Home LiteratureArticle Details
PMID: 28018423 Published · epublish English Journal Article

A Meta-Analysis Based Method for Prioritizing Candidate Genes Involved in a Pre-specific Function.

Frontiers in plant science ·Vol. 7 ·2016-00-00 ·Pages 1914

Zhai J, Tang Y, Yuan H, Wang L, Shang H, Ma C

Abstract

The identification of genes associated with a given biological function in plants remains a challenge, although network-based gene prioritization algorithms have been developed for Arabidopsis thaliana and many non-model plant species. Nevertheless, these network-based gene prioritization algorithms have encountered several problems; one in particular is that of unsatisfactory prediction accuracy due to limited network coverage, varying link quality, and/or uncertain network connectivity. Thus, a model that integrates complementary biological data may be expected to increase the prediction accuracy of gene prioritization. Toward this goal, we developed a novel gene prioritization method named RafSee, to rank candidate genes using a random forest algorithm that integrates sequence, evolutionary, and epigenetic features of plants. Subsequently, we proposed an integrative approach named RAP (Rank Aggregation-based data fusion for gene Prioritization), in which an order statistics-based meta-analysis was used to aggregate the rank of the network-based gene prioritization method and RafSee, for accurately prioritizing candidate genes involved in a pre-specific biological function. Finally, we showcased the utility of RAP by prioritizing 380 flowering-time genes in Arabidopsis. The "leave-one-out" cross-validation experiment showed that RafSee could work as a complement to a current state-of-art network-based gene prioritization system (AraNet v2). Moreover, RAP ranked 53.68% (204/380) flowering-time genes higher than AraNet v2, resulting in an 39.46% improvement in term of the first quartile rank. Further evaluations also showed that RAP was effective in prioritizing genes-related to different abiotic stresses. To enhance the usability of RAP for Arabidopsis and non-model plant species, an R package implementing the method is freely available at http://bioinfo.nwafu.edu.cn/software.

