Home LiteratureArticle Details
PMID: 16953892 Published · epublish English Journal Article

The signaling helix: a common functional theme in diverse signaling proteins.

Biology direct ·Vol. 1 ·2006-09-05 ·Pages 25

Anantharaman V, Balaji S, Aravind L

Abstract

The mechanism by which the signals are transmitted between receptor and effector domains in multi-domain signaling proteins is poorly understood. Using sensitive sequence analysis methods we identify a conserved helical segment of around 40 residues in a wide range of signaling proteins, including numerous sensor histidine kinases such as Sln1p, and receptor guanylyl cyclases such as the atrial natriuretic peptide receptor and nitric oxide receptors. We term this helical segment the signaling (S)-helix and present evidence that it forms a novel parallel coiled-coil element, distinct from previously known helical segments in signaling proteins, such as the Dimerization-Histidine phosphotransfer module of histidine kinases, the intra-cellular domains of the chemotaxis receptors, inter-GAF domain helical linkers and the alpha-helical HAMP module. Analysis of domain architectures allowed us to reconstruct the domain-neighborhood graph for the S-helix, which showed that the S-helix almost always occurs between two signaling domains. Several striking patterns in the domain neighborhood of the S-helix also became evident from the graph. It most often separates diverse N-terminal sensory domains from various C-terminal catalytic signaling domains such as histidine kinases, cNMP cyclase, PP2C phosphatases, NtrC-like AAA+ ATPases and diguanylate cyclases. It might also occur between two sensory domains such as PAS domains and occasionally between a DNA-binding HTH domain and a sensory domain. The sequence conservation pattern of the S-helix revealed the presence of a unique constellation of polar residues in the dimer-interface positions within the central heptad of the coiled-coil formed by the S-helix. Combining these observations with previously reported mutagenesis studies on different S-helix-containing proteins we suggest that it functions as a switch that prevents constitutive activation of linked downstream signaling domains. However, upon occurrence of specific conformational changes due to binding of ligand or other sensory inputs in a linked upstream domain it transmits the signal to the downstream domain. Thus, the S-helix represents one of the most prevalent functional themes involved in the flow of signals between modules in diverse prokaryote-type multi-domain signaling proteins. This article was reviewed by Frank Eisenhaber, Arcady Mushegian and Sandor Pongor.

Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Anantharaman Vivek
National Center for Biotechnology Information, National Library of Medicine, National Institutes of Health, Bethesda, MD 20894, USA. ananthar@mail.nih.gov
Balaji S
Aravind L
References (72)
72 references, click to expand
  1. Tropomyosin coiled-coil interactions: evidence for an unstaggered structure.
    J Mol Biol. 1975 Oct 25;98(2):293-304 PMID: 1195389
  2. The two GAF domains in phosphodiesterase 2A have distinct roles in dimerization and in cGMP binding.
    Proc Natl Acad Sci U S A. 2002 Oct 1;99(20):13260-5 PMID: 12271124
  3. The crystal structures of Phascolopsis gouldii wild type and L98Y methemerythrins: structural and functional alterations of the O2 binding pocket.
    J Biol Inorg Chem. 2001 Apr;6(4):418-29 PMID: 11372200
  4. Predicting transmembrane protein topology with a hidden Markov model: application to complete genomes.
    J Mol Biol. 2001 Jan 19;305(3):567-80 PMID: 11152613
  5. Crystal structure of the tandem GAF domains from a cyanobacterial adenylyl cyclase: modes of ligand binding and dimerization.
    Proc Natl Acad Sci U S A. 2005 Feb 22;102(8):3082-7 PMID: 15708973
  6. Cache - a signaling domain common to animal Ca(2+)-channel subunits and a class of prokaryotic chemotaxis receptors.
    Trends Biochem Sci. 2000 Nov;25(11):535-7 PMID: 11084361
  7. Four-helical-bundle structure of the cytoplasmic domain of a serine chemotaxis receptor.
    Nature. 1999 Aug 19;400(6746):787-92 PMID: 10466731
  8. The GAF domain: an evolutionary link between diverse phototransducing proteins.
    Trends Biochem Sci. 1997 Dec;22(12):458-9 PMID: 9433123
  9. Common extracellular sensory domains in transmembrane receptors for diverse signal transduction pathways in bacteria and archaea.
