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In silico Analysis of Sequential,Structural and Functional Diversity of Wheat Cystatins and Its Implication in Plant Defense

In silico Analysis of Sequential,Structural and Functional Diversity of Wheat Cystatins and Its Implication in Plant Defense
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摘要 Phytocystatins constitute a multigene family that regulates the activity of endogenous and/or exogenous cysteine proteinases. Cereal crops like wheat are continuously threatened by a multitude of pathogens, therefore cystatins offer to play a pivotal role in deciding the plant response. In order to study the need of having diverse specificities and activities of various cystatins, we conducted comparative analysis of six wheat cystatins (WCs) with twelve rice, seven barley, one sorghum and ten corn cystatin sequences employing different bioinformatics tools. The obtained results identified highly conserved signature sequences in all the cystatins considered. Several other motifs were also identified, based on which the sequences could be categorized into groups in congruence with the phylogenetic clustering. Homology modeling of WCs revealed 3D structural topology so well shared by other cystatins. Protein-protein interaction of WCs with papain supported the notion that functional diversity is a con- sequence of existing differences in amino acid residues in highly conserved as well as relatively less conserved motifs. Thus there is a significant conservation at the sequential and structural levels; however, concomitant variations maintain the functional diversity in this protein family, which constantly modulates itself to reciprocate the diversity while counteracting the cysteine proteinases. Phytocystatins constitute a multigene family that regulates the activity of endogenous and/or exogenous cysteine proteinases. Cereal crops like wheat are continuously threatened by a multitude of pathogens, therefore cystatins offer to play a pivotal role in deciding the plant response. In order to study the need of having diverse specificities and activities of various cystatins, we conducted comparative analysis of six wheat cystatins (WCs) with twelve rice, seven barley, one sorghum and ten corn cystatin sequences employing different bioinformatics tools. The obtained results identified highly conserved signature sequences in all the cystatins considered. Several other motifs were also identified, based on which the sequences could be categorized into groups in congruence with the phylogenetic clustering. Homology modeling of WCs revealed 3D structural topology so well shared by other cystatins. Protein-protein interaction of WCs with papain supported the notion that functional diversity is a con- sequence of existing differences in amino acid residues in highly conserved as well as relatively less conserved motifs. Thus there is a significant conservation at the sequential and structural levels; however, concomitant variations maintain the functional diversity in this protein family, which constantly modulates itself to reciprocate the diversity while counteracting the cysteine proteinases.
出处 《Genomics, Proteomics & Bioinformatics》 SCIE CAS CSCD 2010年第1期42-56,共15页 基因组蛋白质组与生物信息学报(英文版)
关键词 wheat cystatins structural diversity functional diversity comparative analysis wheat cystatins, structural diversity, functional diversity, comparative analysis
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  • 1Gaddour, K., et al. 2001. A constitutive cystatin-encoding gene from barley (Icy) responds differentially to abiotic stimuli. Plant Mol. Biol. 45: 599-608.
  • 2Barrett, A.J., et al. 1986. Cysteine proteinase inhibitors of the cystatin superfamily. In Proteinase lnhibitors (eds. Barrett, A.J. and Salvesen, G.), pp. 515-569. Elsevier Science Publishers, Amsterdam, Netherlands.
  • 3Abe, M., et al. 1994. Corn cystatin I expressed in Escherichia coli: investigation of its inhibitory profile and occurrence in corn kernels. J. Biochem. 116: 488-492.
  • 4Brown, W.N. and Dziegielewska, K.M. 1997. Friends and relations of the cystatin superfamily--new members and their evolution. Protein Sci. 6: 5-12.
  • 5Turk, V. and Bode, W. 1991. The cystatins: protein inhibitors of cysteine proteinases. FEBS Lett. 285:213-219.
  • 6Barrett, A.J., et al. 1986. Nomenclature and classification of the proteins homologous with the cysteine proteinase inhibitor chicken cystatin. Biochem. J. 236:312.
  • 7Barrett, A.J. 1987. The cystatins: a new class ofpeptidase inhibitors. Trends Biochem. Sci. 12: 193-196.
  • 8Martinez, M., et al. 2007. Carboxy terminal extended phytocystatins are bifunctional inhibitors of papain and legumain cysteine proteases. FEBSLett. 581: 2914-2918.
  • 9Margis, R., et aL 1998. Structural and phylogenetic relationships among plant and animal cystatins. Arch. Biochem. Biophys. 359: 24-30.
  • 10Pernas, M., et al. 2000. Biotic and abiotic stress can induce cystatin expression in chestnut. FEBS Lett. 467: 206-210.

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