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[Study of Erwinia carotovora phage resistance with the use of temperate bacteriophage ZF40].

The causes of the unique phage resistance of the pectinolytic phytopathogenic strains of Erwinia carotovora were studied with the use of temperate bacteriophage ZF40. It was shown that, in these bacteria, the bacteriophage-cell interaction can be substantially blocked at the adsorption level. An adequate indicator for studying the temperate bacteriophages of erwinias was developed on the basis of mutants resistant to macromolecular bacteriocins. Various restriction-modification systems, which influence cell resistance to bacteriophages, were revealed for the first time in E. carotovora. The phage resistance was shown to be determined by the wide occurrence of homoimmune temperate viruses in pectinolytic erwinias.

Bacteriocins↗

Polyethylene glycol in the design of tumor-targetting radiolabelled macromolecules -- lessons from liposomes and monoclonal antibodies.

Radiolabelled macromolecules such as liposomes and monoclonal antibodies (Mab) are attractive agents for tumour-targetting studies. In addition to their potential diagnostic role, they can also provide vital information on the targetting capacity of therapeutic agents. Certainly in the case of liposome development, this ability to track the pharmacokinetics and biodistribution of the agents in a non-invasive fashion has assisted the design and application of therapeutic liposomal agents. A significant limitation of unmodified liposomes and Mab is their tendency to be cleared rapidly from the circulation. The use of polyethylene glycol (PEG) in the formulation of these agents has the capacity to alter their biological behaviour in such a way as to improve their ability to target tumours. In this paper we review the data relating to the use of PEG-modified liposomes and Mab in the context of nuclear medicine studies.

Antibodies, Monoclonal↗

Photochemical internalization (PCI)--a novel technology for release of macromolecules from endocytic vesicles.

The utilisation of macromolecules in therapy of cancer and other diseases is becoming increasingly relevant. Recent advances in molecular biology and biotechnology have made it possible to improve targeting and design of cytotoxic agents or DNA complexes for clinical applications. To achieve the expected biological effect of these macromolecules in many cases internalization to the cell cytosol is crucial. A number of different methods for internalization of membrane impermeable molecules has been established, including electroporation, liposome fusion, antibodies/targeting ligands as protein carriers and the utilisation of various types of vectors such as cationic polymers and viruses, for gene therapy. Although new delivery systems have improved the cellular uptake of macromolecules, tissue penetration, cellular uptake and efficient transfer of the molecules into the cytosol of the target cell are still fundamental obstacles. At an intracellular level, the most fundamental obstruction for cytosolic release of the therapeutic molecule is the membrane-barrier of the endocytic vesicles. Photochemical internalization (PCI) is a novel technology for release of endocytosed macromolecules into the cytosol. The technology is based on the use of photosensitizers located in endocytic vesicles that upon activation by light induce a release of macromolecules from their compartmentalization in endocytic vesicles. PCI has been shown to potentiate the biological activity of a large variety of macromolecules and other molecules that do not readily penetrate the plasma membrane, including proteins, peptides, and DNA delivered as a complex with cationic polymers or incorporated in adenovirus. The basis as well as the utilization of this technology will be briefly reviewed in this paper.

Computer Graphics↗

Degradation of cartilage matrix proteoglycan by human neutrophils involves both elastase and cathepsin G.

The granule proteases of human neutrophils are thought to be responsible for the connective tissue destruction associated with certain inflammatory diseases. Using a model system for the degradation of a macromolecular connective tissue substrate, purified neutrophil elastase and cathepsin G were both individually able to degrade cartilage matrix proteoglycan and this degradation was blocked by the appropriate specific inhibitors. Neutrophil granule lysate also produced cartilage matrix degradation but little inhibition of degradation occurred when either elastase or cathepsin G inhibitor was used alone. However, a combination of elastase and cathepsin G inhibitors each at 100 microM or each at 10 microM blocked cartilage matrix degradation by 89% +/- 1 and 65% +/- 9 (mean +/- SEM, n = 3), respectively. The magnitude of the cartilage degradation mediated by neutrophil lysate, and its sensitivity to specific inhibitors, was reproduced using purified elastase and cathepsin G at the concentrations at which they are present in neutrophil lysate. Human neutrophils stimulated with opsonized zymosan degraded cartilage matrix in a dose-dependent manner in the presence of serum antiproteases. Supernatants from stimulated neutrophils cultured in the presence of serum did not degrade cartilage matrix, indicating that neutrophil mediated degradation in the presence of serum was confined to the protected subjacent region between the inflammatory cell and the substratum. A combination of elastase and cathepsin G inhibitors each at 500 microM or each at 100 microM blocked subjacent cartilage matrix degradation by stimulated human neutrophils by 91% +/- 3 and 54% +/- 8 (mean +/- SEM, n = 5), respectively, whereas either the elastase or cathepsin G inhibitor alone was much less effective. These studies demonstrate that neutrophil-mediated cartilage matrix degradation is produced primarily by elastase and cathepsin G. Furthermore, these results support the hypothesis that inflammatory neutrophils form zones of close contact with substratum that exclude serum antiproteases and that this subjacent degradation of cartilage matrix by stimulated neutrophils can be blocked by a combination of synthetic elastase and cathepsin G inhibitors.