    J Bacteriol. 2003 Jan;185(1):285-94 PMID: 12486065
  10. 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
  11. The structure of alpha-helical coiled coils.
    Adv Protein Chem. 2005;70:37-78 PMID: 15837513
  12. A two-component regulator induces the transmission phenotype of stationary-phase Legionella pneumophila.
    Mol Microbiol. 2002 Apr;44(1):107-18 PMID: 11967072
  13. The bacterial adaptive response gene, barA, encodes a novel conserved histidine kinase regulatory switch for adaptation and modulation of metabolism in Escherichia coli.
    Mol Cell Biochem. 2003 Nov;253(1-2):167-77 PMID: 14619967
  14. A model for structural similarity between different SNARE complexes based on sequence relationships.
    Trends Cell Biol. 1998 Jul;8(7):260-2 PMID: 9714596
  15. The two-component regulators GacS and GacA influence accumulation of the stationary-phase sigma factor sigmaS and the stress response in Pseudomonas fluorescens Pf-5.
    J Bacteriol. 1998 Dec;180(24):6635-41 PMID: 9852008
  16. The many faces of the helix-turn-helix domain: transcription regulation and beyond.
    FEMS Microbiol Rev. 2005 Apr;29(2):231-62 PMID: 15808743
  17. A specialized version of the HD hydrolase domain implicated in signal transduction.
    J Mol Microbiol Biotechnol. 1999 Nov;1(2):303-5 PMID: 10943560
  18. Evolution of domain families.
    Adv Protein Chem. 2000;54:185-244 PMID: 10829229
  19. Application of multiple sequence alignment profiles to improve protein secondary structure prediction.
    Proteins. 2000 Aug 15;40(3):502-11 PMID: 10861942
  20. CBS domains in CIC chloride channels implicated in myotonia and nephrolithiasis (kidney stones).
    J Mol Med (Berl). 1997 Mar;75(3):160-3 PMID: 9106071
  21. Regulatory potential, phyletic distribution and evolution of ancient, intracellular small-molecule-binding domains.
    J Mol Biol. 2001 Apr 13;307(5):1271-92 PMID: 11292341
  22. Biochemical Society Special Lecture. Nitrate- and nitrite-responsive sensors NarX and NarQ of proteobacteria.
    Biochem Soc Trans. 2003 Feb;31(Pt 1):1-10 PMID: 12546643
  23. CDD: a curated Entrez database of conserved domain alignments.
    Nucleic Acids Res. 2003 Jan 1;31(1):383-7 PMID: 12520028
  24. CHASE: an extracellular sensing domain common to transmembrane receptors from prokaryotes, lower eukaryotes and plants.
    Trends Biochem Sci. 2001 Oct;26(10):582-4 PMID: 11590001
  25. Crystal structure of the protein serine/threonine phosphatase 2C at 2.0 A resolution.
    EMBO J. 1996 Dec 16;15(24):6798-809 PMID: 9003755
  26. Functional similarities among two-component sensors and methyl-accepting chemotaxis proteins suggest a role for linker region amphipathic helices in transmembrane signal transduction.
    Mol Microbiol. 1999 Sep;33(6):1093-102 PMID: 10510225
  27. Probing conservation of HAMP linker structure and signal transduction mechanism through analysis of hybrid sensor kinases.
    J Bacteriol. 2003 Aug;185(16):4872-82 PMID: 12897007
  28. Gleaning non-trivial structural, functional and evolutionary information about proteins by iterative database searches.
    J Mol Biol. 1999 Apr 16;287(5):1023-40 PMID: 10222208
  29. A novel two-over-two alpha-helical sandwich fold is characteristic of the truncated hemoglobin family.
    EMBO J. 2000 Jun 1;19(11):2424-34 PMID: 10835341
  30. The GCN4 basic region leucine zipper binds DNA as a dimer of uninterrupted alpha helices: crystal structure of the protein-DNA complex.
