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S Donadio

Publications and source records attributed to S Donadio.

At least 19 recordsLinked to original sources

Acyltransferase domain substitutions in erythromycin polyketide synthase yield novel erythromycin derivatives.

The methylmalonyl coenzyme A (methylmalonyl-CoA)-specific acyltransferase (AT) domains of modules 1 and 2 of the 6-deoxyerythronolide B synthase (DEBS1) of Saccharopolyspora erythraea ER720 were replaced with three heterologous AT domains that are believed, based on sequence comparisons, to be specific for malonyl-CoA. The three substituted AT domains were "Hyg" AT2 from module 2 of a type I polyketide synthase (PKS)-like gene cluster isolated from the rapamycin producer Streptomyces hygroscopicus ATCC 29253, "Ven" AT isolated from a PKS-like gene cluster of the pikromycin producer Streptomyces venezuelae ATCC 15439, and RAPS AT14 from module 14 of the rapamycin PKS gene cluster of S. hygroscopicus ATCC 29253. These changes led to the production of novel erythromycin derivatives by the engineered strains of S. erythraea ER720. Specifically, 12-desmethyl-12-deoxyerythromycin A, which lacks the methyl group at C-12 of the macrolactone ring, was produced by the strains in which the resident AT1 domain was replaced, and 10-desmethylerythromycin A and 10-desmethyl-12-deoxyerythromycin A, both of which lack the methyl group at C-10 of the macrolactone ring, were produced by the recombinant strains in which the resident AT2 domain was replaced. All of the novel erythromycin derivatives exhibited antibiotic activity against Staphylococcus aureus. The production of the erythromycin derivatives through AT replacements confirms the computer predicted substrate specificities of "Hyg" AT2 and "Ven" AT and the substrate specificity of RAPS AT14 deduced from the structure of rapamycin. Moreover, these experiments demonstrate that at least some AT domains of the complete 6-deoxyerythronolide B synthase of S. erythraea can be replaced by functionally related domains from different organisms to make novel, bioactive compounds.

Acyl Coenzyme A

Erythromycin production in Saccharopolyspora erythraea does not require a functional propionyl-CoA carboxylase.

Using an oligonucleotide corresponding to the consensus sequence for the biotin-binding motif, two unlinked genetic loci, bpl1 and bpl2, were cloned from the erythromycin producer Saccharopolyspora erythraea and the nucleotide sequences of a c. 4 kb segment from each determined. The two loci share a virtually identical segment of 1746 nucleotides, coinciding with most of the genes designated bcpA1 and bcpA2 present in bpl1 and bpl2, respectively. The deduced sequences of these genes are highly similar to that of the alpha-chain of mammalian propionyl-CoA carboxylase. Upstream of bcpA2 lies pccB, the gene encoding the beta-chain of this enzyme. Mutant strains carrying frameshift mutations in bcpA1 and pccB were constructed, but we failed to isolate insertional mutants in bcpA2. Propionyl-CoA carboxylase activity was undetectable in the pccB mutant, but was unaffected in the bcpA1-defective strain. These results indicate that pccB encodes the beta-chain of propionyl-CoA carboxylases, and suggest that the alpha-chain of this enzyme, which is likely to be encoded by bcpA2, is shared with some other essential biotin-dependent enzyme. The pccB mutation had no impact on erythromycin production in complex medium.

Base Sequence

An elongation factor Tu (EF-Tu) resistant to the EF-Tu inhibitor GE2270 in the producing organism Planobispora rosea.

Using a cell-free protein-synthesis system, we have established that the elongation factor (EF) Tu (EF-Tu) of the actinomycete Planobispora rosea, the producer of the thiazolyl peptide GE2270, a specific EF-Tu inhibitor, is highly resistant to its own antibiotic, while it is completely inhibited by kirromycin, which is another inhibitor of this factor. P. rosea was found to possess a single tuf gene, located between fus and rpsJ, encoding other components of the protein-synthesis machinery. The P. rosea tuf gene was expressed as a translational fusion to malE in Escherichia coli, and the resulting EF-Tu with an N-terminal Gly-Met extension was able to promote poly(U)-directed poly(Phe) synthesis in cell-free systems. This activity was not affected by GE2270, and the recombinant protein was incapable of binding the antibiotic, indicating that the P. rosea EF-Tu is intrinsically resistant to this inhibitor. Inspection of the translated tuf sequence revealed a number of amino acid substitutions in highly conserved positions. These residues, which are likely to be involved in conferring GE2270 resistance, map in EF-Tu domain II, as do the only two known mutations conferring resistance to this class of thiazolyl peptides in Bacillus subtilis.

ATP-Binding Cassette Transporters

Complementation of a Streptomyces lividans Leu- mutant by the Actinoplanes teichomyceticus leuC gene.

