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Biomedical subjects

M Inouye

Publications and source records attributed to M Inouye.

At least 415 records · Page 23Linked to original sources

Verification of protein sequence by fast atom bombardment mass spectrometry. Amino acid sequence of protein S, a development-specific protein of Myxococcus xanthus.

A mass spectrometric method was applied to protein S, a development-specific protein of Myxococcus xanthus, in order to verify the amino acid sequence deduced from the nucleotide sequence of its gene. On examining proteolytic digests of the protein by fast atom bombardment mass spectrometry without separation of individual peptides, signals corresponding to individual peptides were observed in the mass spectra. The mass values of the observed signals were correlated to the theoretical mass values calculated from the predicted amino acid sequence, thereby identifying the peptides and proving the accuracy of the sequence. The previous finding that protein S is the product of the second gene of the two tandemly repeated genes on the M. xanthus chromosome ( Inouye , S., Franceschini , T., and Inouye , M. (1983) Proc. Natl. Acad. Sci. U.S.A. 80, 6829-6833) is now unambiguously confirmed.

Amino Acid Sequence↗

Effects of replacing serine and threonine residues within the signal peptide on the secretion of the major outer membrane lipoprotein of Escherichia coli.

We have investigated the importance of serine and threonine residues within the signal peptide in the secretion and processing of the major outer membrane lipoprotein precursor prolipoprotein in Escherichia coli. This was accomplished by systematically replacing these residues with alanine utilizing oligodeoxyribonucleotide-directed mutagenesis. The results demonstrated that the replacement of serine 15 but not threonine 16 alone caused an initial accumulation of membrane-bound unmodified prolipoprotein. In addition, replacement of both serine 15 and threonine 16 resulted in a greater accumulation of this membrane-bound precursor. The accumulated prolipoprotein could be matured to lipoprotein in a quantitative manner, and this process was inhibited by globomycin and carbonyl cyanide m-chlorophenylhydrazone. These results will be discussed in terms of the contribution that serine and threonine have in determining the overall secondary structure of the signal peptide and its importance in secretion and/or processing.

Bacterial Outer Membrane Proteins↗

Effects of mutations at glycine residues in the hydrophobic region of the Escherichia coli prolipoprotein signal peptide on the secretion across the membrane.

Each of the 2 glycine residues in the hydrophobic region of the prolipoprotein signal peptide of Escherichia coli was systematically deleted or substituted with a valine residue by oligonucleotide-directed site-specific mutagenesis. Functional analysis of four such mutants as well as four double mutants, resulting from combinations of any two of the single mutations, revealed that (a) glycine residues at positions 9 and 14 could be replaced individually or at the same time with a valine residue without affecting the secretion of prolipoprotein; (b) the deletion of glycine at position 9 had no effect on the secretion of prolipoprotein whereas, when glycine at position 14 was deleted, the glyceride modification and the processing of the mutant prolipoprotein occurred at a much slower rate at 42 degrees C than those of the wild type prolipoprotein; and (c) the effects of deleting glycine at position 14 could be suppressed by the deletion of glycine at position 9, which resulted in shortening the hydrophobic region of the prolipoprotein signal peptide by 2 amino acid residues. These results indicate that the hydrophobic region of the prolipoprotein signal peptide has remarkable flexibility in terms of the relationship between its primary structure and function in protein secretion.

Amino Acid Sequence↗

Interferon-beta-related DNA is dispersed in the human genome.

Interferon-beta 1 (IFN-beta 1) complementary DNA was used as a hybridization probe to isolate human genomic DNA clones lambda B3 and lambda B4 from a human genomic DNA library. Blot-hybridization procedures and partial nucleotide sequencing revealed that lambda B3 is related to IFN-beta 1 (and more distantly to IFN-alpha 1). Analyses of DNA obtained from a panel of human-rodent somatic cell hybrids that were probed with DNA derived from lambda B3 showed that lambda B3 is on human chromosome 2. Similar experiments indicated that lambda B4 is not on human chromosomes 2, 5, or 9. The finding that DNA related to the IFN-beta 1 gene (and IFN-alpha 1 gene) is dispersed in the human genome raises new questions about the origins of the interferon genes.

Animals↗

Apolipoprotein, an intermediate in the processing of the major lipoprotein of the Escherichia coli outer membrane.

