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PMID: 17299051 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

Evolutionary genomics reveals conserved structural determinants of signaling and adaptation in microbial chemoreceptors.

Alexander RP, Zhulin IB

Abstract

As an important model for transmembrane signaling, methyl-accepting chemotaxis proteins (MCPs) have been extensively studied by using genetic, biochemical, and structural techniques. However, details of the molecular mechanism of signaling are still not well understood. The availability of genomic information for hundreds of species enables the identification of features in protein sequences that are conserved over long evolutionary distances and thus are critically important for function. We carried out a large-scale comparative genomic analysis of the MCP signaling and adaptation domain family and identified features that appear to be critical for receptor structure and function. Based on domain length and sequence conservation, we identified seven major MCP classes and three distinct structural regions within the cytoplasmic domain: signaling, methylation, and flexible bundle subdomains. The flexible bundle subdomain, not previously recognized in MCPs, is a conserved element that appears to be important for signal transduction. Remarkably, the N- and C-terminal helical arms of the cytoplasmic domain maintain symmetry in length and register despite dramatic variation, from 24 to 64 7-aa heptads in overall domain length. Loss of symmetry is observed in some MCPs, where it is concomitant with specific changes in the sensory module. Each major MCP class has a distinct pattern of predicted methylation sites that is well supported by experimental data. Our findings indicate that signaling and adaptation functions within the MCP cytoplasmic domain are tightly coupled, and that their coevolution has contributed to the significant diversity in chemotaxis mechanisms among different organisms.

