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B Kemper

Publications and source records attributed to B Kemper.

156 records · Page 9Linked to original sources

Proparathyroid hormone: biosynthesis by human parathyroid adenomas.

Biosynthesis of a precursor (proparathyroid hormone) to human parathyroid hormone was demonstrated during incubation of tissue from parathyroid adenomas. The proparathyroid hormone is labeled more rapidly than parathyroid hormone during incubation with amino acids labeled with carbon-14 and is progressively converted to the hormone. Apparent differences in the relative rate of conversion of precursor to hormone found in different tumors suggest that proparathyroid hormone may accumulate in some of the tumors and be secreted into the circulation.

Adenoma↗

Proparathyroid hormone: identification of a biosynthetic precursor to parathyroid hormone.

Biosynthesis of a precursor to bovine parathyroid hormone has been demonstrated in slices of parathyroid tissue incubated in vitro. The proparathyroid hormone is 15-20 amino acids larger than the bovine hormone, and has a molecular weight of about 11,500 as determined by polyacrylamide gel electrophoresis. Upon incubation of parathyroid slices with [(14)C]aminoacids, radioactivity is detected initially in the precursor. If incorporation of [(14)C]aminoacids is inhibited after a short incubation either by replacement of radioactive amino acids with unlabeled amino acids or by addition of puromycin, the amount of radioactivity in the precursor decreases, while the radioactivity in the hormone continues to increase. The precursor is bound by an antibody that is specific for parathyroid hormone, and its binding can be inhibited by addition of the hormone. Analysis of tryptic digests indicates that the precursor and the hormone have common tryptic peptides, and that there are at least two additional peptides in the precursor.

Amino Acids↗

Nucleotide sequence of bovine parathyroid hormone messenger RNA.

The sequence of bovine parathyroid hormone mRNA has been determined by sequence analysis of near full-length cloned DNA complementary to the mRNA. Restriction fragments hybridized to the mRNA and extended toward the 5' terminus with reverse transcriptase were analyzed to derive the sequence not present in cDNA. The reverse transcripts were heterogeneous in length with three major stopping points within 8 nucleotides of each other and a minor stop about 30 bases further toward the 5' terminus of the mRNA. The sequence of the gene corresponding to the minor reverse transcript begins with the sequence 5' XXXATATATAAAA which contains the consensus sequence for a TATA box, a putative eukaryotic promoter sequence. Assuming that the major reverse transcriptase stop nearest the 5' terminus of the mRNA, which is 24 bases downstream from the TATA box, represents the beginning of bovine PTH mRNA, the mRNA contains 672 nucleotides, 100 in the 5' noncoding region, 348 in the coding region and 224 in the 3' noncoding region. Bovine PTH mRNA contains 38% G and C bases. The 3' noncoding region is particularly rich in A and U bases with the last 100 nucleotides of the molecules containing 46% U and 32% A. As with other mRNAs, the sequences CG and UAG occur much less than expected. The 5' noncoding region does not contain an AUG before the initiator codon and contains two potential regions that could base-pair with sequences near the 3' terminus of 18S ribosomal RNA. The sequence AAUAAA is present 14 nucleotides from the polyadenylic acid at the 3' terminus. Bovine PTH mRNA exhibits extensive homology with human PTH mRNA.

Animals↗

The P450 superfamily: updated listing of all genes and recommended nomenclature for the chromosomal loci.

In this update we provide a list of the 71 P450 genes and the four P450 pseudogenes that have been characterized as of September 30, 1988. The chromosomal locations of many of these genes are also summarized. A modest revision of the initially proposed nomenclature of the P450 superfamily (Nebert et al., DNA 6, 1-11, 1987) is described specifically for the human and mouse chromosomal loci. The motivation for this revision is to conform to the rules of nomenclature for human and mouse genes. Recommendations for the naming of chromosomal loci include the root symbol "CYP" for human ("Cyp" for mouse), denoting "cytochrome P450." We recommend that this root also be used for other organisms. For a chromosomal locus, the root symbol is followed by an Arabic numeral designating the P450 family, a letter indicating the subfamily, and an Arabic numeral representing the individual gene within the family or subfamily. Numbers of the individual genes usually will be assigned in the order the genes are identified. This system is consistent with our earlier proposed nomenclature for P450 families and gene products from all eukaryotes and prokaryotes.

