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A Klier

Publications and source records attributed to A Klier.

51 records · Page 3Linked to original sources

DNA sequences specifying the transcription of the streptococcal kanamycin resistance gene in Escherichia coli and Bacillus subtilis.

The gene conferring resistance to kanamycin, aphA, and originating from the streptococcal plasmid pJH1 was inserted into a shuttle vector. Full expression of aphA was obtained in Escherichia coli and Bacillus subtilis. The starting point for aphA transcription, determined by S1 nuclease mapping, was located 340 base pairs upstream from the ATG translational initiator codon. The sequence of the promoter consists of the hexanucleotides TTGACA and TATCTT, with a spacing of 17 base pairs. The stability profile of a 600 base-pair-long DNA fragment containing the aphA promoter and the translational initiation site indicated that, as already reported for Escherichia coli, both structures are located in domains of weak stability.

Bacillus subtilis↗

Recent aspects of genetic manipulation in Bacillus thuringiensis.

The conjugative plasmid pAM beta 1 was transferred from Streptococcus faecalis to several strains of Bacillus thuringiensis by a filter-mating process. From a transconjugant clone of B. thuringiensis a hybrid plasmid resulting from an in vivo insertion into pAM beta 1 of a 3 Md DNA sequence was isolated. This 3 Md DNA molecule (Th sequence) is related to several host plasmids found in different serotypes of B. thuringiensis. A reciprocal conjugation-like process involving the transfer of pAM beta 1 from B. thuringiensis to S. faecalis was also demonstrated. The comparison of the restriction maps of the crystal genes from plasmid and chromosomal origins of different serotypes, six of which having been cloned in E. coli, revealed the existence of two classes of genes which are very similar in the map corresponding to the N-terminal part of the protein, and which differ essentially in the 3' region. The presence of the transposon-like Th sequence was found in several cases associated with the crystal gene in the same host plasmid, and a model for their structural organization is proposed.

Bacillus thuringiensis↗

Cloning and expression in Escherichia coli of the regulatory sacU gene from Bacillus subtilis.

The regulatory wild-type locus sacU, which has a pleiotropic effect in Bacillus subtilis, notably on the synthesis of secreted proteins, was obtained from a colony bank of Escherichia coli harboring recombinant cosmids representative of the B. subtilis genome. It was shown that the sacU gene is located on a 2.4-kilobase KpnI-EcoRI fragment and that the cloned sequence is homologous to the corresponding chromosomal DNA fragment. The wild-type phenotype was recovered after transformation of SacU-, SacUh, and SacU- Rec- strains with the recombinant cosmid, indicating that the sacU locus has been cloned in totality. The sacU gene was expressed in a minicell-producing E. coli strain, and it was shown that it coded for a 46-kilodalton protein. In addition to the hypersecretion of proteins, SacUh mutants were characterized by the presence of a 46-kilodalton protein in the membrane fraction in higher amounts than were found in the wild-type strain. These mutants were also devoid of a 36-kilodalton polypeptide corresponding to the flagellin subunit. Analysis of the mRNA content of a secreted protein (levansucrase) in SacU- and SacUh mutants strongly suggested that the pleiotropic action of the sacU gene on the synthesis of levansucrase is exerted at a posttranscriptional level in B. subtilis cells and is probably correlated with the mechanism of secretion of exoenzymes.

Bacillus subtilis↗

Characterization of the precursor form of the exocellular levansucrase from Bacillus subtilis.

Expression of the cloned levansucrase gene (sacB) was demonstrated in E. coli minicells by assay of the enzyme in crude extracts, SDS-polyacrylamide gel electrophoresis and immunoblotting. The existence of a precursor form of the enzyme of MW 53000 was also demonstrated and confirmed by the DNA sequence corresponding to the NH2 terminal region of the protein.

Amino Acid Sequence↗

A transposon-like structure related to the delta-endotoxin gene of Bacillus thuringiensis.

A DNA segment (Th-sequence) has been found in several strains of Bacillus thuringiensis. This Th-sequence [3 megadaltons (Md)] induces adjacent deletions when it is located in the pAM beta 1 plasmid derived from Streptococcus faecalis. Electron microscopic examination of reannealed single strands of one plasmid (pMT9) carrying such a deletion revealed that the Th-sequence corresponds to a single-stranded loop (2.8 Md) bounded by a short double-stranded stem (less than 0.2 Md). Southern blotting experiments established that in B. thuringiensis the Th-sequence was generally located on the large plasmid which also harbours the gene coding for the delta-endotoxin (crystal protein). Hybridization and heteroduplex analysis of the extrachromosomal DNA from the berliner 1715 strain demonstrated that the crystal gene and the Th-sequence are located in close vicinity on a 42-Md plasmid and that they are separated by a 1.3-Md DNA segment. This DNA segment is repeated in inverted orientation, once immediately adjacent to the Th-sequence and once 1.8 Md beyond the crystal gene. A model for the organization of these DNA sequences inside a transposon-like structure is proposed.