    Cell. 1992 Dec 24;71(7):1223-37 PMID: 1473154
  31. Two-component signal transduction.
    Annu Rev Biochem. 2000;69:183-215 PMID: 10966457
  32. Structure of the entire cytoplasmic portion of a sensor histidine-kinase protein.
    EMBO J. 2005 Dec 21;24(24):4247-59 PMID: 16319927
  33. WebLogo: a sequence logo generator.
    Genome Res. 2004 Jun;14(6):1188-90 PMID: 15173120
  34. The structure of the cofactor-binding fragment of the LysR family member, CysB: a familiar fold with a surprising subunit arrangement.
    Structure. 1997 Aug 15;5(8):1017-32 PMID: 9309218
  35. An unsuspected autoregulatory pathway involving apocytochrome TorC and sensor TorS in Escherichia coli.
    Proc Natl Acad Sci U S A. 2001 Sep 25;98(20):11615-20 PMID: 11562502
  36. Profile hidden Markov models.
    Bioinformatics. 1998;14(9):755-63 PMID: 9918945
  37. Structural, functional, and evolutionary relationships among extracellular solute-binding receptors of bacteria.
    Microbiol Rev. 1993 Jun;57(2):320-46 PMID: 8336670
  38. Evolutionary connections between bacterial and eukaryotic signaling systems: a genomic perspective.
    Curr Opin Microbiol. 2003 Oct;6(5):490-7 PMID: 14572542
  39. TopPred II: an improved software for membrane protein structure predictions.
    Comput Appl Biosci. 1994 Dec;10(6):685-6 PMID: 7704669
  40. Insights into the evolution of the nucleolus by an analysis of its protein domain repertoire.
    Bioessays. 2004 May;26(5):567-81 PMID: 15112237
  41. The ligand-binding domain in metabotropic glutamate receptors is related to bacterial periplasmic binding proteins.
    Neuron. 1993 Jul;11(1):41-52 PMID: 8338667
  42. The structure of a domain common to archaebacteria and the homocystinuria disease protein.
    Trends Biochem Sci. 1997 Jan;22(1):12-3 PMID: 9020585
  43. Identification of prokaryotic and eukaryotic signal peptides and prediction of their cleavage sites.
    Protein Eng. 1997 Jan;10(1):1-6 PMID: 9051728
  44. Application of comparative genomics in the identification and analysis of novel families of membrane-associated receptors in bacteria.
    BMC Genomics. 2003 Aug 12;4(1):34 PMID: 12914674
  45. STAND, a class of P-loop NTPases including animal and plant regulators of programmed cell death: multiple, complex domain architectures, unusual phyletic patterns, and evolution by horizontal gene transfer.
    J Mol Biol. 2004 Oct 8;343(1):1-28 PMID: 15381417
  46. A neural network method for identification of prokaryotic and eukaryotic signal peptides and prediction of their cleavage sites.
    Int J Neural Syst. 1997 Oct-Dec;8(5-6):581-99 PMID: 10065837
  47. Roll with the flow: microbial masters of redox chemistry.
    Trends Microbiol. 2004 Oct;12(10):439-41 PMID: 15381191
  48. The class III adenylyl cyclases: multi-purpose signalling modules.
    Cell Signal. 2003 Dec;15(12):1081-9 PMID: 14575863
  49. MUSCLE: multiple sequence alignment with high accuracy and high throughput.
    Nucleic Acids Res. 2004;32(5):1792-7 PMID: 15034147
  50. Consensus sequence Zen.
    Appl Bioinformatics. 2002;1(3):111-9 PMID: 15130839
  51. Functional classification of cNMP-binding proteins and nucleotide cyclases with implications for novel regulatory pathways in Mycobacterium tuberculosis.
    Genome Res. 2000 Feb;10(2):204-19 PMID: 10673278
  52. Activated alleles of yeast SLN1 increase Mcm1-dependent reporter gene expression and diminish signaling through the Hog1 osmosensing pathway.
