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Superinfections in herpes simplex keratitis.

We reviewed 15 cases of culture-proven corneal superinfections in 15 patients (eight men and seven women ranging in age from 41 to 86 years) with recurrent herpes simplex keratitis. The factors that appeared to increase the risk of superinfection were the presence of an epithelial defect (found in all 15 cases), a history of recurrent herpetic keratouveitis (found in ten cases), and the use of topical corticosteroids (found in 13 cases). Eight of the 15 patients were taking antibiotics at the time the superinfections were diagnosed, indicating that topical antibiotics do not provide sufficient protection. Gram-negative rods were found in six cases (Proteus mirabilis, Pseudomonas aeruginosa, Serratia marcescens, Klebsiella oxytoca, Enterobacter cloacae, and Achromobacter sp.). Gram-positive organisms, often in association with another infecting agent, were found in six cases (Staphylococcus epidermidis, three cases; S. aureus, two cases; and Streptococcus sp., two cases). Fungal superinfections were found in three cases (Cephalosporium acremonium, Candida albicans, and Aspergillus fumigatus, one case each). Mycobacterium cheloni was found in two cases.

Administration, Topical↗

Microbial transformation of hydrocortisone by Acremonium strictum PTCC 5282.

The ability of a genus of cephalosporium-like fungus isolated from soil, Acremonium strictum PTCC 5282, for hydrocortisone biotransformation has been investigated. This potential had not been previously examined. The fermentation yielded 11beta,17beta-dihydroxyandrost-4-en-3-one, 11beta,17alpha,20beta,21-tetrahydroxypregn-4-en-3-one and 21-acetoxy-11beta,17alpha,20-trihydroxypregn-4-en-3-one. Each microbial metabolite was purified and characterized using spectroscopic methods.

Acremonium↗

Determination of beta-lactams and their biosynthetic intermediates in fermentation media by pre-column derivatisation followed by fluorescence detection.

This paper describes a novel and sensitive pre-column derivatisation method for the detection and quantitation of beta-lactams and their biosynthetic precursors at trace levels in fermentation media. Filtered broths from fermentations of strains of Penicillium chrysogenum and Cephalosporium acremonium, after deproteination and centrifugation, were incubated with 9-fluorenylmethylchloroformate for 5 min at 20 degrees C in 0.2 M borate buffer at pH 7.7. Following two-fold pentane extraction of the reagent hydrolysis product, the aqueous layer was injected directly onto a C18 reversed-phase column, and products were detected spectrofluorimetrically with excitation and emission wavelengths of 260 and 313 nm, respectively. Detection limits of 0.01 and 0.05 micrograms ml-1 were achieved for both 6-aminopenicillanic acid (6-APA) and isopenicillin N in borate buffer and filtered fermentation broths, respectively, using a 10-microliter injection volume. A linear calibration for 6-APA in fermentation broth was obtained for a very wide concentration range (0.05-100 micrograms ml-1). Detection limits for solutions of cephalosporin C, deacetylcephalosporin C and deacetoxycephalosporin C in broth were all 0.25 micrograms ml-1. The detection limit for the beta-lactam precursor delta-(L-aminoadipyl)-L-alpha-cysteinyl-D-valine (ACV) dimer in borate buffer was 0.5 microgram ml-1. The cephalosporins and ACV dimer gave linear plots in the ranges 3-25 and 1-100 micrograms ml-1, respectively. Repeated analysis of 6-APA at a concentration of 10 micrograms ml-1 in filtered broth gave a mean peak area of 2.5.10(6) with a standard deviation of 2.6.10(5) using a 10-microliter injection volume. Ampicillin spiked into deproteinated blood serum gave a linear calibration in the concentration range 2-100 micrograms ml-1.

Acremonium↗

X-ray absorption studies of the ferrous active site of isopenicillin N synthase and related model complexes.

