Utilize este identificador para referenciar este registo: http://hdl.handle.net/10400.22/1437
Título: Can power laws help us understand gene and proteome information?
Autor: Costa, António Cardoso
Machado, J.A.Tenreiro
Quelhas, Dulce
Palavras-chave: Proteome
Power law
Correlation
Visualization
Data: 2013
Editora: Hindawi Publishing Corporation
Relatório da Série N.º: Advances in Mathematical Physics; Vol. 2013
Resumo: Proteins are biochemical entities consisting of one or more blocks typically folded in a 3D pattern. Each block (a polypeptide) is a single linear sequence of amino acids that are biochemically bonded together. The amino acid sequence in a protein is defined by the sequence of a gene or several genes encoded in the DNA-based genetic code. This genetic code typically uses twenty amino acids, but in certain organisms the genetic code can also include two other amino acids. After linking the amino acids during protein synthesis, each amino acid becomes a residue in a protein, which is then chemically modified, ultimately changing and defining the protein function. In this study, the authors analyze the amino acid sequence using alignment-free methods, aiming to identify structural patterns in sets of proteins and in the proteome, without any other previous assumptions. The paper starts by analyzing amino acid sequence data by means of histograms using fixed length amino acid words (tuples). After creating the initial relative frequency histograms, they are transformed and processed in order to generate quantitative results for information extraction and graphical visualization. Selected samples from two reference datasets are used, and results reveal that the proposed method is able to generate relevant outputs in accordance with current scientific knowledge in domains like protein sequence/proteome analysis.
Peer review: yes
URI: http://hdl.handle.net/10400.22/1437
ISSN: 1687-9120
Versão do Editor: http://www.hindawi.com/journals/amp/2013/917153/
Aparece nas colecções:ISEP – GECAD – Artigos

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