Home LiteratureArticle Details
PMID: 19918083 Published · ppublish English Comparative Study Journal Article Research Support, Non-U.S. Gov't

Dissecting the expression dynamics of RNA-binding proteins in posttranscriptional regulatory networks.

Mittal N, Roy N, Babu MM, Janga SC

Abstract

In eukaryotic organisms, gene expression requires an additional level of coordination that links transcriptional and posttranslational processes. Messenger RNAs have traditionally been viewed as passive molecules in the pathway from transcription to translation. However, it is now clear that RNA-binding proteins (RBPs) play an important role in cellular homeostasis by controlling gene expression at the posttranscriptional level. Here, we show that RBPs, as a class of proteins, show distinct gene expression dynamics compared to other protein coding genes in the eukaryote Sacchoromyces cerevisiae. We find that RBPs generally exhibit high protein stability, translational efficiency, and protein abundance but their encoding transcripts tend to have a low half-life. We show that RBPs are also most often posttranslationally modified, indicating their potential for regulation at the protein level to control diverse cellular processes. Further analysis of the RBP-RNA interaction network showed that the number of distinct targets bound by an RBP (connectivity) is strongly correlated with its protein stability, translational efficiency, and abundance. We also note that RBPs show less noise in their expression in a population of cells, with highly connected RBPs showing significantly lower noise. Our results indicate that highly connected RBPs are likely to be tightly regulated at the protein level as significant changes in their expression may bring about large-scale changes in global expression levels by affecting their targets. These observations might explain the molecular basis behind the cause of a number of disorders associated with misexpression or mutation in RBPs. Future studies uncovering the posttranscriptional networks in higher eukaryotes can help our understanding of the link between different levels of regulation and their role in pathological conditions.