Isopenicillin N synthase (IPNS) from Cephalosporium acremonium (M(r) 38,400) is an iron-containing enzyme that aerobically catalyzes the four-electron oxidative ring closure reactions of delta-(L-alpha-aminoadipoyl)-L-cysteinyl-D-valine (ACV), forming the beta-lactam and thiazolidine rings of isopenicillin N. Here, we report Fe K-edge X-ray absorption studies that provide insight into the iron coordination environment and the effect of substrate and nitric oxide binding. Our analysis reveals an iron(II) coordination environment consisting of two N/O-containing ligands at 2.01 +/- 0.02 A, three N/O ligands at 2.15 +/- 0.02 A, and one C/O scatterer at approximately 2.6-2.7 A. Three His ligands are associated with the 2.15-A shell, while an unsymmetrically chelated carboxylate is associated with a scatterer at 2.01 and at 2.6-2.7 A, a combination which is consistent with the ligand environment deduced from 1H NMR studies [Ming, L.-J., Que, L., Jr., Kriauciunas, A., Frolik, C. A., & Chen, V. J. (1991) Biochemistry 30, 11653-11659]. The remaining scatterer at 2.01 A is assigned to a coordinated solvent molecule, most likely hydroxide, which can act as the proton acceptor for the incoming substrate. ACV binding to Fe(II)IPNS evinces an Fe-S interaction at 2.35 +/- 0.02 A, indicative of the coordination of substrate cysteine thiolate to the metal center. Analysis of the Fe(II)IPNS-ACV-NO data reveals one Fe-N at 1.71 +/- 0.02 A, three Fe-(N,O) at 2.04 +/- 0.02 A, one Fe-S at 2.32 +/- 0.02 A, and one Fe-(C,O) at 2.61 +/- 0.02 A, the short Fe-N bond being derived from the binding of NO. Our EXAFS conclusions, supported by corresponding analysis of relevant model complexes, corroborate and refine the working model for the Fe(II) coordination environment developed from previous spectroscopic studies.

Absorptiometry, Photon↗

Electron spin echo envelope modulation studies of the Cu(II)-substituted derivative of isopenicillin N synthase: a structural and spectroscopic model.

Electron spin echo envelope modulation spectroscopy (ESEEM) was used to study the active site structure of isopenicillin N synthase (IPNS) from Cephalosporium acremonium with Cu(II) as a spectroscopic probe. Fourier transform of the stimulated electron spin-echo envelope for the Cu(II)-substituted enzyme, Cu(II)IPNS, revealed two nearly magnetically equivalent, equatorially coordinated His imidazoles. The superhyperfine coupling constant, Aiso, for the remote 14N of each imidazole was 1.65 MHz. The binding of substrate to the enzyme altered the magnetic coupling so that Aiso is 1.30 MHz for one nitrogen and 2.16 MHz for the other. From a comparison of the ESEEM of Cu(II)IPNS in D2O and H2O, it is suggested that water is a ligand of Cu(II) and this is displaced upon the addition of substrate.

Acremonium↗

X-ray absorption spectroscopic studies of the high-spin iron(II) active site of isopenicillin N synthase: evidence for Fe-S interaction in the enzyme-substrate complex.

Isopenicillin N synthase from Cephalosporium acremonium (IPNS; M(r) 38.4K) is an Fe(2+)-requiring enzyme which catalyzes the oxidative conversion of (L-alpha-amino-delta-adipoyl)-L-cysteinyl-D-valine (ACV) to isopenicillin N, with concomitant reduction of O2 to 2H2O. Chemical and spectroscopic data have suggested that catalysis proceeds via an enzyme complex of ACV bound to the iron through its cysteinyl thiolate [Baldwin, J. E., & Abraham, E. P. (1988) Nat. Prod. Rep. 5, 129-145; Chen, V. J., Orville, A. M., Harpel, M. R., Frolik, C. A., Surerus, K. K., Münck, E., & Lipscomb, J. D. (1989) J. Biol. Chem. 264, 21677-21681; Ming, L.-J., Que, L., Jr., Kriauciunas, A., Frolik, C. A., & Chen, V. J. (1991) Biochemistry 30, 11653-11659]. Here we have employed the technique of Fe K-edge extended X-ray absorption fine structure (EXAFS) to characterize the iron site and to seek direct evidence for or against the formation of an Fe-S interaction upon ACV binding. Our data collected in the absence of substrate and O2 are consistent with the iron center of IPNS being coordinated by only (N,O)-containing ligands in an approximately octahedral arrangement and with an average Fe-(N,O) distance of 2.15 +/- 0.02 A. Upon anaerobic binding of ACV, the iron coordination environment changes considerably, and the associated Fe EXAFS cannot be adequately simulated without incorporating an Fe-S interaction at 2.34 +/- 0.02 A along with four or five Fe-(N,O) interactions at 2.15 +/- 0.02 A.(ABSTRACT TRUNCATED AT 250 WORDS)

