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Challenges and New Approaches in Genomics and Bioinformatics  

Park, Jong Hwa (MRC-DUNN Human Nutrition Unit, Hills Road, Cambridge, CB2 2XY, England, UK and Object Interaction Technologies Inc. (OITEK))
Han, Kyung Sook (School of Computer Science and Engineering, Inha University)
Abstract
In conclusion, the seemingly fuzzy and disorganized data of biology with thousands of different layers ranging from molecule to the Internet have refused so far to be mapped precisely and predicted successfully by mathematicians, physicists or computer scientists. Genomics and bioinformatics are the fields that process such complex data. The insights on the nature of biological entities as complex interaction networks are opening a door toward a generalization of the representation of biological entities. The main challenge of genomics and bioinformatics now lies in 1) how to data mine the networks of the domains of bioinformatics, namely, the literature, metabolic pathways, and proteome and structures, in terms of interaction; and 2) how to generalize the networks in order to integrate the information into computable genomic data for computers regardless of the levels of layer. Once bioinformatists succeed to find a general principle on the way components interact each other to form any organic interaction network at genomic scale, true simulation and prediction of life in silico will be possible.
Keywords
network biology; interaction among biological entities; protein interaction network;
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1 Bianconi, G. and Barabasi, A. (2001) Bose-Einstein condensation in complex networks. Physical Review Letters, 86, 5632-5635   DOI   ScienceOn
2 Jeong, H.,Tombor, B., Albert, R., Oltvai, Z.N., and Barabasi, A.L., (2000) The large-scale organization of metabolic networks. Nature, 407, 651-654   DOI   ScienceOn
3 Park, J., Lappe, M.,and Teichmann, S.A. (2001) Mapping protein family interactions: intramolecular and intermolecular protein family interaction repertoires in the PDB and yeast. J Mol BioI., 307. 929-938   DOI   ScienceOn
4 Tsoka, S. and Ouzounis, C.A. (2000) Recent developments and future directions in computational genomics. FEBS Letters, 480, 42-48   DOI   ScienceOn
5 Searls, D.B., (1993) The computational linguistics of biological sequences. In Artificial Intelligence and Molecular Biology (L. Hunter ed.), AAAI Press, The MIT Press, 47-120
6 Thieffry, D. and Thomas, R. (1998) Qualitative analysis of gene networks, Pac Symp. Biocomput. 77-88
7 Fleischmann, R.D., Adams, M.D., White, O., Clayton, R.A., Kirkness, E.F., Kerlavage, A.R., Bult, C.J., Tomb, J.F., Dougherty, B.A., Merrick, J.M., et al. (1995) Whole-genome random sequencing and assembly of Haemophilus influenzae Rd. Science, 269, 496-512   DOI   PUBMED
8 Walhout, AJ., Boulton. SJ. and Vidal, M. (2000) Yeast two-hybrid systems and protein interaction mapping projects for yeast and worm. Yeast, 17, 88-94   DOI   ScienceOn
9 Uetz, P., Giot, L., Cagney, G., Mansfield, TA., Judson, RS., Knight, JR., Lockshon, D., Narayan, V., Srinivasan, M., Pochart, P., Qureshi-Emili A., Li Y., Godwin B., Conover, D., Kalbfleisch, T., Vijayadamodar, G., Yang, M., Johnston, M., Fields, S., Rothberg, JM. (2000) A comprehensive analysis of protein-protein interactions in Saccharomyces cerevisiae. Nature, 403, 623-627   DOI   ScienceOn