Animals↗

Structure of 5' regions and expression of phenobarbital-inducible rabbit cytochrome P450IIC genes.

To analyze phenobarbital-inducible genes in the P450IIC subfamily, fragments of rabbit genomic DNA containing portions of the P450IIC1 and P450IIC4 genes were isolated and the DNA sequences of the 5'-flanking regions and exons were determined and compared to that of the P450IIC2 gene. The sequences have consensus TATA motifs about 20 bp from the mRNA initiation sites as determined by single-strand nuclease mapping and primer extension. Sequences similar to those for proposed liver-specific regulatory factors, HNF-1 and CCAAT, are found in the P450 5'-flanking regions. A glucocorticoid response element is present in the P450IIC2 gene but is not conserved in P450IIC1 or P450IIC4. Other sequences similar to binding sites for AP-1, the octamer binding proteins, and SPH-1 are present. Except for the TATA motif, none of the potential regulatory sequences was conserved at the same location in the different genes. The P450IIC1 and P450IIC2 genes exhibited high similarity detectable by dot matrix analysis throughout the 700 bp of sequenced 5'-flanking region while the P450IIC4 gene exhibited high similarity to both P450IIC1 and P450IIC2 only for about -150 nucleotides from the RNA initiation site. Southern analysis using probes from the 5' region of the P450IIC4 gene suggests that there are at least three closely related members in the P450IIC4 subgroup in agreement with previous studies. After phenobarbital treatment, levels of P450IIC4 mRNA increased about fourfold, as measured by dot blot hybridization with a P450IIC4-specific oligonucleotide probe or by single-strand nuclease mapping of the 5' end of the mRNA, indicating that the P450IIC4 gene characterized in this study is responsive to phenobarbital. Phenobarbital treatment of rabbits increased in vitro transcription of RNA for both the P450IIC1/2 and P450IIC4 gene subgroups but only slightly and transiently for the constitutive P450IIC3 gene.

Amino Acid Sequence↗

Single-stranded DNA 'blue' T7 promoter plasmids: a versatile tandem promoter system for cloning and protein engineering.

Chimeric phage-plasmid expression vectors were constructed from pUC18/19 plasmids by cloning a single-stranded DNA (ssDNA) origin of replication from bacteriophage f1 and inserting a bacteriophage T7 promoter within the beta-galactosidase gene. A T7 promoter permits in vivo or in vitro expression of single proteins by the translation of T7 RNA polymerase transcripts. Insertional inactivation of the T7 promoter-containing beta-galactosidase gene permits a simple blue-to-white color cloning assay. Compared with several helper phages that were examined, superinfection with M13K07 resulted in the highest yields of the pTZ plasmids as ssDNA viral particles. These ssDNA promoter plasmids are uniquely suited for protein engineering because they simplify cloning, oligonucleotide directed mutagenesis, verification by enzymatic sequence analysis, and expression of mutant proteins from a single vector. These vectors were utilized to eliminate an efficient transcriptional terminator of T7 RNA polymerase in the cDNA of bovine preproparathyroid hormone by oligonucleotide directed mutagenesis. The mutation changed the codon for phenylalanine-19 in the signal peptide to alanine. In a cell-free system the mutant cDNA transcripts were translated into preproparathyroid hormone, which was converted to proparathyroid hormone in the presence of microsomal membranes.

Animals↗

Professional nursing roles. The reintegration of patient teaching.

This article stresses the critical nature of the education function of the nurse and suggests strategies for reintegrating teaching as a professional role. It is important that administrators value teaching and that staff development departments assist nurses in refining teaching skills.

Humans↗