A new intermediate (apolipoprotein) in the synthesis of the major lipoprotein of the Escherichia coli outer membrane has been identified. The accumulation of this new form of the lipoprotein was observed when excessive production of lipoprotein was induced or when the membrane fraction containing the prolipoprotein accumulated in the presence of globomycin was incubated at 60 degrees C. The new form of the lipoprotein could be chased into the mature lipoprotein. In addition, from sequential analysis of this new protein by Edman degradation, the NH2 terminus was found to be cysteine, containing a free unmodified amino group and a glyceride-modified sulfhydryl group. These results indicate that this protein is an intermediate in the conversion of glyceride-modified prolipoprotein to the mature lipoprotein. It is believed that the lipoprotein signal peptidase directly cleaves the lipoprotein signal peptide at the peptide bond between the glycine residue at position 20 and the cysteine residue at position 21 of the prolipoprotein. The resulting intermediate, designated here as apolipoprotein, is subsequently acylated at its free amino group to yield the final mature lipoprotein.

Amino Acid Sequence↗

Nine amino acid residues at the NH2-terminal of lipoprotein are sufficient for its modification, processing, and localization in the outer membrane of Escherichia coli.

We have examined the structural requirements at the NH2-terminal region of the lipoprotein for its assembly in the outer membrane of Escherichia coli by constructing a hybrid protein consisting of an NH2-terminal portion of the prolipoprotein, consisting of the signal peptide and 9 amino acid residues of lipoprotein, and the entire beta-lactamase sequence. The results from this study indicate that the hybrid protein is modified with glyceride, processed in a globomycin-sensitive step, and localized in the outer membrane. The translocation of the hybrid protein across the cytoplasmic membrane occurs post-translationally and is inhibited by carbonyl cyanide m-chlorophenylhydrazone. Our results, therefore, indicate that the signal peptide and 9 amino acid residues of prolipoprotein are sufficient for its modification, processing, and localization in the outer membrane.

Amino Acid Sequence↗

Secretion cloning vectors in Escherichia coli.

The DNA fragment coding for the signal peptide of the OmpA protein, a major outer membrane protein of Escherichia coli, has been inserted into the high-level expression vectors, pIN-III. A foreign DNA fragment can be cloned in any one of the three reading frames at the unique EcoRI, HindIII or BamHI sites immediately after the ompA signal peptide coding sequence. The cloned foreign gene is under the control of both the lpp promoter and the lac promoter-operator. The expression of the gene is regulated by the lac repressor produced by the same vectors. Using the pIN-III-ompA vector, the DNA fragment coding for only the mature portion of beta-lactamase was inserted into the EcoRI site. Upon induction of gene expression, beta-lactamase was secreted into the periplasmic space. The ompA signal peptide was correctly removed resulting in the production of beta-lactamase with four extra amino acid residues (Gly-Ile-Pro-Gly) at its amino terminus due to the linker sequence in the vector. After a 3-h induction, beta-lactamase was accumulated to 20% of total cellular protein without any detectable accumulation of pro-beta-lactamase. Using oligonucleotide-directed site-specific mutagenesis, we have also removed the linker sequence and upon induction of gene expression, beta-lactamase with the authentic NH2-terminal sequence was produced, in even larger amounts than the beta-lactamase with the linker sequence.

Amino Acid Sequence↗

The use of RNAs complementary to specific mRNAs to regulate the expression of individual bacterial genes.

A naturally occurring small RNA molecule ( micF RNA), complementary to the region encompassing the Shine-Dalgarno sequence and initiation codon of the ompF mRNA, is known to block the expression of that mRNA in E. coli. We have constructed a plasmid that produces a complementary RNA to the E. coli lpp mRNA (mic[Ipp] RNA). Induction of the mic(Ipp) gene efficiently blocked lipoprotein production and reduced the amount of lpp mRNA. Two mic(ompC) genes were similarly engineered and their expression was found to inhibit drastically production of OmpC. Analysis of several types of mic(ompA) genes suggests that micRNAs complementary to regions of the mRNA likely to come in contact with ribosomes were most effective. The novel capabilities of this artificial mic system provide great potential for application in both procaryotic and eucaryotic cells.

Bacterial Proteins↗

Multicopy single-stranded DNA isolated from a gram-negative bacterium, Myxococcus xanthus.

A gram-negative bacterium, Myxococcus xanthus, was found to contain 500 to 700 copies per chromosome of a short single-stranded linear DNA fragment. When this DNA (multicopy single-stranded DNA; msDNA) labeled at the 5' end with kinase was used as a probe against total chromosomal blots, it hybridized to unique high molecular weight bands, which were cloned and sequenced. Labeling of msDNA was also possible using the Klenow fragment of DNA polymerase I as well as terminal deoxynucleotidyl transferase, permitting direct sequencing. The 5' end of msDNA was found to be primed by a short RNA segment. The DNA portion of msDNA consisted of 163 bases. Exact correspondence was seen between the msDNA sequence and the sequence of a chromosomal clone. An elaborate secondary structure is postulated for the msDNA sequence. A similar satellite DNA was also found in another myxobacterium, Stigmatella aurantiaca.

