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Operator sequence context influences amino acid-base-pair interactions in 434 repressor-operator complexes.

Abstract

The 434 repressor binds more tightly to OR1 than it does to OR3. The repressor makes several specific contacts with the symmetrically arrayed outer four base-pairs of the 14 base-pair site, and no specific contacts to the central six base-pairs. The sequence of the outer base-pairs of OR1 and OR3 differs only by an A-->G substitution at position 4 in one half-site of OR3, while that of central bases is very different. As expected from sequence analysis of wild-type operators, the data show repressor prefers an A.T base-pair at position 4. The magnitude of this preference depends on operator sequence context and solution conditions. Position 4 changes in the context of OR1 have a greater effect on operator affinity for 434 repressor than do similar changes in OR3. Although OR1 and OR3 display different affinities for 434 repressor, their repressor-operator complexes are similarly insensitive to changes in salt concentration and temperature. By contrast, complexes formed between repressor and position 4 mutant OR1, bearing an A.T-->G.C change, and OR3, which bears a G.C-->A.T change, are affected greatly, and to similar extents, by changes in ionic strength and temperature. Nuclease protection experiments show that 434 repressor protects the DNA phosphate backbone of wild-type operators from cleavage more efficiently than those of mutant operators. These data show that the biochemical and structural properties of a repressor-operator complex, while affected by position 4 base sequence, are independent of the identity of this base. The ability of repressor to recognize the base at position 4 depends on the sequence context at operator positions 5 to 7. Apparently there is an interplay between the bases at operator positions 4 to 7 which has a global effect on the structure of the repressor-operator complex.

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BibTeXRIS

A C Bell, G B Koudelka. 1993-12-05. Operator sequence context influences amino acid-base-pair interactions in 434 repressor-operator complexes.. https://doi.org/10.1006/jmbi.1993.1610

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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↗