A leucine auxotroph of Streptomyces lividans (Sl), designated PC196, was unable to convert alpha-isopropylmalate into the beta-isomer. A DNA fragment from Actinoplanes teichomyceticus (At) cloned into the Streptomyces vector pIJ702 complemented PC196. Sequence analysis of the 3.0-kb insert revealed one complete ORF with high similarity to other leuC genes encoding the large subunit of isopropylmalate isomerase (IPMI), and the 5' end of a second ORF corresponding to leuD, which encodes the smaller subunit of IPMI. Further subcloning established that Sl strain PC196 is defective in the large subunit of IPMI.

Actinomycetaceae

Macrolides.

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Actinomycetales

Characterization of the genes and attachment sites for site-specific integration of plasmid pSE101 in Saccharopolyspora erythraea and Streptomyces lividans.

The 11.3 kb plasmid pSE101 integrates into the chromosome of Saccharopolyspora erythraea at a specific attB site and into the chromosome of Streptomyces lividans at many sites. Multisite integration in S. lividans was also observed when a 1.9 kb segment of pSE101 containing attP and adjacent plasmid sequence was used to transform a pSE101- S. lividans host. Nucleotide sequencing of this segment revealed the presence of a complete open reading frame (ORF) designated int, encoding a putative polypeptide of 448 amino acids that shows similarities to site-specific recombinases of the integrase family. Sequencing of the 1.3 kb segment upstream of int revealed the presence of three additional ORFs: the one most distal to int encodes a putative 76 amino acid basic polypeptide analogous to the Xis proteins of a number of bacteriophages. Nucleotide sequencing of attP, and the attB, attL and attR sites from Sac. erythraea revealed a 46 bp sequence common to all sites with no duplications of chromosomal sequences in the integrated state. A putative structural gene for a tRNA(Thr) was found to overlap the 46 bp common sequence at attB. Sequencing of four pSE101 integration sites (attB') and corresponding attL' and attR' sites in S. lividans showed that the 46 bp sequence was present at each attR' site, whereas only the first three bases, CTT, were retained at each attL' and attB' site. A feature common to the four attB' sites and to attB is a highly conserved 21 bp segment with inverted repeats flanking the CTT sequence.(ABSTRACT TRUNCATED AT 250 WORDS)

Amino Acid Sequence

An erythromycin analog produced by reprogramming of polyketide synthesis.

The polyketide-derived macrolactone of the antibiotic erythromycin is made through successive condensation and processing of seven three-carbon units. The fourth cycle involves complete processing of the newly formed beta-keto group (beta-keto reduction, dehydration, and enoyl reduction) to yield the methylene that will appear at C-7 of the lactone ring. Synthesis of this molecule in Saccharopolyspora erythraea is determined by the three large eryA genes, organized in six modules, each governing one condensation cycle. Two amino acid substitutions were introduced in the putative NAD(P)H binding motif in the proposed enoyl reductase domain encoded by eryAII. The metabolite produced by the resulting strain was identified as delta 6,7-anhydroerythromycin C resulting from failure of enoyl reduction during the fourth cycle of synthesis of the macrolactone. This result demonstrates the involvement of at least the enoyl reductase from the fourth module in the fourth cycle and indicates that a virtually complete macrolide can be produced through reprogramming of polyketide synthesis.

Amino Acid Sequence

IS1136, an insertion element in the erythromycin gene cluster of Saccharopolyspora erythraea.

The Saccharopolyspora erythraea eryAI and eryAII genes, which, together with eryAIII, are responsible for the formation of the macrolactone portion of the antibiotic erythromycin, are separated by a 1.46-kb segment, designated IS1136, with the characteristics of an insertion sequence. It contains an open reading frame of 425 codons similar to that of the Anabaena IS891 and is present in four nonidentical copies in the Sac. erythraea genome. Inverted repeats were found near the ends of IS1136, and in the copy in eryA, one of the ends was found to overlap the 5' end of eryAII. Hybridization analysis suggests that IS1136 is confined to Saccharopolyspora species containing eryA-homologous DNA.

Amino Acid Sequence

Identification of a Saccharopolyspora erythraea gene required for the final hydroxylation step in erythromycin biosynthesis.

In analyzing the region of the Saccharopolyspora erythraea chromosome responsible for the biosynthesis of the macrolide antibiotic erythromycin, we identified a gene, designated eryK, located about 50 kb downstream of the erythromycin resistance gene, ermE. eryK encodes a 44-kDa protein which, on the basis of comparative analysis, belongs to the P450 monooxygenase family. An S. erythraea strain disrupted in eryK no longer produced erythromycin A but accumulated the B and D forms of the antibiotic, indicating that eryK is responsible for the C-12 hydroxylation of the macrolactone ring, one of the last steps in erythromycin biosynthesis.

