3 research outputs found

    Sequence specificity of single-stranded DNA-binding proteins: a novel DNA microarray approach

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    We have developed a novel DNA microarray-based approach for identification of the sequence-specificity of single-stranded nucleic-acid-binding proteins (SNABPs). For verification, we have shown that the major cold shock protein (CspB) from Bacillus subtilis binds with high affinity to pyrimidine-rich sequences, with a binding preference for the consensus sequence, 5â€Č-GTCTTTG/T-3â€Č. The sequence was modelled onto the known structure of CspB and a cytosine-binding pocket was identified, which explains the strong preference for a cytosine base at position 3. This microarray method offers a rapid high-throughput approach for determining the specificity and strength of ss DNA–protein interactions. Further screening of this newly emerging family of transcription factors will help provide an insight into their cellular function

    Recognition of T-rich single-stranded DNA by the cold shock protein Bs-CspB in solution

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    Cold shock proteins (CSP) belong to the family of single-stranded nucleic acid binding proteins with OB-fold. CSP are believed to function as ‘RNA chaperones’ and during anti-termination. We determined the solution structure of Bs-CspB bound to the single-stranded DNA (ssDNA) fragment heptathymidine (dT(7)) by NMR spectroscopy. Bs-CspB reveals an almost invariant conformation when bound to dT(7) with only minor reorientations in loop ÎČ1–ÎČ2 and ÎČ3–ÎČ4 and of few aromatic side chains involved in base stacking. Binding studies of protein variants and mutated ssDNA demonstrated that Bs-CspB associates with ssDNA at almost diffusion controlled rates and low sequence specificity consistent with its biological function. A variation of the ssDNA affinity is accomplished solely by changes of the dissociation rate. (15)N NMR relaxation and H/D exchange experiments revealed that binding of dT(7) increases the stability of Bs-CspB and reduces the sub-nanosecond dynamics of the entire protein and especially of loop ÎČ3–ÎČ4

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