4c00 Citations

The structural basis of autotransporter translocation by TamA.

Nat Struct Mol Biol 20 1318-20 (2013)
Cited: 87 times
EuropePMC logo PMID: 24056943

Abstract

TamA is an Escherichia coli Omp85 protein involved in autotransporter biogenesis. It comprises a 16-stranded transmembrane β-barrel and three POTRA domains. The 2.3-Å crystal structure reveals that the TamA barrel is closed at the extracellular face by a conserved lid loop. The C-terminal β-strand of the barrel forms an unusual inward kink, which weakens the lateral barrel wall and creates a gate for substrate access to the lipid bilayer.

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  1. The β-barrel membrane protein insertase machinery from Gram-negative bacteria. Noinaj N, Rollauer SE, Buchanan SK. Curr Opin Struct Biol 31 35-42 (2015)
  2. Role of the lipid bilayer in outer membrane protein folding in Gram-negative bacteria. Horne JE, Brockwell DJ, Radford SE. J Biol Chem 295 10340-10367 (2020)
  3. How does a β-barrel integral membrane protein insert into the membrane? Zhang XC, Han L. Protein Cell 7 471-477 (2016)
  4. Foamy Viruses, Bet, and APOBEC3 Restriction. Jaguva Vasudevan AA, Becker D, Luedde T, Gohlke H, Münk C. Viruses 13 504 (2021)

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  1. Secretion systems in Gram-negative bacteria: structural and mechanistic insights. Costa TR, Felisberto-Rodrigues C, Meir A, Prevost MS, Redzej A, Trokter M, Waksman G. Nat Rev Microbiol 13 343-359 (2015)
  2. The β-barrel assembly machinery in motion. Noinaj N, Gumbart JC, Buchanan SK. Nat Rev Microbiol 15 197-204 (2017)
  3. The Power of Asymmetry: Architecture and Assembly of the Gram-Negative Outer Membrane Lipid Bilayer. Henderson JC, Zimmerman SM, Crofts AA, Boll JM, Kuhns LG, Herrera CM, Trent MS. Annu Rev Microbiol 70 255-278 (2016)
  4. The inverse autotransporter family: intimin, invasin and related proteins. Leo JC, Oberhettinger P, Schütz M, Linke D. Int J Med Microbiol 305 276-282 (2015)
  5. Two-Partner Secretion: Combining Efficiency and Simplicity in the Secretion of Large Proteins for Bacteria-Host and Bacteria-Bacteria Interactions. Guérin J, Bigot S, Schneider R, Buchanan SK, Jacob-Dubuisson F. Front Cell Infect Microbiol 7 148 (2017)
  6. From Chaperones to the Membrane with a BAM! Plummer AM, Fleming KG. Trends Biochem Sci 41 872-882 (2016)
  7. Protein folding in the cell envelope of Escherichia coli. De Geyter J, Tsirigotaki A, Orfanoudaki G, Zorzini V, Economou A, Karamanou S. Nat Microbiol 1 16107 (2016)
  8. Outer membrane protein folding from an energy landscape perspective. Schiffrin B, Brockwell DJ, Radford SE. BMC Biol 15 123 (2017)
  9. Looks can be deceiving: recent insights into the mechanism of protein secretion by the autotransporter pathway. Bernstein HD. Mol Microbiol 97 205-215 (2015)
  10. Escherichia coli surface display for the selection of nanobodies. Salema V, Fernández LÁ. Microb Biotechnol 10 1468-1484 (2017)
  11. A combined kinetic push and thermodynamic pull as driving forces for outer membrane protein sorting and folding in bacteria. Fleming KG. Philos Trans R Soc Lond B Biol Sci 370 20150026 (2015)
  12. Mechanistic studies of the biogenesis and folding of outer membrane proteins in vitro and in vivo: what have we learned to date? McMorran LM, Brockwell DJ, Radford SE. Arch Biochem Biophys 564 265-280 (2014)
  13. Job contenders: roles of the β-barrel assembly machinery and the translocation and assembly module in autotransporter secretion. Albenne C, Ieva R. Mol Microbiol 106 505-517 (2017)
  14. Membrane Protein Integration and Topogenesis at the ER. Spiess M, Junne T, Janoschke M. Protein J 38 306-316 (2019)
  15. Fitting the Pieces of the β-Barrel Assembly Machinery Complex. O'Neil PK, Rollauer SE, Noinaj N, Buchanan SK. Biochemistry 54 6303-6311 (2015)
  16. Bacterial machineries for the assembly of membrane-embedded β-barrel proteins. Ranava D, Caumont-Sarcos A, Albenne C, Ieva R. FEMS Microbiol Lett 365 (2018)
  17. Chaperones and chaperone-substrate complexes: Dynamic playgrounds for NMR spectroscopists. Burmann BM, Hiller S. Prog Nucl Magn Reson Spectrosc 86-87 41-64 (2015)
  18. Serine Protease Autotransporters of the Enterobacteriaceae (SPATEs): Out and About and Chopping It Up. Pokharel P, Habouria H, Bessaiah H, Dozois CM. Microorganisms 7 E594 (2019)
  19. Mitochondrial machineries for insertion of membrane proteins. Bohnert M, Pfanner N, van der Laan M. Curr Opin Struct Biol 33 92-102 (2015)
  20. On display: autotransporter secretion and application. van Ulsen P, Zinner KM, Jong WSP, Luirink J. FEMS Microbiol Lett 365 (2018)
  21. The assembly of β-barrel membrane proteins by BAM and SAM. Lundquist K, Billings E, Bi M, Wellnitz J, Noinaj N. Mol Microbiol 115 425-435 (2021)
  22. Proteomics, Bioinformatics and Structure-Function Antigen Mining For Gonorrhea Vaccines. Baarda BI, Martinez FG, Sikora AE. Front Immunol 9 2793 (2018)
  23. Folding Control in the Path of Type 5 Secretion. Dautin N. Toxins (Basel) 13 341 (2021)
  24. Solid and Liquid Surface-Supported Bacterial Membrane Mimetics as a Platform for the Functional and Structural Studies of Antimicrobials. Li S, Ren R, Lyu L, Song J, Wang Y, Lin TW, Brun AL, Hsu HY, Shen HH. Membranes (Basel) 12 906 (2022)
  25. Surveying membrane landscapes: a new look at the bacterial cell surface. Lithgow T, Stubenrauch CJ, Stumpf MPH. Nat Rev Microbiol 21 502-518 (2023)
  26. Functional and Structural Diversity of Bacterial Contact-Dependent Growth Inhibition Effectors. Cuthbert BJ, Hayes CS, Goulding CW. Front Mol Biosci 9 866854 (2022)
  27. Bacterial AsmA-Like Proteins: Bridging the Gap in Intermembrane Phospholipid Transport. Kumar S, Ruiz N. Contact (Thousand Oaks) 6 25152564231185931 (2023)

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