A bacterial clone synthesizing proinsulin. 1978.
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Biomedical subjects
Publications and source records attributed to P Lomedico.
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We have constructed a set of expression vectors which contain synthetic DNA sequences comprising a computer-generated model ribosomal binding site located downstream from the tightly regulated phage lambda pL. promoter. These vectors have been used in several laboratories to produce significant amounts of eukaryotic and prokaryotic gene products in Escherichia coli, either as fusion proteins (with two to nine extra N-terminal amino acids) or as proteins containing the naturally occurring amino terminus. For inserting DNA sequences downstream of an initiation codon, we used synthetic oligonucleotides to introduce multiple-use restriction sites recognized by EcoRI, BamHI and ClaI which generate termini complementary to those of a variety of enzymes (e.g., EcoRI, MboI, TaqI, and HpaII), in addition to their own. A set of three of these vectors was made to accommodate all three translational reading frames. In combination, the features of these vectors afford useful advantages over expression vectors previously described, especially for the application of shot-gun cloning of genomic DNA to generate expression libraries.
We have characterized a clone carrying a chicken preproinsulin gene, which is present in only one copy in the chicken genome. The gene contains two introns: a 3.5 kb intron interrupting the region encoding the connecting peptide and a 119 bp intron interrupting the DNA corresponding to the 5' non-coding region of the mRNA. This is similar to the structure of rat insulin gene II; therefore it represents the common ancestor. Since the rat insulin gene I lacks a 499 bp intron in the coding region, the rat genes have evolved by a recent gene duplication followed by loss of this intron in one copy. The divergences between insulin gene sequences, and also between globin genes, show that changes at introns and silent positions in coding regions appear very rapidly (7 X 10(-9) substitutions per nucleotide site per year), but that the accumulation of changes in these sites saturates, although not completely, after about 100 million years. From this we conclude that not all of these sites are neutral and that they do not behave as accurate evolutionary clocks over long periods of time. However, nucleotide substitutions leading to amino acid replacements are an excellent clock. Our analysis indicates that this clock is driven by selection.
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In the rat, there are two nonallelic genes for preproinsulin. The insulin end products are very similar and are equally expressed. We have isolated clones carrying these genes and their flanking sequences, and characterized them by DNA sequencing and electron microscopic analysis. We have established the primary structure of the preproinsulin mRNAs and the signal peptides of these two proteins. One of the genes contains two introns: a 499 bp intron interrupting the region encoding the connecting peptide and a 119 bp intron interrupting the segment encoding the 5 noncoding region of the mRNA. The introns are transcribed and present in a preproinsulin mRNA precursor. The other gene possesses the smaller, but not the larger, of the two introns. Calculations based on the divergence of the two preproinsulin nucleotide and amino acid sequences indicate that these genes are the products of a recent duplication. Thus one of the genes gained or lost an intron since that time.
We have cloned double-stranded cDNA copies of a rat preproinsulin messenger RNA in Escherichia coli chi1776, using the unique Pst endonuclease site of plasmid pBR322 that lies in the region encoding amino acids 181-182 of penicillinase. This site was reconstructed by inserting the cDNA with an oligo(dG)-oligo(dC) joining procedure. One of the clones expresses a fused protein bearing both insulin and penicillinase antigenic determinants. The DNA sequence of this plasmid shows that the insulin region is read in phase; a stretch of six glycine residues connects the alanine at position 182 of penicillinase to the fourth amino acid, glutamine, of rat proinsulin.