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Structural and functional relationship between the Ph1 locus protein 5B2 in wheat and CDK2 in mammals

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Abstract

The Ph1 locus in hexaploid wheat is responsible for restricting chromosome pairing at meiosis to true homologues by suppressing homoeologous pairing. Based on detailed modelling studies and predicted ability to form complexes with cyclin-A and cyclin-dependent kinase inhibitor such as p27, Triticum aestivum-5B2 (Ta 5B2) is suggested to be a wheat analogue of human CDK2 enzyme. A blast analysis of the protein data bank using the amino acid sequence of the protein expressed by the 5B2 copy of the cdk-like cluster of genes at the Ph1 locus (Ta 5B2) identified humans CDK2 as a top hit. In this analysis, the canonical cyclin binding motif PSTAIRE of CDK2 is replaced by a novel DARTLRE motif and Thr160 residue, phosphorylation of which is required for positive regulation of CDK2, is replaced by a tyrosine (Tyr174) in Ta 5B2. Despite these differences, detailed analyses show that all residues known to be important for cyclin binding are either fully conserved or whenever there is alteration in Ta 5B2, a corresponding but comparable alteration is also observed in plant cyclins notably cyclin-A of Arabidopsis thaliana. Moreover, the Thr160/Tyr174 substitution is also accommodated by suitable alterations in the 3D space around Tyr174 and the 3D model of Ta 5B2 predicts Tyr174 to play the same role as Thr160 plays in CDK2.

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References

  • Al-Kaff N, Knight E, Bertin I, Foote T, Hart N, Griffiths S, Moore G (2008) Detailed dissection of the chromosomal region containing the Ph1 locus in wheat Triticum aestivum: with deletion mutants and expression profiling 10.1093/aob/mcm252. Ann Bot 101:863–872

    Article  CAS  PubMed  Google Scholar 

  • Bax B, Carter PS, Lewis C, Guy AR, Bridges A, Tanner R, Pettman G, Mannix C, Culbert AA, Brown MJB, Smith DG, Reith AD (2001) The structure of phosphorylated GSK-3[beta] complexed with a peptide, FRATtide, that inhibits [beta]-catenin phosphorylation. Structure 9:1143–1152

    Article  CAS  PubMed  Google Scholar 

  • Debondt HL, Rosenblatt J, Jancarik J, Jones HD, Morgan DO, Kim SH (1993) Crystal structure of cyclin-dependent kinase 2. Nature 363:595–602

    Article  CAS  Google Scholar 

  • Delano WL (2002) The PyMOL molecular graphics system. Delano Scientific, San Carlos

    Google Scholar 

  • Ducommun B, Brambilla P, Felix MA, Franza BR, Karsenti E, Draetta G (1991) Cdc2 phosphorylation is required for its interaction with cyclin. EMBO J 10:3311–3319

    CAS  PubMed  Google Scholar 

  • Ginalski K, Elofsson A, Fischer D, Rychlewski L (2003) 3D-Jury: a simple approach to improve protein structure predictions. Bioinformatics 19:1015–1018

    Article  CAS  PubMed  Google Scholar 

  • Griffiths S, Sharp R, Foote TN, Bertin I, Wanous M, Reader S, Colas I, Moore G (2006) Molecular characterization of Ph1 as a major chromosome pairing locus in polyploid wheat. Nature 439:749–752

    Article  CAS  PubMed  Google Scholar 

  • Gu Y, Rosenblatt J, Morgan DO (1992) Cell-cycle regulation of Cdk2 activity by phosphorylation of Thr160 and Tyr15. EMBO J 11:3995–4005

    CAS  PubMed  Google Scholar 

  • Harper JW, Elledge SJ (1996) Cdk inhibitors in development and cancer. Curr Opin Genet Dev 6:56–64

    Article  CAS  PubMed  Google Scholar 

  • Jeffrey PD, Ruso AA, Polyak K, Gibbs E, Hurwitz J, Massague J, Pavletich NP (1995) Mechanism of CDK activation revealed by the structure of a cyclina–CDK2 complex. Nature 376:313–320

    Article  CAS  PubMed  Google Scholar 

  • Joubes J, Chevalier C, Dudits D, Heberle-Bors E, Inze D, Umeda M, Renaudin JP (2000) CDK-related protein kinases in plants. Plant Mol Biol 43:607–620

    Article  CAS  PubMed  Google Scholar 

  • Li GY, Xing M, Hu B (2004) A PSTAIRE CDK-like protein localizes in nuclei and cytoplasm of Physarum polycephalum and functions in the mitosis. Cell Res 14:169–175

    Article  PubMed  Google Scholar 

  • Morgan DO (1997) Cyclin-dependent kinases: engines, clocks, and microprocessors. Ann Rev Cell Dev Biol 13:261–291

    Article  CAS  Google Scholar 

  • Nicolas Guex MCP (1997) SWISS-MODEL and the Swiss-Pdb viewer: an environment for comparative protein modeling. Electrophoresis 18:2714–2723

    Article  Google Scholar 

  • Pines J (1995) Cyclins and cyclin-dependent kinases—a biochemical view. Biochem J 308:697–711

    CAS  PubMed  Google Scholar 

  • Riccardo M, Bennett-Lovsey ADH, Sternberg MJE, Kelley LA (2008) Exploring the extremes of sequence/structure space with ensemble fold recognition in the program. Phyre Prot Struct Funct Bioinform 70:611–625

    Article  Google Scholar 

  • Rose G, Geselowitz A, Lesser G, Lee R, Zehfus M (1985) Hydrophobicity of amino acid residues in globular proteins10.1126/science.4023714. Science 229:834–838

    Article  CAS  PubMed  Google Scholar 

  • Russo AA, Jeffrey PD, Patten AK, Massague J, Pauletich NP (1996) Crystal structure of the p27Kip1 cyclin-dependent kinase inhibitor bound to the cyclin A–Cdk2 complex. Nature 382:295–296

    Article  Google Scholar 

  • Yousafzai F, Al-Kaff N, Moore G (2010) The molecular features of chromosome pairing at meiosis: the polyploid challenge using wheat as a reference. Funct Integr Genomics. doi:10.1007/s10142-010-0171-6

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Correspondence to Faridoon K. Yousafzai.

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Faridoon Yousafzai and Nadia Al-Kaff contributed equally to this work.

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Yousafzai, F.K., Al-Kaff, N. & Moore, G. Structural and functional relationship between the Ph1 locus protein 5B2 in wheat and CDK2 in mammals. Funct Integr Genomics 10, 157–166 (2010). https://doi.org/10.1007/s10142-010-0170-7

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  • DOI: https://doi.org/10.1007/s10142-010-0170-7

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