Acremonium↗

Thiolate ligation of the active site Fe2+ of isopenicillin N synthase derives from substrate rather than endogenous cysteine: spectroscopic studies of site-specific Cys----Ser mutated enzymes.

Isopenicillin N synthase (IPNS) catalyzes double ring closure of the tripeptide (L-alpha-amino-delta-adipoyl)-L-cysteinyl-D-valine (ACV) to form the beta-lactam and thiazolidine rings of penicillin-type antibiotics. Our previous spectroscopic study using IPNS from Cephalosporium acremonium expressed in Escherichia coli [Chen, V. J., Orville, A. M., Harpel, M. R., Frolik, C. A., Surerus, K. K., Münck, E., & Lipscomb, J. D. (1989) J. Biol. Chem. 264, 21677-21681] indicated that a thiolate enters the coordination of the essential active site Fe2+ when ACV binds to IPNS. The presence of an Fe-S bond in the IPNS.ACV complex is confirmed by EXAFS data presented in the preceding paper [Scott, R. A., Wang, S., Eidsness, M. K., Kriauciunas, A., Frolik, C. A. & Chen, V. J. (1992) Biochemistry (preceding paper in this issue)]. However, these studies leave unclear whether the coordinating thiolate derives from ACV or an endogenous cysteine. Here, we examine the spectroscopic properties of three genetically engineered variants of IPNS in which the only two endogenous cysteines are individually and collectively replaced by serine. The EPR, Mössbauer, and optical spectra of the mutant enzymes and their complexes with ACV, NO, or both ACV and NO are found to be essentially the same as those of wild-type IPNS, showing that the endogenous cysteines are not Fe2+ ligands in any of these complexes. Spectral quantitations show that the double Cys----Ser mutation decreases the affinity of the enzyme for ACV by about 6-fold, suggesting that the endogenous cysteines influence the structure of the substrate binding pocket remote from the iron. Thiolate complexation of the Fe2+ is also examined using ACV analogues. All ACV analogues examined in which the cysteinyl thiol moiety is unaltered are found to bind to the IPNS.NO complex to give optical and EPR spectra very similar to those of the ACV complex. In contrast, analogues in which the cysteinyl moiety of ACV is replaced with serine or cysteic acid fail to elicit the characteristic EPR and optical features despite the fact that they are bound with reasonable affinity to the enzyme. These results demonstrate that the thiolate of ACV coordinates the Fe2+. The EPR spectra of both the IPNS.NO and IPNS.ACV.NO complexes are broadened for samples prepared in 17O-enriched water, showing that water (or hydroxide) is also an iron ligand in each case. Thus, the Fe2+ coordination of the IPNS.ACV.NO complex accommodates at least three exogenous ligands.(ABSTRACT TRUNCATED AT 400 WORDS)

Acremonium↗

Substrate specificity of isopenicillin N synthase.

Highly purified isopenicillin N synthase (IPNS) from two sources (naturally occurring in Penicillium chrysogenum and that expressed in Escherichia coli via a cloned gene derived from Cephalosporium acremonium) have been isolated and utilized in vitro to test synthetic modifications of the natural substrate, (L-alpha-amino-delta-adipyl)-L-cysteinyl-D-valine (ACV). A very sensitive procedure utilizing the ability of beta-lactams to induce the synthesis of beta-lactamase was employed to determine whether an ACV analogue could serve as a substrate for IPNS. A wide variety of amino and carboxyl terminal tripeptide substitutions were examined and found to elicit positive beta-lactamase induction profiles. However, none of these modifications were found to function as efficiently as a substrate as ACV. One of the beta-lactam products which was formed from the reaction of IPNS and the tripeptide analogue was independently synthesized and evaluated for antibacterial activity. Modification of the L-cysteine residue in the second position of ACV resulted in tripeptides that were unable to serve as substrates. Conversion of the D-valine residue in the third position of ACV to an aromatic amino acid or to a highly electronegative residue such as trifluorovaline resulted in elimination of substrate activity and creation of an inhibitor of the enzyme.

