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J Bashkin

Publications and source records attributed to J Bashkin.

7 recordsLinked to original sources

The influence of fluorescent dye structure on the electrophoretic mobility of end-labeled DNA.

Over the past 10 years, fluorescent end-labeling of DNA fragments has evolved into the preferred method of DNA detection for a wide variety of applications, including DNA sequencing and PCR fragment analysis. One of the advantages inherent in fluorescent detection methods is the ability to perform multi-color analyses. Unfortunately, labeling DNA fragments with different fluorescent tags generally induces disparate relative electrophoretic mobilities for the fragments. Mobility-shift corrections must therefore be applied to the electrophoretic data to compensate for these effects. These corrections may lead to increased errors in the estimation of DNA fragment sizes and reduced confidence in DNA sequence information. Here, we present a systematic study of the relationship between dye structure and the resultant electrophoretic mobility of end-labeled DNA fragments. We have used a cyanine dye family as a paradigm and high-resolution capillary array electrophoresis (CAE) as the instrumentation platform. Our goals are to develop a general understanding of the effects of dyes on DNA electrophoretic mobility and to synthesize a family of DNA end-labels that impart identically matched mobility influences on DNA fragments. Such matched sets could be used in DNA sequencing and fragment sizing applications on capillary electrophoresis instrumentation.

Carbocyanines↗

Short tandem repeat typing by capillary array electrophoresis: comparison of sizing accuracy and precision using different buffer systems.

Polymorphic microsatellite markers are widely used in gene discovery and mapping, human identification, agricultural genetics, and diagnosis of triplet-repeat expansion disorders. Reliable genotyping of these markers requires polymerase chain reaction (PCR) amplification and very-high-resolution electrophoresis. Capillary array electrophoresis offers extremely fast, high-resolution separation of DNA and more automated sample processing because labor-intensive slab-gel pouring and sample loading are eliminated. We report a simple, reliable procedure for preparing PCR samples for electrokinetic injection into capillaries using a 96-well tray and float dialysis. We developed an improved sizing standard for genotyping and used it to evaluate systematically the sizing accuracy and precision of low-viscosity, replaceable matrix formulations. Our study sizing over 28,000 alleles yielded an average precision of +/- 0.12 bp for fragments up to 350 bp. Low-viscosity formulations permit low-pressure matrix injection (40 psi) and a turnaround time of 70 min for 48-96 samples.

Alleles↗

DNA sequencing by capillary electrophoresis with a hydroxyethylcellulose sieving buffer.

Capillary electrophoresis (CE) is capable of rapid, high-resolution separations of DNA. The technique has been adopted for both ssDNA and dsDNA applications. In order to make CE more convenient and cost-effective, replaceable sieving buffers have recently been developed. For DNA sequencing, the most successful of these replaceable buffers have been carefully polymerized and purified viscous linear polyacrylamide solutions. However, the hazards of acrylamide are well documented, and the care required to prepare the appropriate molecular weight polymer make this approach less than ideal. We report use of a replaceable sieving buffer suitable for DNA sequencing by CE that is easy to prepare and uses commercially available, non-toxic hydroxyethylcellulose.

Buffers↗

Structure of DNA in a nucleosome core at high salt concentration and at high temperature.

We have used hydroxyl radical cleavage of DNA to probe the organization of the nucleosome core at high salt concentration and high temperature. The rotational and translational positioning of a DNA fragment, containing part of the Xenopus borealis 5S RNA gene, on the histone octamer is maintained between salt concentrations of 0.0 and 0.8 M NaCl and between temperatures of 0 and 75 degrees C. These results provide evidence that the energy of bending DNA around the nucleosome is independent of salt concentration and temperature in this range. They illustrate the severe energetic requirements necessary to displace DNA from previously organized contacts with histones in the nucleosome core.

Animals↗

The histone core exerts a dominant constraint on the structure of DNA in a nucleosome.

We have examined the structures of unique sequence, A/T-rich DNAs that are predicted to be relatively rigid [oligo(dA).oligo(dT)], flexible [oligo[d(A-T)]], and curved, using the hydroxyl radical as a cleavage reagent. A 50-base-pair segment containing each of these distinct DNA sequences was placed adjacent to the T7 RNA polymerase promoter, a sequence that will strongly position nucleosomes. The final length of the DNA fragments was 142 bp, enough DNA to assemble a single nucleosome. Cleavage of DNA in solution, while bound to a calcium phosphate crystal, and after incorporation into a nucleosome is examined. We find that the distinct A/T-rich DNAs have very different structural features in solution and helical periodicities when bound to a calcium phosphate. In contrast, the organization of the different DNA sequences when associated with a histone octamer is very similar. We conclude that the histone core exerts a dominant constraint on the structure of DNA in a nucleosome and that inclusion of these various unique sequences has only a very small effect on overall nucleosome stability and structure.

Animals↗

High-throughput DNA sequencing on a capillary array electrophoresis system.

A capillary array electrophoresis apparatus capable of running and analyzing 48 DNA sequencing samples simultaneously has been constructed. The instrument uses a replaceable sieving buffer and incorporates a convenient method for introducing the buffer into the capillaries. Data from laser-induced fluorescence are collected as four separate images, one for each optical channel. The integrated data analysis software employs an open architecture that allows use of any DNA base-calling algorithm. DNA sequencing runs are completed in approx. 1 hr (approximately 500 bases), and instrument turnaround time between runs is less than 15 min. Overall, the instrument throughput is on the order of 720 templates/day, or 360,000 bases/day.

Animals↗