    J Biol Chem. 1997 May 16;272(20):13365-71 PMID: 9148959
  53. Domain analysis of human transmembrane guanylyl cyclase receptors: implications for regulation.
    Front Biosci. 2005;10:1205-20 PMID: 15769619
  54. PAS: a multifunctional domain family comes to light.
    Curr Biol. 1997 Nov 1;7(11):R674-7 PMID: 9382818
  55. Mutations in the retinal guanylate cyclase (RETGC-1) gene in dominant cone-rod dystrophy.
    Hum Mol Genet. 1998 Jul;7(7):1179-84 PMID: 9618177
  56. Solution structure of the homodimeric core domain of Escherichia coli histidine kinase EnvZ.
    Nat Struct Biol. 1999 Aug;6(8):729-34 PMID: 10426948
  57. The NIT domain: a predicted nitrate-responsive module in bacterial sensory receptors.
    Trends Biochem Sci. 2003 Mar;28(3):121-4 PMID: 12633990
  58. SWISS-MODEL and the Swiss-PdbViewer: an environment for comparative protein modeling.
    Electrophoresis. 1997 Dec;18(15):2714-23 PMID: 9504803
  59. A cytoplasmic coiled-coil domain is required for histidine kinase activity of the yeast osmosensor, SLN1.
    Mol Microbiol. 2002 Jan;43(2):459-73 PMID: 11985722
  60. Identification of sequences mediating guanylyl cyclase dimerization.
    Biochemistry. 1995 Apr 11;34(14):4696-701 PMID: 7718574
  61. B-ZIP proteins encoded by the Drosophila genome: evaluation of potential dimerization partners.
    Genome Res. 2002 Aug;12(8):1190-200 PMID: 12176927
  62. MEDS and PocR are novel domains with a predicted role in sensing simple hydrocarbon derivatives in prokaryotic signal transduction systems.
    Bioinformatics. 2005 Jun 15;21(12):2805-11 PMID: 15814558
  63. Computational learning reveals coiled coil-like motifs in histidine kinase linker domains.
    Proc Natl Acad Sci U S A. 1998 Mar 17;95(6):2738-43 PMID: 9501159
  64. The CHASE domain: a predicted ligand-binding module in plant cytokinin receptors and other eukaryotic and bacterial receptors.
    Trends Biochem Sci. 2001 Oct;26(10):579-82 PMID: 11590000
  65. The Pfam protein families database.
    Nucleic Acids Res. 2002 Jan 1;30(1):276-80 PMID: 11752314
  66. PAS domains: internal sensors of oxygen, redox potential, and light.
    Microbiol Mol Biol Rev. 1999 Jun;63(2):479-506 PMID: 10357859
  67. SWISS-MODEL: An automated protein homology-modeling server.
    Nucleic Acids Res. 2003 Jul 1;31(13):3381-5 PMID: 12824332
  68. Gapped BLAST and PSI-BLAST: a new generation of protein database search programs.
    Nucleic Acids Res. 1997 Sep 1;25(17):3389-402 PMID: 9254694
  69. Ancient conserved domains shared by animal soluble guanylyl cyclases and bacterial signaling proteins.
    BMC Genomics. 2003;4(1):5 PMID: 12590654
  70. Formation of a novel four-helix bundle and molecular recognition sites by dimerization of a response regulator phosphotransferase.
    Mol Cell. 1998 Oct;2(4):485-93 PMID: 9809070
  71. Predicting coiled coils from protein sequences.
    Science. 1991 May 24;252(5009):1162-4 PMID: 2031185
  72. Evolutionary history and higher order classification of AAA+ ATPases.
    J Struct Biol. 2004 Apr-May;146(1-2):11-31 PMID: 15037234
Article Info
Journal
Biology direct
Abbr.
Biol Direct
ISSN
1745-6150
Published
2006-09-05
Epub
2006-00-05
Pages
25
Language
English
Region
England
NLM ID
101258412
PMCID
PMC1592074
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com