Amino Acid Sequence↗

Microbial transformations of hypolipemic E-guggulsterone.

Biotransformation of E-guggulsterone (pregna-4,17(20)-cis-diene-3,16-dione) (1) by Aspergillus niger resulted in the formation of four new hydroxyl derivatives identified as 7 beta-hydroxypregna- 4,17(20)-trans-diene-3,16-dione (2), 7 beta-hydroxypregna-4,17(20)-cis-diene-3,16-dione (3), 7 beta- hydroxypregn-4-ene-3,16-dione (4), and 7 beta,15 beta-dihydroxypregn-4-ene-3,16-dione (5). The biotransformation of 1 with Cephalosporium aphidicola also resulted in the formation of four new steroidal derivatives as 11 alpha-hydroxypregna-4,17(20)-trans-diene-3,16-dione (6), 11 alpha- -hydroxypregna-4,17(20)-cis-diene-3,16-dione (7), 11 alpha,15 beta-dihydroxypregna-4,17(20)-trans-diene- 3,16-dione (8), and 11 alpha,15 beta-dihydroxypregna-4,17(20)-cis-diene-3,16-dione (9). The structures of these compounds were elucidated on the basis of 1D and 2D NMR spectroscopic techniques.

Anti-Bacterial Agents↗

Fungal transformation of (1R,2S,5R)-(-)-menthol by cephalosporiumaphidicola

Incubation of (1R,2S,5R)-(-)-menthol (1) with Cephalosporium aphidicola for 12 days yielded the six oxidized metabolites: 10-acetoxymenthol (2), 7-hydroxymenthol (3), 4alpha-hydroxymenthol (4), 3alpha-hydroxymenthol (5), 9-hydroxymenthol (6), and 10-hydroxymenthol (7). The structures of the novel compounds 2, 4, 5, and 7 were assigned by interpretation of their spectral data.

Journal Article↗

Transcriptional control of expression of fungal beta-lactam biosynthesis genes.

The most commonly used beta-lactam antibiotics for the therapy of infectious diseases are penicillin and cephalosporin. Penicillin is produced as end product by some fungi most notably by Aspergillus (Emericella) nidulans and Penicillium chrysogenum. Cephalosporins are synthesised by several bacteria and fungi, e.g. by the fungus Acremonium chrysogenum (syn. Cephalosporium acremonium). The biosynthetic pathways leading to both secondary metabolites start from the same three amino acid precursors and have the first two enzymatic reactions in common. The penicillin biosynthesis is catalysed by three enzymes encoded by acvA (pcbAB), ipnA (pcbC) and aatA (penDE). The genes are organised into a cluster. In A. chrysogenum, in addition to acvA and ipnA, which are also clustered, a second cluster contains the genes for enzymes catalysing the reactions of the later steps of the cephalosporin pathway (cefEF, cefG). Transcription of biosynthesis genes is subject to sophisticated control by nutritional factors (e.g. glucose, nitrogen), amino acids such as lysine and methionine, and ambient pH. Some regulators have been identified such as the A. nidulans pH regulatory protein PACC and the transcriptional complex PENR1. PENR1 is a HAP-like transcriptional complex similar or identical to AnCF. Additional positive regulatory factors seem to be represented by recessive trans-acting mutations of A. nidulans (prgA1, prgB1, npeE1) and P. chrysogenum (carried by mutants Npe2 and Npe3). The GATA-binding factor NRE appears to be involved in the regulation of the penicillin biosynthesis genes by the nitrogen source in P. chrysogenum. Formal genetic evidence suggests the existence of transcriptional repressors as well.

Cephalosporins↗

The beta-lactam antibiotics: past, present, and future.

