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Biomedical subjects

B K Kay

Publications and source records attributed to B K Kay.

78 records · Page 5Linked to original sources

5S ribosomal RNA genes of the newt Notophthalmus viridescens.

The genes which code for the 5S ribosomal RNA in the newt, Notophthalmus viridescens have been cloned and analyzed. Two types of repeating unit were detected: a major type consisting of a 120 bp coding region with a 111 bp spacer, and a minor type composed of a coding region, a pseudogene, and a 113 bp spacer. The pseudogene is a 36 bp segment which corresponds to the 3' terminal third of the 5S RNA gene, and is situated immediately 3' to the gene, being separated from it by 2 bp. Two recombinant plasmids were obtained in which the major and minor units were arranged in an interspersed pattern.

Animals↗

In vitro RNA synthesis in oocyte nuclei of the newt Notophthalmus.

An incubation medium is described which supports RNA synthesis in isolated oocyte nuclei of the newt Notophthalmus, and which permits subsequent autoradiographic examination of the lampbrush chromosomes and nucleoli. By using different concentrations of alpha-amanitin we distinguish RNA synthesis due to RNA polymerases I, II and III. All RNA synthesis on loops is inhibited by 0.5 microgram/ml of alpha-amanitin and is therefore due to polymerase II. Polymerase III is responsible for RNA synthesis at a small number of discrete sites in condensed chromatin. These include the centromere bars of three of four chromosomes, which probably represent 5S RNA synthesis, as well as 15-20 lesser sites scattered elsewhere. Polymerase I activity is confined to the nucleoli.

Amanitins↗

In vitro transcription of cloned 5S RNA genes of the newt Notophthalmus.

Recombinant plasmids that carried genes coding for 5S ribosomal RNA of the newt, Notophthalmus viridescens, were transcribed in vitro with extracts of Xenopus laevis oocyte nuclei. Plasmids containing multiple repeats of the 5S gene and spacer directed accurate transcription of 5S RNA (120 bases). Individual repeat units were recloned by inserting Sau 3A restriction fragments into the Bam HI site of plasmid pBR322. Because each repeat was cut by the enzyme within the coding region, the inserts had incomplete coding regions at their ends and spacer sequences in the middle. The DNA of these subclones directed synthesis of a 5S-size RNA that contained both plasmid and 5S RNA sequences. Transcription initiated in the vector, proceeded through the gene segment coding for nucleotides 41-120, and terminated at the end of the gene. The initiation of in vitro transcription required neither the original 5' flanking sequences of the spacer nor the first third of the gene. We conclude that intragenic DNA sequences control the initiation of transcription. Other subclones that include pseudogenes gave rise to some transcripts 156 nucleotides long. These long transcripts represented continuation of transcription through the 36-base-pair pseudogene that is located immediately downstream from the 5S gene. However, most transcripts of these subclones terminated at the end of the normal gene before the beginning of the pseudogene. It is probable that a run of four or more Ts serves as part of the termination signal.

Animals↗

Effect of magnetic resonance imaging on Xenopus laevis embryogenesis.

Xenopus laevis embryos, exposed to various lengths of magnetic resonance imaging (MRI), demonstrated no abnormal morphology, function, or developmental delays. The overall protein profiles and nucleic acid ratios were similar compared to controls. Results suggest there are no adverse effects of MRI components on the development of this vertebrate.

Animals↗

Convenient uses of polymerase chain reaction in analyzing recombinant cDNA clones.

We have used polymerase chain reaction to accelerate our analysis of recombinant lambda-cDNA clones. We have amplified the inserts of lambda gt10 or lambda gt11 recombinants starting with bacteriophage in cored plaques or isolated DNA. The amplifications made with simple or complex oligonucleotide primers have allowed convenient sizing, subcloning and translation of the phage inserts into protein.

Amino Acid Sequence↗