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PMID: 8703087 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

A relationship between GC content and coding-sequence length.

Journal of molecular evolution ·Vol. 43 ·No. 3 ·1996-09-00 ·Pages 216-23

Oliver JL, Marín A

Abstract

Since base composition of translational stop codons (TAG, TAA, and TGA) is biased toward a low G+C content, a differential density for these termination signals is expected in random DNA sequences of different base compositions. The expected length of reading frames (DNA segments of sense codons flanked by in-phase stop codons) in random sequences is thus a function of GC content. The analysis of DNA sequences from several genome databases stratified according to GC content reveals that the longest coding sequences-exons in vertebrates and genes in prokaryotes-are GC-rich, while the shortest ones are GC-poor. Exon lengthening in GC-rich vertebrate regions does not result, however, in longer vertebrate proteins, perhaps because of the lower number of exons in the genes located in these regions. The effects on coding-sequence lengths constitute a new evolutionary meaning for compositional variations in DNA GC content.

MeSH Terms
Animals Bacteria/genetics Base Composition Base Sequence Cattle Chickens Codon Cytosine DNA/chemistry,genetics Escherichia coli Exons Guanine Humans Introns Mice Models, Genetic Protein Biosynthesis Rats Reading Frames Software
Chemicals
Codon Guanine Cytosine DNA
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Oliver J L
Departamento de Genética, Instituto de Biotecnología, Facultad de Ciencias, Universidad de Granada, E-18071-Granada, Spain.
Marín A
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Article Info
Journal
Journal of molecular evolution
Abbr.
J Mol Evol
ISSN
0022-2844
Published
1996-09-00
Pages
216-23
Language
English
Region
Germany
NLM ID
0360051
Subset
IM
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