Base Sequence↗

A unique mechanism regulating gene expression: translational inhibition by a complementary RNA transcript (micRNA).

The expression of the genes for the major outer membrane proteins OmpF and OmpC are osmoregulated. The ompC locus was found to be transcribed bidirectionally under conditions of high osmolarity and a 174-base transcript encoded upstream of ompC was found to inhibit the OmpF production and to substantially reduce the amount of the ompF mRNA. This RNA [mRNA-interfering complementary RNA (micRNA)] has a long sequence that is complementary to the 5' end region of the ompF mRNA. We propose that the micRNA inhibits the translation of the ompF mRNA by hybridizing with it. This RNA interaction may cause premature termination of the transcription of the ompF gene or destabilization of the ompF mRNA or both.

Bacterial Outer Membrane Proteins↗

Two-dimensional S1 nuclease heteroduplex mapping: detection of rearrangements in bacterial genomes.

A method of two-dimensional S1 nuclease heteroduplex mapping was developed to detect gene rearrangements and repeated sequences in total bacterial chromosomes. To detect DNA rearrangements between two variant bacterial strains, total chromosomal DNA preparations from the two strains are digested with four-base-recognizing restriction enzymes, mixed together, denatured, renatured, and separated on first-dimension polyacrylamide slab gels. Gel strips are cut out and soaked in a buffer containing S1 nuclease, which diffuses into the strips and digests the DNA fragments at single-stranded regions. The digested DNA is then electrophoresed in a second dimension perpendicular to the first dimension. DNA heteroduplexes that were digested by the S1 nuclease are resolved as distinct spots below a bright unresolved band of homoduplex. This report describes testing of this method on a model system consisting of two nearly isogeneic strains of Escherichia coli, and the application of this method in detecting DNA rearrangements associated with phase variation in Myxococcus xanthus.

Chromosome Mapping↗

Effects of deletion of the gene for the development-specific protein S on differentiation in Myxococcus xanthus.

A deletion mutation of the gene for protein S (tps), a development-specific protein of Myxococcus xanthus, was constructed. No significant differences in the process of fruiting body formation or the yield of myxospores were observed between mutant and wild-type cells. On the other hand, when the tps gene was deleted together with a 2.0-kilobase sequence including the ops gene immediately upstream of the tps gene, fruiting body formation was substantially delayed, and the yield of myxospores was reduced. These results indicate that protein S is not essential for differentiation of M. xanthus, whereas a gene product(s) coded from the sequence upstream of the tps gene appears to be required for normal fruiting body formation.

Bacterial Proteins↗

Effect of reduced membrane lipid fluidity on the biosynthesis of lipopolysaccharide of Escherichia coli.

A low molecular weight precursor of lipopolysaccharide was accumulated under conditions in which the membrane lipids of a fatty acid auxotroph of Escherichia coli were reduced to a non-fluid state. The lipopolysaccharide precursor was detected, by sodium dodecyl sulfate/polyacrylamide gel electrophoresis and autoradiography, in membranes isolated from cells which were pulse-labeled with N-acetyl-[1-14C]glucosamine. The precursor could be chased into mature lipopolysaccharide by returning the membrane lipids to a normal fluid state. Conversion of the precursor to lipopolysaccharide was inhibited by the presence of potassium cyanide or sodium arsenate. The processing of several outer membrane protein precursors, including the promatrix proteins, was also inhibited under these conditions. Preliminary characterization of the lipopolysaccharide precursor was undertaken.

Bacterial Proteins↗

Comparison of the lipoprotein gene among the enterobacteriaceae. DNA sequence of Morganella morganii lipoprotein gene and its expression in Escherichia coli.

