Gene3D: merging structure and function for a Thousand genomes

被引:37
|
作者
Lees, Jonathan [1 ]
Yeats, Corin [1 ]
Redfern, Oliver [1 ]
Clegg, Andrew [1 ]
Orengo, Christine [1 ]
机构
[1] UCL, Dept Biochem & Mol Biol, London WC1 6BT, England
基金
美国国家卫生研究院;
关键词
PROTEIN; RESOURCE; RECOGNITION; PREDICTION; SEQUENCE; DATABASE;
D O I
10.1093/nar/gkp987
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Over the last 2 years the Gene3D resource has been significantly improved, and is now more accurate and with a much richer interactive display via the Gene3D website (http://gene3d.biochem.ucl.ac.uk/). Gene3D provides accurate structural domain family assignments for over 1100 genomes and nearly 10 000 000 proteins. A hidden Markov model library, constructed from the manually curated CATH structural domain hierarchy, is used to search UniProt, RefSeq and Ensembl protein sequences. The resulting matches are refined into simple multi-domain architectures using a recently developed in-house algorithm, DomainFinder 3 (available at: ftp://ftp.biochem.ucl.ac.uk/pub/gene3d_data/DomainFinder3/). The domain assignments are integrated with multiple external protein function descriptions (e. g. Gene Ontology and KEGG), structural annotations (e. g. coiled coils, disordered regions and sequence polymorphisms) and family resources (e. g. Pfam and eggNog) and displayed on the Gene3D website. The website allows users to view descriptions for both single proteins and genes and large protein sets, such as superfamilies or genomes. Subsets can then be selected for detailed investigation or associated functions and interactions can be used to expand explorations to new proteins. Gene3D also provides a set of services, including an interactive genome coverage graph visualizer, DAS annotation resources, sequence search facilities and SOAP services.
引用
收藏
页码:D296 / D300
页数:5
相关论文
共 50 条
  • [31] Comparison of cell envelope gene structure in Chlamydia genomes
    Rao, G
    Chin, DKY
    PROCEEDINGS OF THE 8TH JOINT CONFERENCE ON INFORMATION SCIENCES, VOLS 1-3, 2005, : 1260 - 1264
  • [32] Acetylcholinesterase: From 3D structure to function
    Dvir, Hay
    Silman, Israel
    Harel, Michal
    Rosenberry, Terrone L.
    Sussman, Joel L.
    CHEMICO-BIOLOGICAL INTERACTIONS, 2010, 187 (1-3) : 10 - 22
  • [33] 3D bioprinting: from structure to function
    He Y.
    Gao Q.
    Liu A.
    Sun M.
    Fu J.-Z.
    Zhejiang Daxue Xuebao (Gongxue Ban)/Journal of Zhejiang University (Engineering Science), 2019, 53 (03): : 407 - 419
  • [34] The structure function F2D(3)
    De Roeck, A
    LOW X PHYSICS, 1998, : 194 - 201
  • [35] ANIMATING THE 3D STRUCTURE AND FUNCTION OF BRAIN
    TOGA, AW
    PAYNE, BA
    COMPUTERIZED MEDICAL IMAGING AND GRAPHICS, 1991, 15 (05) : 285 - 291
  • [36] The 3D Genome: From Structure to Function
    Mohanta, Tapan Kumar
    Mishra, Awdhesh Kumar
    Al-Harrasi, Ahmed
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2021, 22 (21)
  • [37] Gene3D: a domain-based resource for comparative genomics, functional annotation and protein network analysis (vol 40, pg D465, 2011)
    Lees, Jonathan
    Yeats, Corin
    Perkins, James
    Sillitoe, Ian
    Rentzsch, Robert
    Dessailly, Benoit H.
    Orengo, Christine
    NUCLEIC ACIDS RESEARCH, 2012, 40 (10) : 4725 - 4725
  • [38] 3-D Map Merging on Pose Graphs
    Bonanni, Taigo Maria
    Della Corte, Bartolomeo
    Grisetti, Giorgio
    IEEE ROBOTICS AND AUTOMATION LETTERS, 2017, 2 (02): : 1031 - 1038
  • [39] 3-D data merging using Holoimage
    Zhang, Song
    Yau, Shing-Tung
    TWO- AND THREE-DIMENSIONAL METHODS FOR INSPECTION AND METROLOGY V, 2007, 6762
  • [40] Effects of short indels on protein structure and function in human genomes
    Maoxuan Lin
    Sarah Whitmire
    Jing Chen
    Alvin Farrel
    Xinghua Shi
    Jun-tao Guo
    Scientific Reports, 7