Amino Acid Sequence

Polyketide synthesis: prospects for hybrid antibiotics.

Polyketides fall into two structural classes: aromatic and complex. The former are built mainly from acetate units through a reiterative process wherein the beta-carbonyl groups formed after each condensation cycle are left largely unreduced. Complex polyketides are composed of acetates, propionates, or butyrates, and the extent of beta-carbonyl reduction varies from one cycle to the next. Two themes for polyketide synthases are emerging. Aromatic PKSs are determined by four to six genes encoding mono- or bifunctional enzymes; one PKS complex is used for all synthesis steps. Complex PKSs are composed of several multifunctional polypeptides that contain enzymatic domains for the condensation and reduction steps; each domain is used at a unique step in the pathways, and the extent of beta-carbonyl processing depends on the functional domains operating at that cycle. Mutations rendering certain domains nonfunctional have been introduced into genes for complex polyketides, resulting in the production of novel molecules.

Amino Acid Sequence

Biosynthesis of the erythromycin macrolactone and a rational approach for producing hybrid macrolides.

The three eryA genes involved in the formation of the polyketide portion of the macrolide antibiotic erythromycin in Saccharopolyspora erythraea, appear to be organized in a single transcriptional unit on the basis of the results of gene disruption experiments. An insertion sequence-like element of lower G + C content separates eryAI from eryAII. The organization of the enzymatic domains present in the eryA-encoded multifunctional polypeptides, determined by computer-assisted analysis, is presented. This has enabled the determination of a putative dehydratase domain. A rational approach for producing novel macrolides by introducing selected changes in polyketide synthase genes is outlined. The isolation of a lactone intermediate resulting from an early synthesis step in macrolactone formation is also presented.

Amino Acid Sequence

Organization of the enzymatic domains in the multifunctional polyketide synthase involved in erythromycin formation in Saccharopolyspora erythraea.

Localization of the enzymatic domains in the three multifunctional polypeptides from Saccharopolyspora erythraea involved in the formation of the polyketide portion of the macrolide antibiotic erythromycin was determined by computer-assisted analysis. Comparison of the six synthase units (SU) from the eryA genes with each other and with mono- and multifunctional fatty acid and polyketide synthases established the extent of each beta-ketoacyl acyl-carrier protein (ACP) synthase, acyltransferase, beta-ketoreductase, ACP, and thioesterase domain. The extent of the enoyl reductase (ER) domain was established by detecting similarity to other sequences in the database. A segment containing the putative dehydratase (DH) domain in EryAII, with a potential active-site histidine residue, was also found. The finding of conservation of a portion of the DH-ER interdomain region in the other five SU, which lack these two functions, suggests a possible evolutionary path for the generation of the six SU.

3-Oxoacyl-(Acyl-Carrier-Protein) Synthase

Modular organization of genes required for complex polyketide biosynthesis.

In Saccharopolyspora erythraea, the genes that govern synthesis of the polyketide portion of the macrolide antibiotic erythromycin are organized in six repeated units that encode fatty acid synthase (FAS)-like activities. Each repeated unit is designated a module, and two modules are contained in a single open reading frame. A model for the synthesis of this complex polyketide is proposed, where each module encodes a functional synthase unit and each synthase unit participates specifically in one of the six FAS-like elongation steps required for formation of the polyketide. In addition, genetic organization and biochemical order of events appear to be colinear. Evidence for the model is provided by construction of a selected mutant and by isolation of a polyketide of predicted structure.

Amino Acid Sequence

Site-specific recombination in Escherichia coli between the att sites of plasmid pSE211 from Saccharopolyspora erythraea.

pSE211 from Saccharopolyspora erythraea integrates site-specifically into the chromosome through conservative recombination between attP and attB, the plasmid and chromosomal attachment sites. Integration depends on the presence of int, an open reading frame (ORF) that lies adjacent to attP and encodes the putative integrase. Immediately upstream of int lies xis (formerly called orf2) which encodes a basic protein that is thought to exhibit DNA binding. xis and int were cloned in various combinations in pUC18 and expressed constitutively in Escherichia coli from the lac promoter. attP and attB were cloned in Streptomyces or E. coli plasmids containing kanamycin resistance (KmR) or chloramphenicol resistance (CmR) markers. Stable KmR CmR cointegrates formed by attP x attB or attP x attP recombination (integration) were obtained in E. coli hosts that expressed int. Co-integrates were not found in hosts expressing int + xis. Excision (intraplasmid att site recombination) was examined by constructing plasmids carrying attL and attR or two attP sites separating CmR from KmR and by following segregation of the markers in various hosts. Both attL x attR and attP x attP excision depended on both xis and int in E. coli. pSE211 att site integration and excision were not affected by a deletion in himA, the gene encoding a subunit of integration host factor.