A DNA sequence of 532 base pairs encompassing the entire Morganella morganii lipoprotein gene (lpp) was determined. Sequence comparisons of the M. morganii lpp gene with the lpp genes from Escherichia coli, Serratia marcescens, and Erwinia amylovora reveal that the M. morganii lpp gene is more distantly related to the E. coli lpp gene than any of the other lpp genes examined. Between the E. coli and M. morganii lpp genes, the following homologies were found: 44% in the promoter region (bases, -45 to -1), 88% in the 5'-end untranslated region of the mRNA, 58% in the signal sequence coding region, 75% in the coding region for the first 51 and 43% for the last 7 amino acid residues. Upstream of the promoter region and downstream of the termination codon, there are extensive insertions, deletions, and base substitutions. In spite of the differences in the DNA sequences, the lipoprotein structure was found to be highly conserved except for the carboxyl-terminal sequence of 7 amino residues. The coding region of the M. morganii lpp gene including the signal sequence was inserted into an expression cloning vector so that the production of the M. morganii lipoprotein could be induced in E. coli by a lac inducer, isopropyl-beta-D-thioglactoside. It was found that when induced, the M. morganii prolipoprotein was apparently secreted normally across the E. coli cytoplasmic membrane, modified with glycerol and palmitic acid, processed to the mature lipoprotein, and assembled in the E. coli outer membrane. The bound form covalently linked to the peptidoglycan was also found.

Base Sequence↗

Requirement for signal peptide cleavage of Escherichia coli prolipoprotein.

Oligonucleotide-directed site-specific mutagenesis was applied to alter the cleavage site in the signal peptide of the major outer membrane lipoprotein of Escherichia coli. Replacing the glycine residue at the cleavage site with an alanine residue did not affect the processing of the signal peptide. However, when the same cleavage site was constructed by the deletion of the glycine residue, the signal peptide was no longer cleaved. These results indicate that stringent structural integrity at the cleavage site in the lipoprotein signal sequence is required for correct processing of prolipoprotein.

Amino Acid Sequence↗

A comparative study on the genes for three porins of the Escherichia coli outer membrane. DNA sequence of the osmoregulated ompC gene.

The DNA sequence of the ompC gene which encodes one of the outer membrane porins has been determined. The gene appears to encode a secretory precursor of OmpC protein consisting of a total of 367 amino acid residues with a signal peptide of 21 amino acid residues at its NH2-terminal end. The 5' end noncoding region including the promoter of the ompC gene is extremely [A-T]-rich, and the codon usage in the ompC gene is unusual as are those in genes for other abundant outer membrane proteins. The promoter sequence of the ompC gene was compared with that of the ompF gene, both of which are controlled by the osmoregulatory operon, ompB. The deduced amino acid sequence of the OmpC protein showed extensive homology with that of the other porins (OmpF and PhoE proteins). The homology in the primary amino acid sequences, as well as the coding DNA sequences among the porins, indicates that the structural genes for the three porins evolved from a common ancestral gene. Comparison of the amino acid sequences among the OmpC, OmpF, and PhoE porins will be discussed with regard to structure and function.

Amino Acid Sequence↗

Effects of the complete removal of basic amino acid residues from the signal peptide on secretion of lipoprotein in Escherichia coli.

We have examined the importance of the positively charged NH2 terminus of the major outer membrane lipoprotein precursor, prolipoprotein, in the early steps of secretion in Escherichia coli. For this purpose, we have generated three mutants using oligonucleotide-directed mutagenesis in which the charge at the NH2-terminal region was changed from +2 to +1, 0, and -2. The results indicate that the synthesis of prolipoprotein is facilitated by the presence of a positively charged NH2 terminus. In addition, the translocation of prolipoprotein across the cytoplasmic membrane does not absolutely require any basic amino acids at its NH2 terminus. However, the presence of a net negatively charged NH2 terminus causes an initial cytoplasmic accumulation of prolipoprotein which is slowly, post-translationally translocated across the cytoplasmic membrane at a rate which is dependent on the number of positive charges present in this region. The analysis of these mutants clearly demonstrates the importance of the NH2 terminus of the lipoprotein signal peptide in initiating the secretion of this protein in E. coli.

Amino Acid Sequence↗

Further improvements on the phosphotriester synthesis of deoxyribooligonucleotides and the oligonucleotide directed site-specific mutagenesis of E. coli lipoprotein gene.

Two improvements that greatly enhance the rate of phosphotriester oligonucleotide synthesis are described: 1) use of hindered primary amines, e.g. t-butyl amine for decyanoethylation of oligonucleotide triester intermediates, and 2) a simplified isolation procedure that eliminates the tedious bicarbonate extraction after each condensing reaction. Using the improved procedures, oligonucleotide fragments can be synthesized as rapidly as using solid phase chemistry. The final products are purer than those obtained by solid phase chemistry since each intermediate block is purified by chromatography. The technique has been used to synthesize five oligonucleotide fragments (size 15 to 20) for the purpose of performing guided site-specific mutagenesis on a cloned E. coli lipoprotein gene.

Amino Acid Sequence↗