The discovery and development of the beta-lactam antibiotics are among the most powerful and successful achievements of modern science and technology. Since Fleming's accidental discovery of the penicillin-producing mold, seventy years of steady progress has followed, and today the beta-lactam group of compounds are the most successful example of natural product application and chemotherapy. Following on the heels of penicillin production by Penicillium chrysogenum came the discoveries of cephalosporin formation by Cephalosporium acremonium, cephamycin, clavam and carbapenem production by actinomycetes, and monocyclic beta-lactam production by actinomycetes and unicellular bacteria. Each one of these groups has yielded medically-useful products and has contributed to the reduction of pain and suffering of people throughout the world. Research on the microbiology, biochemistry, genetics and chemistry of these compounds have continued up to the present with major contributions being made by both individual and collaborative groups from industry and academia. The discovery of penicillin not only led to the era of the wonder drugs but provided the most important antibiotics available to medicine. Continued efforts have resulted in the improvement of these compounds with respect to potency, breadth of spectrum, activity against resistant pathogens, stability and pharmacokinetic properties. On the research front, major advances are being made on structural and regulatory biosynthetic genes and metabolic engineering of the pathways involved. New semisynthetic compounds especially those designed to combat resistance development are being examined in the clinic, and unusual non-antibiotic activities of these compounds are being pursued. Although seventy years of age, the beta-lactams are not yet ready for retirement.

Actinomycetales↗

Compartmentalization and transport in beta-lactam antibiotic biosynthesis by filamentous fungi.

A proper description of the biosynthesis of fungal beta-lactam antibiotics requires detailed knowledge of the cell biology of the producing organisms. This involves a delineation of the compartmentalization of the biosynthetic pathways, and of the consequential transport steps across the cell-boundary plasma membrane and across organellar membranes. Of the enzymes of the penicillin biosynthetic pathway in Penicillium chrysogenum and Aspergillus nidulans, delta-(L-alpha-aminoadipyl)-L-cysteinyl-D-valine synthetase (ACVS) and isopenicillin N synthase (IPNS) probably have a cytosolic location. Acyl-coenzyme A:isopenicillin N acyltransferase (IAT) is located in microbodies. Of the two enzymes that may be involved in activation of the side chain, acetyl-coenzyme A synthetase (ACS) is located in the cytosol, and phenylacetyl-coenzyme A ligase (PCL) is probably located in the microbody. All enzymes of the cephalosporin biosynthesis pathway in Cephalosporium acremonium probably have a cytosolic location. The vacuole may play an ancillary role in the supply of precursor amino acids, and in the storage of intermediates. The distribution of precursors, intermediates, end- and side-products, the transport of nutrients. precursor, intermediates and products across the plasma membrane, and the transport of small solutes across organellar membranes, is discussed. The relevance of compartmentalization is considered against the background of recent biotechnological innovations of fungal beta-lactam biosynthesis pathways.

Anti-Bacterial Agents↗

Biosynthesis and molecular genetics of cephamycins. Cephamycins produced by actinomycetes.

Cephamycin C is produced in a nine steps pathway by the actinomycetes S. clavuligerus and N. lactamdurans. The genes encoding the biosynthesis enzymes are clustered in both microorganisms as well as in the cephabacin producer Lysobacter lactamgenus, a Gram negative bacterium. The clusters of genes include genes encoding enzymes common to the biosynthesis of penicillin and cephalosporin C by the eukaryotic producers Penicillium chrysogenum and Cephalosporium acremonium and genes for steps specific for the formation of the precursor alpha-aminoadipic acid as well as for the enzymes involved in the late modification of the cephalosporin intermediates of the pathway. Present are also genes for proteins involved in the export and/or resistance to cephamycin C. In S. clavuligerus a gene encoding a regulatory protein controlling the formation of cephamycin C and clavulanic acid is also present in the cluster.

Amino Acid Sequence↗

Molecular cytogenetic characterization of Thinopyrum and wheat-Thinopyrum translocated chromosomes in a wheat-Thinopyrum amphiploid.

