductivity >100-fold lower than the OmcS filaments. ''ΔomcS'' cells can produce electrically conductive biofilms, but that conductivity might well depend on filaments of OmcZ, whose expression is known to increase in ''ΔomcS'' cells. | ||
Revision as of 15:08, 15 February 2020
Interactive 3D Complement in Proteopedia
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Structure of Microbial Nanowires Reveals Stacked Hemes that Transport Electrons over Micrometers[1].
Fengbin Wang,
Yanqui Gu,
J. Patrick O'Brien,
Sophia M. Yi,
Sibel Ebru Yalcin,
Vishok Srikanth,
Cong Shen,
Dennis Vu,
Nicole L. Ing,
Allon I. Hochbaum,
Edward H. Egelman,
and
Nikhil S. Malvankar.
Cell 177:361-9,
April 4, 2019. doi:10.1016/j.cell.2019.03.029
Contents |
Structure Tour
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Download
Animations for Powerpoint
Click images to see them full size, or to download them.
See Also
- Malvankar: A list of all interactive 3D complements for publications from the Malvankar group.
Notes & References
- ↑ 1.0 1.1 1.2 1.3 Wang F, Gu Y, O'Brien JP, Yi SM, Yalcin SE, Srikanth V, Shen C, Vu D, Ing NL, Hochbaum AI, Egelman EH, Malvankar NS. Structure of Microbial Nanowires Reveals Stacked Hemes that Transport Electrons over Micrometers. Cell. 2019 Apr 4;177(2):361-369.e10. doi: 10.1016/j.cell.2019.03.029. PMID:30951668 doi:http://dx.doi.org/10.1016/j.cell.2019.03.029
- ↑ 2.0 2.1 Filman DJ, Marino SF, Ward JE, Yang L, Mester Z, Bullitt E, Lovley DR, Strauss M. Cryo-EM reveals the structural basis of long-range electron transport in a cytochrome-based bacterial nanowire. Commun Biol. 2019 Jun 19;2(1):219. doi: 10.1038/s42003-019-0448-9. PMID:31925024 doi:http://dx.doi.org/10.1038/s42003-019-0448-9
- ↑ 3.0 3.1 3.2 3.3 3.4 Pace CN, Grimsley GR, Scholtz JM. Protein ionizable groups: pK values and their contribution to protein stability and solubility. J Biol Chem. 2009 May 15;284(20):13285-9. doi: 10.1074/jbc.R800080200. Epub 2009 , Jan 21. PMID:19164280 doi:http://dx.doi.org/10.1074/jbc.R800080200
- ↑ 4.0 4.1 Kajander T, Kahn PC, Passila SH, Cohen DC, Lehtio L, Adolfsen W, Warwicker J, Schell U, Goldman A. Buried charged surface in proteins. Structure. 2000 Nov 15;8(11):1203-14. PMID:11080642