Keywords
biological network data fusion flowering time gene prioritization machine learning meta-analysis rank aggregation systems biology
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Zhai Jingjing
State Kay Laboratory of Crop Stress Biology for Arid Areas, College of Life Sciences, Northwest A&F University Yangling, China.
Tang Yunjia
State Kay Laboratory of Crop Stress Biology for Arid Areas, College of Life Sciences, Northwest A&F University Yangling, China.
Yuan Hao
State Kay Laboratory of Crop Stress Biology for Arid Areas, College of Life Sciences, Northwest A&F University Yangling, China.
Wang Longteng
State Kay Laboratory of Crop Stress Biology for Arid Areas, College of Life Sciences, Northwest A&F University Yangling, China.
Shang Haoli
State Kay Laboratory of Crop Stress Biology for Arid Areas, College of Life Sciences, Northwest A&F University Yangling, China.
Ma Chuang
State Kay Laboratory of Crop Stress Biology for Arid Areas, College of Life Sciences, Northwest A&F University Yangling, China.
References (48)
48 references, click to expand
  1. Body-methylated genes in Arabidopsis thaliana are functionally important and evolve slowly.
    Mol Biol Evol. 2012 Jan;29(1):219-27 PMID: 21813466
  2. PICARA, an analytical pipeline providing probabilistic inference about a priori candidates genes underlying genome-wide association QTL in plants.
    PLoS One. 2012;7(11):e46596 PMID: 23144785
  3. Genetic dissection of the biotic stress response using a genome-scale gene network for rice.
    Proc Natl Acad Sci U S A. 2011 Nov 8;108(45):18548-53 PMID: 22042862
  4. Genome-wide association study of 107 phenotypes in Arabidopsis thaliana inbred lines.
    Nature. 2010 Jun 3;465(7298):627-31 PMID: 20336072
  5. Association of genes to genetically inherited diseases using data mining.
    Nat Genet. 2002 Jul;31(3):316-9 PMID: 12006977
  6. Robust rank aggregation for gene list integration and meta-analysis.
    Bioinformatics. 2012 Feb 15;28(4):573-80 PMID: 22247279
  7. Quantifying the effect of burial of amino acid residues on protein stability.
    Proteins. 2004 Feb 1;54(2):315-22 PMID: 14696193
  8. Towards revealing the functions of all genes in plants.
    Trends Plant Sci. 2014 Apr;19(4):212-21 PMID: 24231067
  9. Arabidopsis Kelch repeat F-box proteins regulate phenylpropanoid biosynthesis via controlling the turnover of phenylalanine ammonia-lyase.
    Plant Cell. 2013 Dec;25(12):4994-5010 PMID: 24363316
  10. Folding RaCe: a robust method for predicting changes in protein folding rates upon point mutations.
    Bioinformatics. 2015 Jul 1;31(13):2091-7 PMID: 25686635
  11. Computational prediction of proteotypic peptides for quantitative proteomics.
    Nat Biotechnol. 2007 Jan;25(1):125-31 PMID: 17195840
  12. PASE: a novel method for functional prediction of amino acid substitutions based on physicochemical properties.
    Front Genet. 2013 Mar 06;4:21 PMID: 23508070
  13. STRING 8--a global view on proteins and their functional interactions in 630 organisms.
    Nucleic Acids Res. 2009 Jan;37(Database issue):D412-6 PMID: 18940858
  14. Integrating Rare-Variant Testing, Function Prediction, and Gene Network in Composite Resequencing-Based Genome-Wide Association Studies (CR-GWAS).
    G3 (Bethesda). 2011 Aug;1(3):233-43 PMID: 22384334
  15. PlaNet: combined sequence and expression comparisons across plant networks derived from seven species.
    Plant Cell. 2011 Mar;23(3):895-910 PMID: 21441431
  16. AraNet v2: an improved database of co-functional gene networks for the study of Arabidopsis thaliana and 27 other nonmodel plant species.
    Nucleic Acids Res. 2015 Jan;43(Database issue):D996-1002 PMID: 25355510
  17. Rational association of genes with traits using a genome-scale gene network for Arabidopsis thaliana.
    Nat Biotechnol. 2010 Feb;28(2):149-56 PMID: 20118918
  18. Large-scale co-expression approach to dissect secondary cell wall formation across plant species.
    Front Plant Sci. 2011 Jul 01;2:23 PMID: 22639584
  19. Computational tools for prioritizing candidate genes: boosting disease gene discovery.
    Nat Rev Genet. 2012 Jul 03;13(8):523-36 PMID: 22751426
  20. ATTED-II in 2016: A Plant Coexpression Database Towards Lineage-Specific Coexpression.
    Plant Cell Physiol. 2016 Jan;57(1):e5 PMID: 26546318
  21. Identification of protein functions using a machine-learning approach based on sequence-derived properties.