MeSH Terms
Adaptation, Physiological Amino Acid Sequence Bacteria/chemistry Bacterial Proteins/chemistry,classification Evolution, Molecular Genomics Membrane Proteins/chemistry,classification Methyl-Accepting Chemotaxis Proteins Molecular Sequence Data Protein Structure, Tertiary Sequence Alignment Signal Transduction Structural Homology, Protein
Chemicals
Bacterial Proteins Membrane Proteins Methyl-Accepting Chemotaxis Proteins
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Alexander Roger P
Center for Bioinformatics and Computational Biology, School of Biology, Georgia Institute of Technology, Atlanta, GA 30332-0230, USA.
Zhulin Igor B
References (42)
42 references, click to expand
  1. Discrimination between different methylation states of chemotaxis receptor Tar by receptor methyltransferase CheR.
    Biochemistry. 2004 Feb 3;43(4):953-61 PMID: 14744139
  2. Extended knobs-into-holes packing in classical and complex coiled-coil assemblies.
    J Struct Biol. 2003 Dec;144(3):349-61 PMID: 14643203
  3. Functional interactions between receptors in bacterial chemotaxis.
    Nature. 2004 Mar 25;428(6981):437-41 PMID: 15042093
  4. Selective methylation changes on the Bacillus subtilis chemotaxis receptor McpB promote adaptation.
    J Biol Chem. 2000 Aug 11;275(32):24264-72 PMID: 10825179
  5. Structure of a conserved receptor domain that regulates kinase activity: the cytoplasmic domain of bacterial taxis receptors.
    Curr Opin Struct Biol. 2000 Aug;10(4):462-9 PMID: 10981636
  6. Socket: a program for identifying and analysing coiled-coil motifs within protein structures.
    J Mol Biol. 2001 Apr 13;307(5):1427-50 PMID: 11292353
  7. Transmembrane signaling in bacterial chemoreceptors.
    Trends Biochem Sci. 2001 Apr;26(4):257-65 PMID: 11295559
  8. The superfamily of chemotaxis transducers: from physiology to genomics and back.
    Adv Microb Physiol. 2001;45:157-98 PMID: 11450109
  9. Inter-receptor communication through arrays of bacterial chemoreceptors.
    Nature. 2002 Jan 3;415(6867):81-4 PMID: 11780121
  10. Receptor sensitivity in bacterial chemotaxis.
    Proc Natl Acad Sci U S A. 2002 Jan 8;99(1):123-7 PMID: 11742065
  11. Collaborative signaling by mixed chemoreceptor teams in Escherichia coli.
    Proc Natl Acad Sci U S A. 2002 May 14;99(10):7060-5 PMID: 11983857
  12. Bacillus subtilis CheD is a chemoreceptor modification enzyme required for chemotaxis.
    J Biol Chem. 2002 Jul 12;277(28):25356-62 PMID: 12011078
  13. Dynamic and clustering model of bacterial chemotaxis receptors: structural basis for signaling and high sensitivity.
    Proc Natl Acad Sci U S A. 2002 Sep 3;99(18):11611-5 PMID: 12186970
  14. Mapping out regions on the surface of the aspartate receptor that are essential for kinase activation.
    Biochemistry. 2003 Mar 18;42(10):2952-9 PMID: 12627961
  15. Multiple sequence alignment with the Clustal series of programs.
    Nucleic Acids Res. 2003 Jul 1;31(13):3497-500 PMID: 12824352
  16. Crosslinking snapshots of bacterial chemoreceptor squads.
    Proc Natl Acad Sci U S A. 2004 Feb 17;101(7):2117-22 PMID: 14769919
  17. WebLogo: a sequence logo generator.
    Genome Res. 2004 Jun;14(6):1188-90 PMID: 15173120
  18. Diversity in chemotaxis mechanisms among the bacteria and archaea.
    Microbiol Mol Biol Rev. 2004 Jun;68(2):301-19 PMID: 15187186
  19. MEGA3: Integrated software for Molecular Evolutionary Genetics Analysis and sequence alignment.
    Brief Bioinform. 2004 Jun;5(2):150-63 PMID: 15260895
  20. Temporal comparisons in bacterial chemotaxis.
    Proc Natl Acad Sci U S A. 1986 Dec;83(23):8987-91 PMID: 3024160
  21. Genetic evidence for interaction between the CheW and Tsr proteins during chemoreceptor signaling by Escherichia coli.
    J Bacteriol. 1991 Aug;173(16):4941-51 PMID: 1860813
  22. Interactions between the methylation sites of the Escherichia coli aspartate receptor mediated by the methyltransferase.
    J Biol Chem. 1995 Jan 13;270(2):751-5 PMID: 7822306
  23. Redesigning the hydrophobic core of a four-helix-bundle protein.
    Protein Sci. 1994 Nov;3(11):2015-22 PMID: 7535612
  24. The Alacoil: a very tight, antiparallel coiled-coil of helices.
    Protein Sci. 1995 Nov;4(11):2252-60 PMID: 8563621
  25. Molecular evolution of the C-terminal cytoplasmic domain of a superfamily of bacterial receptors involved in taxis.
    J Mol Biol. 1996 Aug 30;261(4):568-85 PMID: 8794877
  26. Receptor clustering as a cellular mechanism to control sensitivity.
    Nature. 1998 May 7;393(6680):85-8 PMID: 9590695
  27. Profile hidden Markov models.
    Bioinformatics. 1998;14(9):755-63 PMID: 9918945
  28. Robustness in bacterial chemotaxis.
    Nature. 1999 Jan 14;397(6715):168-71 PMID: 9923680
  29. The cytoplasmic helical linker domain of receptor histidine kinase and methyl-accepting proteins is common to many prokaryotic signalling proteins.
    FEMS Microbiol Lett. 1999 Jul 1;176(1):111-6 PMID: 10418137
  30. Four-helical-bundle structure of the cytoplasmic domain of a serine chemotaxis receptor.
    Nature. 1999 Aug 19;400(6746):787-92 PMID: 10466731
  31. Identification of methylation sites and effects of phototaxis stimuli on transducer methylation in Halobacterium salinarum.
    J Bacteriol. 1999 Sep;181(18):5676-83 PMID: 10482508
  32. Making sense of it all: bacterial chemotaxis.
    Nat Rev Mol Cell Biol. 2004 Dec;5(12):1024-37 PMID: 15573139
  33. Three-dimensional structure and organization of a receptor/signaling complex.
    Proc Natl Acad Sci U S A. 2004 Dec 14;101(50):17480-5 PMID: 15572451
  34. Adaptation mechanism of the aspartate receptor: electrostatics of the adaptation subdomain play a key role in modulating kinase activity.
    Biochemistry. 2005 Feb 8;44(5):1550-60 PMID: 15683239
  35. MpcT is the transducer for membrane potential changes in Halobacterium salinarum.
    Mol Microbiol. 2005 Mar;55(6):1681-94 PMID: 15752193
  36. Conserved glycine residues in the cytoplasmic domain of the aspartate receptor play essential roles in kinase coupling and on-off switching.
    Biochemistry. 2005 May 31;44(21):7687-95 PMID: 15909983
  37. A receptor-modifying deamidase in complex with a signaling phosphatase reveals reciprocal regulation.
    Cell. 2006 Feb 10;124(3):561-71 PMID: 16469702
  38. Identification of methylation sites in Thermotoga maritima chemotaxis receptors.
    J Bacteriol. 2006 Jun;188(11):4093-100 PMID: 16707700
  39. Reconstruction of the chemotaxis receptor-kinase assembly.
    Nat Struct Mol Biol. 2006 May;13(5):400-7 PMID: 16622408
  40. Precise adaptation in bacterial chemotaxis through "assistance neighborhoods".
    Proc Natl Acad Sci U S A. 2006 Aug 29;103(35):13040-4 PMID: 16924119
  41. The HAMP domain structure implies helix rotation in transmembrane signaling.
    Cell. 2006 Sep 8;126(5):929-40 PMID: 16959572
  42. MiST: a microbial signal transduction database.
    Nucleic Acids Res. 2007 Jan;35(Database issue):D386-90 PMID: 17135192
Article Info
Journal
Proceedings of the National Academy of Sciences of the United States of America
Abbr.
Proc Natl Acad Sci U S A
ISSN
0027-8424
Published
2007-02-20
Epub
2007-00-13
Pages
2885-90
Language
English
Region
United States
NLM ID
7505876
PMCID
PMC1797150
Subset
IM
Grants
NIGMS NIH HHS · R01 GM072285 · United States
NIGMS NIH HHS · GM 72285 · United States
Corrections
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