Raymond M. Nietupski
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Featured researches published by Raymond M. Nietupski.
International Journal of Systematic and Evolutionary Microbiology | 1995
Benjamin B. Stone; Raymond M. Nietupski; Gary L. Breton; William G. Weisburg
We describe a modified rRNA sequence analysis method which we used to determine the phylogenetic relationships among 58 species belonging to the genus Mycobacterium. We combined the sensitivity of the reverse transcriptase PCR for amplifying nanogram amounts of template rRNA material with the elevated extension temperatures used for the thermostable DNA polymerase from Thermus thermophilus. A 70 degrees C reverse transcription extension step permitted improved read-through of highly structured rRNA templates from members of the genus Mycobacterium, which have G+C contents of 66 to 71 mol%. The nucleic acid sequences of the amplified material were then determined by performing thermal cycle sequencing with alpha-33P-labeled primers, again with extension at 70 degrees C. Nonspecifically terminated bands were chased by using terminal deoxynucleotidyl transferase. Our method had a template requirement of nanogram amounts or less of purified RNA or 2,000 CFU of intact cells and had sufficient sensitivity so that lyophils obtained from the American Type Culture Collection could be used as source material. Sequences from a 250-nucleotide stretch of the 23S rRNA were aligned, and phylogenetic trees were evaluated by using the De Soete distance treeing algorithm and Rhodococcus bronchialis as the outgroup. Our 23S rRNA trees were compared with previously published 16S rRNA trees, including the comprehensive trees developed by the University of Illinois Ribosomal Database Project, and included 15 species not evaluated previously. Most of the groups were in general agreement and were consistent with relationships determined on the basis of biochemical characteristics, but some new relationships were also observed.
BMC Molecular Biology | 2010
Thomas P. Beals; James Smith; Raymond M. Nietupski; David J. Lane
BackgroundAmplification of single-stranded DNA circles has wide utility for a variety of applications. The two-primer ramified rolling circle amplification (RAM) reaction provides exponential DNA amplification under isothermal conditions, creating a regular laddered series of double-stranded DNA products. However, the molecular mechanism of the RAM reaction remains unexplained.ResultsA RAM reaction model predicts exponential accumulation of a double-stranded DNA product size series, and product-size ratios, that are consistent with observed RAM reaction products. The mechanism involves generation of a series of increasing size intermediate templates; those templates produce RAM products and recursively generate smaller intermediate templates. The model allows prediction of the number of rounds of circular template replication. Real-time RAM reaction data are consistent with the model. Analysis of RAM reaction products shows exponential growth limitation consistent with the models predictions.ConclusionsThe model provides a rationale for the observed products of the RAM reaction, and the molecular yield among those products. Experimental results are consistent with the model.
Molecular and Cellular Probes | 1996
Benjamin B. Stone; Seth P. Cohen; Gary L. Breton; Raymond M. Nietupski; Dale Adam Pelletier; Mark J. Fiandaca; James G. Moe; James Smith; Jyotsna Shah; William G. Weisburg
Archive | 1990
Walter King; Jyotsna Shah; Raymond M. Nietupski; Susan Raposa; Jane Warshaw; Patrick Groody; Jonathan Michael Lawrie; George Parsons; Donald Neil Halbert; David J. Lane
Analytical Biochemistry | 2005
Irina V. Smolina; Dmitry I. Cherny; Raymond M. Nietupski; Thomas P. Beals; James Smith; David J. Lane; Natalia E. Broude; Vadim V. Demidov
Archive | 1993
Raymond M. Nietupski; Benjamin B. Stone; William G. Weisburg
Archive | 1995
Raymond M. Nietupski; Benjamin B. Stone; William G. Weisburg
Archive | 1988
Raymond M. Nietupski; Stephen G. Wilson; Jyotsna Shah; Samuel W. Chan; Donald Neil Halbert; David J. Lane
Archive | 1994
Raymond M. Nietupski; Benjamin B. Stone; William G. Weisburg
Archive | 1994
Raymond M. Nietupski; Benjamin B. Stone; William G. Weisburg