Bacillus thuringiensis↗

In vitro transcription of the cloned chromosomal crystal gene from Bacillus thuringiensis.

We have determined the conditions required for in vitro transcription of the cloned chromosomal crystal gene from Bacillus thuringiensis using either the homologous vegetative RNA polymerase or a sporulation specific form of this enzyme. The gene is actively transcribed by the latter enzyme (form II) but not by the vegetative one. Evidence for a specific recognition between the form II enzyme and the promotor site of the crystal gene was obtained by binding experiments. They showed that the binding is increased by the presence of some additional factors, which change the specificity of the vegetative core-enzyme. The sequence of the promoter has been determined and the start-point of the transcription deduced. Two hexanucleotide sequences, TACAAT and CCTACG, centered at - 10 and - 35 bp are present, but are somewhat different from the consensus sequences previously described in other bacilli.

Bacillus thuringiensis↗

Cloning and expression of the crystal protein genes from Bacillus thuringiensis strain berliner 1715.

From a clone bank of the entire genome of Bacillus thuringiensis, one clone that contains a plasmid ( pBT 15-88) harboring a sporulation gene was identified by molecular hybridization. This gene, identified as the crystal protein gene, occurs both on a large host plasmid DNA and in the chromosomal DNA in B. thuringiensis strain berliner 1715. The inserted sequence of pBT 15-88, which corresponds to the chromosomal sequence, was not expressed in Escherichia coli. In B. thuringiensis (kurstaki), the crystal gene was found only on a large host plasmid while in B. thuringiensis ( dendrolimus ), it is only on the chromosomal DNA. The plasmid crystal gene was cloned by ligation of a 14-kb BamHI fragment of a host plasmid DNA of 42 megadaltons from strain berliner 1715 into the BamHI site of the bifunctional vector pHV33 . In E. coli and in sporulating B. subtilis the plasmid pBT 42-1 coded for a polypeptide, detected by antibodies against the crystal protein, with the same electrophoretic mobility as the crystal protein of B. thuringiensis. The crystal gene was not expressed in vegetative cells of B. subtilis, suggesting that the control at the transcriptional level is the same in B. subtilis and in B. thuringiensis. Protein extracts from the clones harboring the hybrid plasmid are toxic for the larvae of Pierris brassicae and the protein antigen forms cytoplasmic inclusion bodies in E. coli and B. subtilis, which are visible under the light microscope.

Bacillus thuringiensis↗

Cloning and expression in Escherichia coli of the sucrase gene from Bacillus subtilis.

A recombinant cosmid carrying the sucrase gene (sacA) was obtained from a colony bank of E. coli harboring recombinant cosmids representative of the B. subtilis genome. It was shown that the sacA gene is located in a 2kb EcoRI fragment and that the cloned sequence is homologous to the corresponding chromosomal DNA fragment. A fragment of 2kb containing the gene was subcloned in both orientations in the bifunctional vector pHV33 and expression was further looked for in B. subtilis and E. coli. Complementation of a sacA mutation was observed in Rec+ and REc- strains of B. subtilis. Expression of sucrase was also demonstrated in E. coli, which is normally devoid of this activity, by SDS-polyacrylamide gel electrophoresis, specific immunoprecipitation and assay of the enzyme in crude extracts. The specific activity of the enzyme depended on the orientation of the inserted fragment. The saccharolytic activity was found to be cryptic in E. coli since the presence of the recombinant plasmids did not allow the transport of [U14C] sucrose and the growth of the cells. It was shown also that the recombinant cosmid contained part of the neighboring locus (sacP) which corresponds to a component of the PEP-dependent phosphotransferase system of sucrose transport of B. subtilis.

Bacillus subtilis↗

Construction of a colony bank of E. coli containing hybrid plasmids representative of the Bacillus subtilis 168 genome. Expression of functions harbored by the recombinant plasmids in B. subtilis.

A collection of about 2500 clones containing hybrid plasmids representative of nearly the entire genome of B. subtilis 168 was established in E. coli SK1592 by using the poly(dA).poly(dT) joining method with randomly sheared DNA fragments and plasmid pHV33, a bifunctional vector which can replicate in both E. coli and B. subtilis. Detection of cloned recombinant DNA molecules was based on the insertional inactivation of the Tc gene occurring at the unique BamHI cleavage site present in the vector plasmid. Thirty individual clones of the collection were shown to hybridize specifically with a B. subtilis rRNA probe. CCC-recombinant plasmids extracted from E. coli were pooled in lots of 100 and used to transform auxotrophic mutants of B. subtilis 168. Complementation of these auxotrophic mutations was observed for several markers such at thr, leuA, hisA, glyB and purB. In several cases, markers carried by the recombinant plasmids were lost from the plasmid and integrated into the chromosomal DNA. Loss of genetic markers from the hybrid plasmids did not occur when a rec- recipient strain of B. subtilis was used.

Bacillus subtilis↗