Literature DB >> 15215411

GDAP: a web tool for genome-wide protein disulfide bond prediction.

Brian D O'Connor1, Todd O Yeates.   

Abstract

The Genomic Disulfide Analysis Program (GDAP) provides web access to computationally predicted protein disulfide bonds for over one hundred microbial genomes, including both bacterial and achaeal species. In the GDAP process, sequences of unknown structure are mapped, when possible, to known homologous Protein Data Bank (PDB) structures, after which specific distance criteria are applied to predict disulfide bonds. GDAP also accepts user-supplied protein sequences and subsequently queries the PDB sequence database for the best matches, scans for possible disulfide bonds and returns the results to the client. These predictions are useful for a variety of applications and have previously been used to show a dramatic preference in certain thermophilic archaea and bacteria for disulfide bonds within intracellular proteins. Given the central role these stabilizing, covalent bonds play in such organisms, the predictions available from GDAP provide a rich data source for designing site-directed mutants with more stable thermal profiles. The GDAP web application is a gateway to this information and can be used to understand the role disulfide bonds play in protein stability both in these unusual organisms and in sequences of interest to the individual researcher. The prediction server can be accessed at http://www.doe-mbi.ucla.edu/Services/GDAP.

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Year:  2004        PMID: 15215411      PMCID: PMC441514          DOI: 10.1093/nar/gkh376

Source DB:  PubMed          Journal:  Nucleic Acids Res        ISSN: 0305-1048            Impact factor:   16.971


  10 in total

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Journal:  Nucleic Acids Res       Date:  2000-01-01       Impact factor: 16.971

2.  A neural network method for identification of prokaryotic and eukaryotic signal peptides and prediction of their cleavage sites.

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3.  PROSITE: a documented database using patterns and profiles as motif descriptors.

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4.  ScanProsite: a reference implementation of a PROSITE scanning tool.

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Journal:  Appl Bioinformatics       Date:  2002

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Authors:  S F Altschul; T L Madden; A A Schäffer; J Zhang; Z Zhang; W Miller; D J Lipman
Journal:  Nucleic Acids Res       Date:  1997-09-01       Impact factor: 16.971

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Authors:  T F Smith; M S Waterman
Journal:  J Mol Biol       Date:  1981-03-25       Impact factor: 5.469

10.  Genomic evidence that the intracellular proteins of archaeal microbes contain disulfide bonds.

Authors:  Parag Mallick; Daniel R Boutz; David Eisenberg; Todd O Yeates
Journal:  Proc Natl Acad Sci U S A       Date:  2002-07-09       Impact factor: 11.205

  10 in total
  13 in total

1.  Characterization of the structure of RAMP1 by mutagenesis and molecular modeling.

Authors:  John Simms; Debbie L Hay; Mark Wheatley; David R Poyner
Journal:  Biophys J       Date:  2006-04-21       Impact factor: 4.033

2.  Oxidation-induced intramolecular disulfide bond inactivates mitogen-activated protein kinase kinase 6 by inhibiting ATP binding.

Authors:  Yarui Diao; Wei Liu; Catherine C L Wong; Xi Wang; Kaman Lee; Po-yan Cheung; Lifeng Pan; Tao Xu; Jiahuai Han; John R Yates; Mingjie Zhang; Zhenguo Wu
Journal:  Proc Natl Acad Sci U S A       Date:  2010-11-15       Impact factor: 11.205

3.  Accurate disulfide-bonding network predictions improve ab initio structure prediction of cysteine-rich proteins.

Authors:  Jing Yang; Bao-Ji He; Richard Jang; Yang Zhang; Hong-Bin Shen
Journal:  Bioinformatics       Date:  2015-08-07       Impact factor: 6.937

Review 4.  Posttranslational protein modification in Archaea.

Authors:  Jerry Eichler; Michael W W Adams
Journal:  Microbiol Mol Biol Rev       Date:  2005-09       Impact factor: 11.056

Review 5.  Multiple catalytically active thioredoxin folds: a winning strategy for many functions.

Authors:  Emilia Pedone; Danila Limauro; Katia D'Ambrosio; Giuseppina De Simone; Simonetta Bartolucci
Journal:  Cell Mol Life Sci       Date:  2010-07-13       Impact factor: 9.261

6.  Role of intrachain disulfides in the activities of the CdtA and CdtC subunits of the cytolethal distending toxin of Actinobacillus actinomycetemcomitans.

Authors:  Linsen Cao; Alla Volgina; Jonathan Korostoff; Joseph M DiRienzo
Journal:  Infect Immun       Date:  2006-09       Impact factor: 3.441

7.  Engineering an ultra-thermostable β(1)-adrenoceptor.

Authors:  Jennifer L Miller; Christopher G Tate
Journal:  J Mol Biol       Date:  2011-09-06       Impact factor: 5.469

8.  Structure of the DPS-like protein from Sulfolobus solfataricus reveals a bacterioferritin-like dimetal binding site within a DPS-like dodecameric assembly.

Authors:  George H Gauss; Philippe Benas; Blake Wiedenheft; Mark Young; Trevor Douglas; C Martin Lawrence
Journal:  Biochemistry       Date:  2006-09-12       Impact factor: 3.162

9.  Prediction of reversibly oxidized protein cysteine thiols using protein structure properties.

Authors:  Ricardo Sanchez; Megan Riddle; Jongwook Woo; Jamil Momand
Journal:  Protein Sci       Date:  2008-03       Impact factor: 6.725

10.  Modeling activated states of GPCRs: the rhodopsin template.

Authors:  Masha Y Niv; Lucy Skrabanek; Marta Filizola; Harel Weinstein
Journal:  J Comput Aided Mol Des       Date:  2006-11-11       Impact factor: 3.686

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