MeSH Terms
Gene Expression Regulation/physiology Gene Regulatory Networks/physiology Models, Biological RNA Processing, Post-Transcriptional/physiology RNA-Binding Proteins/metabolism Saccharomyces cerevisiae Saccharomyces cerevisiae Proteins/metabolism
Chemicals
RNA-Binding Proteins Saccharomyces cerevisiae Proteins
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Mittal Nitish
MRC Laboratory of Molecular Biology, Hills Road, Cambridge CB2 0QH, United Kingdom. nmittal@mrc-lmb.cam.ac.uk
Roy Nilanjan
Babu M Madan
Janga Sarath Chandra
References (42)
42 references, click to expand
  1. Identification of target mRNAs of regulatory RNA-binding proteins using mRNP immunopurification and microarrays.
    Nat Protoc. 2007;2(8):2033-42 PMID: 17703216
  2. Transcription in kinetoplastid protozoa: why be normal?
    Microbes Infect. 2003 Nov;5(13):1231-40 PMID: 14623019
  3. Diverse RNA-binding proteins interact with functionally related sets of RNAs, suggesting an extensive regulatory system.
    PLoS Biol. 2008 Oct 28;6(10):e255 PMID: 18959479
  4. Quantification of protein half-lives in the budding yeast proteome.
    Proc Natl Acad Sci U S A. 2006 Aug 29;103(35):13004-9 PMID: 16916930
  5. CLIP identifies Nova-regulated RNA networks in the brain.
    Science. 2003 Nov 14;302(5648):1212-5 PMID: 14615540
  6. The history of cancer epigenetics.
    Nat Rev Cancer. 2004 Feb;4(2):143-53 PMID: 14732866
  7. A systems view of mRNP biology.
    Genes Dev. 2004 Dec 1;18(23):2845-60 PMID: 15574591
  8. Using gene expression to investigate the genetic basis of complex disorders.
    Hum Mol Genet. 2008 Oct 15;17(R2):R129-34 PMID: 18852201
  9. RNA and disease.
    Cell. 2009 Feb 20;136(4):777-93 PMID: 19239895
  10. Protein pathway and complex clustering of correlated mRNA and protein expression analyses in Saccharomyces cerevisiae.
    Proc Natl Acad Sci U S A. 2003 Mar 18;100(6):3107-12 PMID: 12626741
  11. Genome-wide analysis of mRNA translation profiles in Saccharomyces cerevisiae.
    Proc Natl Acad Sci U S A. 2003 Apr 1;100(7):3889-94 PMID: 12660367
  12. PUB1: a major yeast poly(A)+ RNA-binding protein.
    Mol Cell Biol. 1993 Oct;13(10):6114-23 PMID: 8413213
  13. Comparative genomics and evolution of proteins involved in RNA metabolism.
    Nucleic Acids Res. 2002 Apr 1;30(7):1427-64 PMID: 11917006
  14. RNA-binding proteins and post-transcriptional gene regulation.
    FEBS Lett. 2008 Jun 18;582(14):1977-86 PMID: 18342629
  15. Post-transcriptional control of gene expression: a genome-wide perspective.
    Trends Biochem Sci. 2005 Sep;30(9):506-14 PMID: 16054366
  16. Cell-specific RNA-binding proteins in human disease.
    Trends Cardiovasc Med. 2003 Jul;13(5):188-95 PMID: 12837581
  17. Mapping complex disease traits with global gene expression.
    Nat Rev Genet. 2009 Mar;10(3):184-94 PMID: 19223927
  18. Yeast mitochondrial biogenesis: a role for the PUF RNA-binding protein Puf3p in mRNA localization.
    PLoS One. 2008 Jun 04;3(6):e2293 PMID: 18523582
  19. PUB1 is a major nuclear and cytoplasmic polyadenylated RNA-binding protein in Saccharomyces cerevisiae.
    Mol Cell Biol. 1993 Oct;13(10):6102-13 PMID: 8413212
  20. Global analysis of protein expression in yeast.
    Nature. 2003 Oct 16;425(6959):737-41 PMID: 14562106
  21. A network of multiple regulatory layers shapes gene expression in fission yeast.
    Mol Cell. 2007 Apr 13;26(1):145-55 PMID: 17434133
  22. Correlation between protein and mRNA abundance in yeast.
    Mol Cell Biol. 1999 Mar;19(3):1720-30 PMID: 10022859
  23. Post-transcriptional gene regulation: from genome-wide studies to principles.
    Cell Mol Life Sci. 2008 Mar;65(5):798-813 PMID: 18043867
  24. SUMO modification of heterogeneous nuclear ribonucleoproteins.
    Mol Cell Biol. 2004 May;24(9):3623-32 PMID: 15082759
  25. Functionally related transcripts have common RNA motifs for specific RNA-binding proteins in trypanosomes.
    BMC Mol Biol. 2008 Dec 08;9:107 PMID: 19063746
  26. TAP, the human homolog of Mex67p, mediates CTE-dependent RNA export from the nucleus.
    Mol Cell. 1998 Apr;1(5):649-59 PMID: 9660949
  27. A systematic survey identifies prions and illuminates sequence features of prionogenic proteins.
    Cell. 2009 Apr 3;137(1):146-58 PMID: 19345193
  28. The RNA-binding proteins PUF-5, PUF-6, and PUF-7 reveal multiple systems for maternal mRNA regulation during C. elegans oogenesis.
    Dev Biol. 2007 Mar 15;303(2):635-49 PMID: 17234175
  29. RNA regulons: coordination of post-transcriptional events.
    Nat Rev Genet. 2007 Jul;8(7):533-43 PMID: 17572691
  30. Regulated interaction of protein kinase Cdelta with the heterogeneous nuclear ribonucleoprotein K protein.
    J Biol Chem. 1999 May 21;274(21):15101-9 PMID: 10329716
  31. Precision and functional specificity in mRNA decay.
    Proc Natl Acad Sci U S A. 2002 Apr 30;99(9):5860-5 PMID: 11972065
  32. Summing up the noise in gene networks.
    Nature. 2004 Jan 29;427(6973):415-8 PMID: 14749823
  33. RNA-binding proteins in human genetic disease.
    Trends Genet. 2008 Aug;24(8):416-25 PMID: 18597886
  34. Global analysis of protein phosphorylation in yeast.
    Nature. 2005 Dec 1;438(7068):679-84 PMID: 16319894
  35. Arginine methyltransferase affects interactions and recruitment of mRNA processing and export factors.
    Genes Dev. 2004 Aug 15;18(16):2024-35 PMID: 15314027
  36. RNA recognition motif 2 of yeast Pab1p is required for its functional interaction with eukaryotic translation initiation factor 4G.
    Mol Cell Biol. 1998 Jan;18(1):51-7 PMID: 9418852
  37. Emerging roles of RNA and RNA-binding protein network in cancer cells.
    BMB Rep. 2009 Mar 31;42(3):125-30 PMID: 19335997
  38. Single-cell proteomic analysis of S. cerevisiae reveals the architecture of biological noise.
    Nature. 2006 Jun 15;441(7095):840-6 PMID: 16699522
  39. Extensive association of functionally and cytotopically related mRNAs with Puf family RNA-binding proteins in yeast.
    PLoS Biol. 2004 Mar;2(3):E79 PMID: 15024427
  40. Quantitative protein expression profiling reveals extensive post-transcriptional regulation and post-translational modifications in schizont-stage malaria parasites.
    Genome Biol. 2008;9(12):R177 PMID: 19091060
  41. Global analysis of Pub1p targets reveals a coordinate control of gene expression through modulation of binding and stability.
    Mol Cell Biol. 2005 Jul;25(13):5499-513 PMID: 15964806
  42. A single domain of yeast poly(A)-binding protein is necessary and sufficient for RNA binding and cell viability.
    Mol Cell Biol. 1987 Sep;7(9):3268-76 PMID: 3313012
Article Info
Journal
Proceedings of the National Academy of Sciences of the United States of America
Abbr.
Proc Natl Acad Sci U S A
ISSN
1091-6490
Published
2009-12-01
Epub
2009-00-16
Pages
20300-5
Language
English
Region
United States
NLM ID
7505876
PMCID
PMC2777960
Subset
IM
Grants
Medical Research Council · MC_U105185859 · United Kingdom
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