    Proteome Sci. 2009 Aug 09;7:27 PMID: 19664241
  22. The role of epigenetic processes in controlling flowering time in plants exposed to stress.
    J Exp Bot. 2011 Jul;62(11):3727-35 PMID: 21633082
  23. A guide to web tools to prioritize candidate genes.
    Brief Bioinform. 2011 Jan;12(1):22-32 PMID: 21278374
  24. Gene prioritization through genomic data fusion.
    Nat Biotechnol. 2006 May;24(5):537-44 PMID: 16680138
  25. Machine learning applications in genetics and genomics.
    Nat Rev Genet. 2015 Jun;16(6):321-32 PMID: 25948244
  26. The AT-hook motif-containing protein AHL22 regulates flowering initiation by modifying FLOWERING LOCUS T chromatin in Arabidopsis.
    J Biol Chem. 2012 May 4;287(19):15307-16 PMID: 22442143
  27. Hydrophobicity and structural classes in proteins.
    Protein Eng. 1992 Jul;5(5):373-5 PMID: 1518784
  28. Amino acid side-chain partition energies and distribution of residues in soluble proteins.
    Biophys J. 1985 Jan;47(1):61-70 PMID: 3978191
  29. Characteristics of Plant Essential Genes Allow for within- and between-Species Prediction of Lethal Mutant Phenotypes.
    Plant Cell. 2015 Aug;27(8):2133-47 PMID: 26286535
  30. The GeneMANIA prediction server: biological network integration for gene prioritization and predicting gene function.
    Nucleic Acids Res. 2010 Jul;38(Web Server issue):W214-20 PMID: 20576703
  31. Machine learning-based differential network analysis: a study of stress-responsive transcriptomes in Arabidopsis.
    Plant Cell. 2014 Feb;26(2):520-37 PMID: 24520154
  32. Gene Networks in Plant Biology: Approaches in Reconstruction and Analysis.
    Trends Plant Sci. 2015 Oct;20(10):664-75 PMID: 26440435
  33. Combining genome-wide association mapping and transcriptional networks to identify novel genes controlling glucosinolates in Arabidopsis thaliana.
    PLoS Biol. 2011 Aug;9(8):e1001125 PMID: 21857804
  34. Repression of FLOWERING LOCUS T chromatin by functionally redundant histone H3 lysine 4 demethylases in Arabidopsis.
    PLoS One. 2009 Nov 25;4(11):e8033 PMID: 19946624
  35. Hydrophobicity scales and computational techniques for detecting amphipathic structures in proteins.
    J Mol Biol. 1987 Jun 5;195(3):659-85 PMID: 3656427
  36. The solubility of amino acids and two glycine peptides in aqueous ethanol and dioxane solutions. Establishment of a hydrophobicity scale.
    J Biol Chem. 1971 Apr 10;246(7):2211-7 PMID: 5555568
  37. The link between flowering time and stress tolerance.
    J Exp Bot. 2016 Jan;67(1):47-60 PMID: 26428061
  38. Correlation of sequence hydrophobicities measures similarity in three-dimensional protein structure.
    J Mol Biol. 1983 Dec 25;171(4):479-88 PMID: 6663622
  39. Data mining in the Life Sciences with Random Forest: a walk in the park or lost in the jungle?
    Brief Bioinform. 2013 May;14(3):315-26 PMID: 22786785
  40. Learning from Co-expression Networks: Possibilities and Challenges.
    Front Plant Sci. 2016 Apr 08;7:444 PMID: 27092161
  41. An integrated network of Arabidopsis growth regulators and its use for gene prioritization.
    Sci Rep. 2015 Dec 01;5:17617 PMID: 26620795
  42. Deposition of histone variant H2A.Z within gene bodies regulates responsive genes.
    PLoS Genet. 2012;8(10):e1002988 PMID: 23071449
  43. WikiPathways: capturing the full diversity of pathway knowledge.
    Nucleic Acids Res. 2016 Jan 4;44(D1):D488-94 PMID: 26481357
  44. RiceNet v2: an improved network prioritization server for rice genes.
    Nucleic Acids Res. 2015 Jul 1;43(W1):W122-7 PMID: 25813048
  45. Functional characterization of drought-responsive modules and genes in Oryza sativa: a network-based approach.
    Front Genet. 2015 Jul 30;6:256 PMID: 26284112
  46. Unravelling angiosperm genome evolution by phylogenetic analysis of chromosomal duplication events.
    Nature. 2003 Mar 27;422(6930):433-8 PMID: 12660784
  47. FamNet: A Framework to Identify Multiplied Modules Driving Pathway Expansion in Plants.
    Plant Physiol. 2016 Mar;170(3):1878-94 PMID: 26754669
  48. Prediction of protein cellular attributes using pseudo-amino acid composition.
    Proteins. 2001 May 15;43(3):246-55 PMID: 11288174
Article Info
Journal
Frontiers in plant science
Abbr.
Front Plant Sci
ISSN
1664-462X
Published
2016-00-00
Epub
2016-00-15
Pages
1914
Language
English
Region
Switzerland
NLM ID
101568200
PMCID
PMC5156684
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