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

BACKGROUND: The mechanism by which the signals are transmitted between receptor and effector domains in multi-domain signaling proteins is poorly understood. RESULTS: Using sensitive sequence analysis methods we identify a conserved helical segment of around 40 residues in a wide range of signaling...

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Autores principales: Anantharaman, Vivek, Balaji, S, Aravind, L
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2006
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1592074/
https://www.ncbi.nlm.nih.gov/pubmed/16953892
http://dx.doi.org/10.1186/1745-6150-1-25
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author Anantharaman, Vivek
Balaji, S
Aravind, L
author_facet Anantharaman, Vivek
Balaji, S
Aravind, L
author_sort Anantharaman, Vivek
collection PubMed
description BACKGROUND: The mechanism by which the signals are transmitted between receptor and effector domains in multi-domain signaling proteins is poorly understood. RESULTS: 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 α-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. CONCLUSION: 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. REVIEWERS: This article was reviewed by Frank Eisenhaber, Arcady Mushegian and Sandor Pongor.
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spelling pubmed-15920742006-10-05 The signaling helix: a common functional theme in diverse signaling proteins Anantharaman, Vivek Balaji, S Aravind, L Biol Direct Research BACKGROUND: The mechanism by which the signals are transmitted between receptor and effector domains in multi-domain signaling proteins is poorly understood. RESULTS: 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 α-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. CONCLUSION: 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. REVIEWERS: This article was reviewed by Frank Eisenhaber, Arcady Mushegian and Sandor Pongor. BioMed Central 2006-09-05 /pmc/articles/PMC1592074/ /pubmed/16953892 http://dx.doi.org/10.1186/1745-6150-1-25 Text en Copyright © 2006 Anantharaman et al; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License ( (http://creativecommons.org/licenses/by/2.0) ), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research
Anantharaman, Vivek
Balaji, S
Aravind, L
The signaling helix: a common functional theme in diverse signaling proteins
title The signaling helix: a common functional theme in diverse signaling proteins
title_full The signaling helix: a common functional theme in diverse signaling proteins
title_fullStr The signaling helix: a common functional theme in diverse signaling proteins
title_full_unstemmed The signaling helix: a common functional theme in diverse signaling proteins
title_short The signaling helix: a common functional theme in diverse signaling proteins
title_sort signaling helix: a common functional theme in diverse signaling proteins
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1592074/
https://www.ncbi.nlm.nih.gov/pubmed/16953892
http://dx.doi.org/10.1186/1745-6150-1-25
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