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PubMed · 10229575

Compositional correlation between open reading frames with opposite transcriptional orientations in Escherichia coli.

Abstract

This paper analyzes correlations in base composition between pairs of neighboring genes in Escherichia coli. The G + C contents of nearby, but convergently or divergently transcribed, genes show weak but significant correlations, and this is attributed to compositional variation among genomic regions. The finding that the base composition varies among intergenic regions, depending upon whether the adjacent genes are transcribed convergently, divergently, or in the same orientation, seems to indicate that transcription affects the patterns of mutation and, therefore, the overall base composition of the region.

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BibTeXRIS

A Marín, G Gutiérrez, J L Oliver. 1999. Compositional correlation between open reading frames with opposite transcriptional orientations in Escherichia coli.. https://doi.org/10.1007/pl00006515

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Base Composition↗

Application of CE for determination of DNA base composition.

DNA base composition expressed as mol% of guanine plus cytosine (% GC) or GC content is a key parameter of bacterial taxonomy and genomic analyses. Direct chemical determination methods such as HPLC as well as indirect methods based on physical properties of deoxyribonucleic acid (DNA), melting point (T(m)), and buoyant density (B(d)) have been conventionally applied to determine the GC content. However, these methods require relatively large amounts of sample DNA, time, and labor. We have developed a protocol to determine the GC content by fine separation of nucleosides with CZE. Genomic DNAs with known GC content from 23 bacterial strains were determined by CE at the optimized conditions of 27 degrees C, 20 kV in 50 mM of NaHCO(3) (pH 9.0) and 70 mM SDS added. Nucleosides from <1 microg of DNA hydrolyzed with nuclease-P1 and bacterial alkaline phosphatase were separated in a 75 microm wide and 80 cm long silica capillary. The nucleoside peak areas were determined at 254 nm in less than 12 min. The CE-based determination of GC content requires only small amounts of DNA, and thus should be applicable to environmental genomics (metagenomics), as >90% of environmental micro-organisms are nonculturable and produce only small amounts of genomic DNA.

Base Composition↗