Actinomycetales

Cloning and characterization of the Saccharopolyspora erythraea fdxA gene encoding ferredoxin.

The Saccharopolyspora erythraea gene (fdxA) corresponding to a previously purified ferredoxin [Shafiee and Hutchinson, J. Bacteriol., 170 (1988) 1548-1553] was cloned using an oligodeoxyribonucleotide probe based on the N-terminal sequence of the ferredoxin. The nucleotide sequence of a 1.3-kb segment encompassing fdxA indicates that the corresponding protein, SeFdI, is 105 amino acids long, and very similar to other 7Fe ferredoxins. A partial open reading frame closely linked to fdxA was also detected. Disruption of fdxA was attempted by replacing the wild-type allele with an in vitro mutated copy. The failure to construct an fdxA mutant strain suggests that fdxA lies in an essential region of the S. erythraea chromosome.

Amino Acid Sequence

Cloning of genes involved in erythromycin biosynthesis from Saccharopolyspora erythraea using a novel actinomycete-Escherichia coli cosmid.

Two plasmids were constructed that replicate in Saccharopolyspora (Sac.) erythraea, Escherichia coli and Streptomyces (S.) lividans, and used for the cloning of a locus involved in the synthesis of the macrolide antibiotic erythromycin (Er). Plasmid pAL7002 contains the thiostrepton-resistance gene (tsr), a replicon-containing fragment from pJVI and pUC9. Plasmid pNJI contains the lambda cos site but is otherwise similar to pAL7002. A library of total DNA from Sac. erythraea was constructed in pNJI and probed in colony hybridizations with a DNA fragment containing ermE, the Sac. erythraea ErR-encoding gene. Plasmids obtained were subsequently introduced into EryA mutants of Sac. erythraea blocked in synthesis of Er (Ery-) and transformants were screened for restoration of Er production (Ery+). Several plasmids were found to convert two mutants to Ery+, but a third EryA strain could not be restored to Ery+ by any of the plasmids employed. A 5-kb segment, designated eryAI, responsible for restoring the Ery+ phenotype in the EryA strains, was identified and mapped in the segment 12 to 17 kb downstream from ermE. Gene disruption experiments indicated that the 5-kb length of eryAI is fully internal to an eryAI-containing transcript. In Southern blots it was shown that one of the EryA strains carried a small deletion in eryAI and that, in at least some of the transformants restored to Ery+, the deletion had been replaced by the wild-type eryAI allele.(ABSTRACT TRUNCATED AT 250 WORDS)

Actinomycetaceae

Disruption of a rhodaneselike gene results in cysteine auxotrophy in Saccharopolyspora erythraea.

A 3,373-base-pair DNA segment from a clone fortuitously isolated from Saccharopolyspora erythraea by hybridization to an oligodeoxynucleotide probe was sequenced. Computer-assisted analysis of the nucleotide sequence reveals three closely linked Streptomyces open reading frames plus a fourth converging on the others. The deduced product of one of them, ORF2, shows considerable similarity to bovine liver rhodanese. orf2, and the closely linked orf3 located just downstream of it, were disrupted by insertion of an apramycin resistance cassette into the orf2 coding sequence along with inversion of the fragment carrying most of orf2 and orf3 via two successive recombinational events in the wild-type strain. The mutant strain thus created contains wild-type levels of rhodanese activity but cannot grow on minimal medium. It is a cysteine auxotroph, capable of utilizing efficiently only thiosulfate among the inorganic sulfur sources tested. orf2 has been designated cysA. The possible role of the rhodaneselike cysA gene product in thiosulfate formation is discussed.

Base Sequence

Cloning of genes governing the deoxysugar portion of the erythromycin biosynthesis pathway in Saccharopolyspora erythraea (Streptomyces erythreus).

Genes that govern the formation of deoxysugars or their attachment to erythronolide B and 3 alpha-mycarosyl erythronolide B, intermediates of the biosynthesis of the 14-membered macrolide antibiotic erythromycin, were cloned from Saccharopolyspora erythraea (formerly Streptomyces erythreus). Segments of DNA that complement the eryB25, eryB26, eryB46, eryC1-60, and eryD24 mutations blocking the formation of erythronolide B or 3 alpha-mycarosyl erythronolide B, when cloned in Escherichia coli-Streptomyces shuttle cosmids or plasmid vectors that can transform S. erythraea, were located in a ca. 18-kilobase-pair region upstream of the erythromycin resistance (ermE) gene. The eryC1 gene lies just to the 5' side of ermE, and one (or possibly two) eryB gene is approximately 12 kilobase pairs farther upstream. Another eryB gene may be in the same region, while an additional eryB mutation appears to be located elsewhere. The eryD gene lies between the eryB and eryC1 genes and may regulate their function on the basis of the phenotype of an EryD- mutant.

Cloning, Molecular