The wheat-Thinopyrum amphiploid 'Agrotriticum # 3425' (AT 3425), which is highly resistant to Cephalosporium stripe, was identified to carry seven pairs of Thinopyrum chromosomes, three pairs of wheat-Thinopyrum translocated chromosomes and 18 pairs of wheat chromosomes. Fluorescence genomic in situ hybridization (FGISH), C-banding, sequential C-banding and FGISH, and denaturing polyacrylamide gel electrophoresis (SDS-PAGE) were used to characterize and identify the chromosomes. The Thinopyrum chromosomes in AT 3425 were designated as T1 through T7 based on their C-banding patterns. The FGISH and C-banding patterns of mitotic chromosomes in AT 3425 and meiotic chromosomes in the hybrid between AT 3425 and wheat cultivar 'Chinese Spring' (CS) revealed that wheat chromosomes 1D, 2B and 3D were involved in the three wheat-Thinopyrum chromosome translocations designated as (W-T)1, (W-T)2, and (W-T)3 respectively. The analysis of high-molecular-weight glutenin subunits in single seeds of AT 3425 confirmed the involvement of wheat chromosome 1D in the translocation (W-T)1. The designations 1DSx1DL-1TL, 2BSx2BL-2TL and 3DSx3DL-3TL were suggested for the wheat-Thinopyrum translocated chromosomes (W-T)1, (W-T)2 and (W-T)3 in AT 3425 respectively.

Chromosome Banding↗

Acremonium keratitis in a patient with herpetic neurotrophic corneal disease.

Fungi belonging to the genus Acremonium Link ex Fries 1821 are ubiquitous environmental contaminants and soil saprophytes, but are infrequent pathogens in humans. These filamentous fungi (previously known as Cephalosporium) are an uncommon cause of mycotic keratitis. As in the case of other filamentous fungi, corneal trauma with contaminated matter is the most frequent risk factor for the infection. We report in this paper a case of keratomycosis caused by Acremoniumpotronii, in a patient with a history of herpetic keratitis. Medical treatment with amphotericin B was unsuccessful and the infection eventually resolved with penetrating keratoplasty.

Acremonium↗

Production of cephalosporin intermediates by feeding adipic acid to recombinant Penicillium chrysogenum strains expressing ring expansion activity.

We demonstrate a novel and efficient bioprocess for production of the cephalosporin intermediates, 7-aminocephalosporanic acid (7-ACA) or 7-amino deacetoxycephalosporanic acid (7-ADCA). The Streptomyces clavuligerus expandase gene or the Cephalosporium acremonium expandase-hydroxylase gene, with and without the acetyltransferase gene, were expressed in a penicillin production strain of Penicillium chrysogenum. Growth of these transformants in media containing adipic acid as the side chain precursor resulted in efficient production of cephalosporins having an adipyl side chain, proving that adipyl-6-APA is a substrate for either enzyme in vivo. Strains expressing expandase produced adipyl-7-ADCA, whereas strains expressing expandase-hydroxylase produced both adipyl-7-ADCA and adipyl-7-ADAC (aminodeacetylcephalosporanic acid). Strains expressing expandase-hydroxylase and acetyltransferase produced adipyl-7-ADCA, adipyl-7-ADAC and adipyl-7-ACA. The adipyl side chain of these cephalosporins was easily removed with a Pseudomonas-derived amidase to yield the cephalosporin intermediates.

Acetyltransferases↗

Evolving enzyme technology for pharmaceutical applications: case studies.

The case studies focus on two types of enzyme applications for pharmaceutical development. Demethylmacrocin O-methyltransferase, macrocin O-methyltransferase (both putatively rate-limiting) and tylosin reductase were purified from Streptomyces fradiae, characterized and the genes manipulated for increasing tylosin biosynthesis in S. fradiae. The rate-limiting enzyme, deacetoxycephalosporin C (DAOC) synthase/hydroxylase (expandase/ hydroxylase), was purified from Cephalosporium acremonium, its gene over-expressed, and cephalosporin C biosynthesis improved in C. acremonium. Also, heterologous expression of penicillin N epimerase and DAOC synthase (expandase) genes of Streptomyces clavuligerus in Penicillium chrysogenum permitted DAOC production in the fungal strain. Second, serine hydroxymethyltransferase of Escherichia coli and phthalyl amidase of Xanthobacter agilis were employed in chemo-enzymatic synthesis of carbacephem. Similarly, echinocandin B deacylase of Actinoplanes utahensis was used in the second-type synthesis of the ECB antifungal agent.

Anti-Bacterial Agents↗