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Biomedical subjects

J D Kahn

Publications and source records attributed to J D Kahn.

9 recordsLinked to original sources

Sequence elements responsible for DNA curvature.

Intrinsic DNA bending or curvature is a phenomenon that has been shown to play an important role in a variety of DNA transactions. Large curvature occurs when short homopolymeric (dA.dT)4-6 runs (A-tracts) are repeated in phase with the helical screw. We have used electrophoretic mobility modulation to examine how bending depends on the nature of the 5 bp DNA sequence between the A tracts in molecules of the form (A5-6N5)n. We show that A-tract-induced DNA curvature can indeed be affected by other sequence elements, although by only about +/- 10%. The small observed curvature modulation implies that the overall helix axis deflection contributed by 5-bp B-DNA segments between A-tracts varies little from one sequence to another. This result validates, to first order, the assumption that DNA curvature results from inserting A-tracts at integral turn phasing into generic B-DNA. Therefore, if, as has been proposed, A-tracts have zero roll between the base-pairs and all curvature results from positive roll in the B-DNA segments, then this must be a general property of approximately 5 bp B-DNA sequences, not just special cases. This interpretation would require that the canonical structure of B-DNA be revised to include systematic roll between the base-pairs of about 6 degrees. Alternatively, the data are also consistent with zero average roll in the B-DNA sequences, and wedge angles dominated by negative roll in the A-tracts, or with an appropriate mixture of the two models. It is not possible to resolve this ambiguity using comparative electrophoresis or existing structural data. We show that published wedge angle parameters successfully predict the measured direction and, with appropriate rescaling, the magnitude of curvature due to a non-A-tract sequence containing the protein-free lac operator CAP protein binding site.

Base Sequence

Detection of localized DNA flexibility.

The bending and flexibility of DNA are important in packaging, recombination and transcription. Bending decreases electrophoretic mobility in a manner depending on bend position within a fragment (circular permutation) and on the distance between bends (phasing analysis). Bending can also affect DNA ring closure (cyclization). The lack of a complete theory for the mechanism of gel retardation hampers measurement of bend magnitudes by electrophoresis, whereas cyclization is done entirely in solution and is well understood theoretically. Disagreements between bend angles estimated by the two electrophoretic assays have been ascribed to DNA flexibility. Here we test this interpretation using an internal loop as a model flexible locus. Whereas the circular permutation and helical phasing experiments are only subtly affected by the loop, DNA cyclization kinetics detects and quantifies substantial increases in torsional and bending flexibility. Furthermore, the results support a functional role for the stress of DNA bending in inducing base-pair opening.

Base Sequence

Sequence and structure of cmp, the replication enhancer of the Staphylococcus aureus plasmid pT181.

The Staphylococcus aureus plasmid pT181 possesses a DNA replication enhancer element, called cmp, that is required in cis for optimal utilization of the initiator protein by the origin of replication. The minimal nucleotide sequence required for cmp activity was defined by testing progressively smaller DNA fragments for their ability to restore cmp activity in a plasmid mutant deleted for cmp. These experiments indicate that cmp is a sequence of 100 base pairs (bp) characterized by a loosely repeated sequence motif and phased oligo(dT) tracts. Intrinsic DNA bending at cmp was detected by a circular permutation assay of the locus using polyacrylamide-gel electrophoresis and by computer modeling. The cmp element was found to contain two loci of intrinsically bent DNA that confer an overall bent conformation to this replication enhancer.

Bacterial Proteins

Protein-induced bending and DNA cyclization.

We have applied T4 ligase-mediated DNA cyclization kinetics to protein-induced bending in DNA. The presence and direction of a static bend can be inferred from J factors for cyclization of 150- to 160-base-pair minicircles, which include a catabolite activator protein binding site phased against a sequence-directed bend. We demonstrate a quasi-thermodynamic linkage between cyclization and protein binding; we find that properly phased DNAs bind catabolite activator protein approximately 200-fold more tightly as circles than as linear molecules. The results unambiguously distinguish DNA bends from isotropically flexible sites and can explain cooperative binding by proteins that need not contact each other.

Base Sequence

RNA folding during transcription by Escherichia coli RNA polymerase analyzed by RNA self-cleavage.

We have used a self-cleaving RNA molecule related to a subsequence of plant viroids (a "hammerhead") to study the length-dependent folding of RNA produced during transcription by Escherichia coli RNA polymerase. Transcript elongation is arrested at defined positions using chain-terminating ribonucleoside triphosphate analogues (3'-deoxyNTP's or 3'-O-methylNTP's). When the transcript can form the "hammerhead" structure it self-cleaves to give a truncated product. The experiment yields an RNA sequencing ladder which terminates at the length at which cleavage becomes possible; the sequencing ladder is compared to those generated by using a noncleaving transcript or by using [alpha-thio]ATP in place of ATP. We have shown that 15-18 nucleotides (nt) of RNA past the cleavage point must be synthesized before the transcript can self-cleave within a ternary complex, whereas RNA freed from the complex by heating can cleave with only 3 or more nt present beyond the cleavage point. There are sequence-dependent as well as length-dependent effects. The results suggest that 12 +/- 1 nt are sequestered within the ternary complex and are consistent with the presence of a DNA-RNA hybrid within the transcription bubble, as proposed by others. The results indicate that the "hammerhead" structure does not disrupt the hybrid. It appears that the RNA beyond the hybrid is not restrained by interactions with the enzyme, since the last stem of the self-cleaving structure forms as soon as the RNA composing it emerges from the DNA-RNA hybrid. Self-cleaving of the transcript offers a simple structural probe for studying less well-characterized transcription complexes. The relevance of the results to models for transcription termination is discussed.

Base Sequence

Reversibility of nucleotide incorporation by Escherichia coli RNA polymerase, and its effect on fidelity.

During transcription, Escherichia coli RNA polymerase is capable of removing the nucleotide that it has just added to a growing RNA chain, and this removal depends on the presence of small concentrations of pyrophosphate. Chemically, the removal reaction is simply the reversal of the incorporation reaction, and we have observed the generation of free triphosphate as a result. After the removal the enzyme can continue synthesis. To test whether this reaction can provide an error correction mechanism, misincorporation rates were measured at a single position in an RNA transcript by withholding the correct nucleotide for that position, measuring the amount of readthrough transcript, and analyzing the readthrough transcripts with nearest-neighbor analysis and enzymatic RNA sequencing. The removal of pyrophosphate increases the rate of misincorporation. We present a theory that explains how reversible incorporation can increase the available discrimination free energy between correct and incorrect nucleotides and therefore may increase the fidelity of transcription. The formation of a covalent phosphodiester bond allows discrimination on the basis of helical structure as well as base-pairing. We propose that the important discrimination step is the translocation of the enzyme from one site on the DNA template to the next, and that reversible incorporation is necessary in order to take full advantage of the maximum discrimination free energy.

Base Sequence