Cartilage↗

Extracellular matrix biosynthesis by cultured fetal rat lung epithelial cells. I. Characterization of the clone and the major genetic types of collagen produced.

A new cell line of fetal rat lung origin has been established using the outgrowth procedure. One clone (2G3) isolated by this procedure exhibited during early passages some of the transmission electron microscopic features (e.g., lamellar bodies) indicative of type II pneumocytes and was selected for further study. This cell line has a stable modal chromosome number of 44 and has not been found to develop tumors in athymic rodents. The clone exhibits a biphasic growth curve with an initial generation time of approximately 22 hours at 37 degrees C. The cultures are not contact inhibited but rather develop an organized secondary growth pattern. Initially after subculture, a monolayer is formed consisting of cells which exhibit a cobblestone appearance. After development of this monolayer, a secondary growth pattern emerges. This latter phase of growth is characterized by spindle-shaped cells displaying a pattern of organization that delimits lumina on top of the initial monolayer. At the ultrastructural level, desmosomes are observed, and concurrent with the development of the secondary growth pattern, there is the appearance of dense cytoplasmic structures which resemble lamellar bodies. Based upon the origin, growth properties, and morphologic features of the cells, this clone has been designated fetal rat lung epithelial (FRLE) cells. The collagens secreted into the culture medium and present in the cell layers of FRLE cell cultures, which have developed the secondary growth pattern, were isolated using limited pepsin digestion and differential salt fractionation. Polyacrylamide gel electrophoresis under denaturing conditions indicated that FRLE cells synthesized components corresponding to the chains present in types I, III, IV, and V collagen molecules with no major differences occurring between the profiles of cell-associated and secreted molecules. Carboxymethyl-trisacryl chromatographic analysis revealed that approximately 80% of the collagen synthesized was type I and that approximately 20% of this genetic type of collagen was recovered as the type I homotrimer. Types III, IV, and V molecules accounted for 16, 2, and 3%, respectively, of the total collagen synthesized. Additionally, the type V collagen synthesized by FRLE cells was found to have the molecular compositions alpha 1(V) alpha 2(V) alpha 3(V) and [alpha 1(V)]3. These observations suggest that the collagen biosynthetic profile of the fetal or immature type II cell may differ from that of the fully differentiated type II pneumocyte. Furthermore, it is proposed that cultured FRLE cells may be a useful in vitro model system for investigating the regulation of macromolecular synthesis in and the differentiation and maturation of the fetal alveolar epithelial cell.

Animals↗

Iron-molybdenum cofactor insertion into the Apo-MoFe protein of nitrogenase involves the iron protein-MgATP complex.

Nitrogenase is composed of two component proteins, the iron protein (Fe protein) and the molybdenum-iron protein (MoFe protein). The Fe protein is a Mr 60,000 dimer of identical subunits with one bridging [4Fe-4S] center. It serves as a one-electron donor to the MoFe protein in a reaction that is coupled to MgATP hydrolysis. The MoFe protein is an alpha 2 beta 2 tetramer of Mr 220,000 which contains four [4Fe-4S] clusters and two iron-molybdenum cofactor (FeMo cofactor) centers. The exact structure of FeMo cofactor is not known, but it is believed to form the active site of the enzyme. Using specifically constructed deletion mutants of Azotobacter vinelandii, we have previously shown that the Fe protein, but not the MoFe protein, is required for FeMo cofactor biosynthesis (Robinson, A. C., Dean, D. R., and Burgess, B. K. (1987) J. Biol. Chem. 262, 14327-14332). During the partial purification of a FeMo cofactor-deficient form of the MoFe protein from one of these mutants (DJ54, delta nifH), we have discovered that, in addition to biosynthesis, the Fe protein-MgATP complex is involved in FeMo cofactor insertion into the MoFe protein. This insertion process is also sensitive to a number of other parameters (e.g. salt, pH, temperature, protein concentration). Based on our experimental data, we present a model for how this insertion reaction might take place, in which the Fe protein-MgATP complex binds the FeMo cofactor-deficient form of the MoFe protein and stabilizes a specific conformation of the MoFe protein that has the FeMo cofactor binding site exposed and available for coordination by preformed FeMo cofactor.

Adenosine Triphosphate↗

Identification and characterization of two functional domains in cytochrome P-450BM-3, a catalytically self-sufficient monooxygenase induced by barbiturates in Bacillus megaterium.

In a previous publication (Narhi, L. O. and Fulco, A. J. (1986) J. Biol. Chem. 261, 7160-7169) we described the characterization of a soluble 119,000-dalton P-450 cytochrome (P-450BM-3) that was induced by barbiturates in Bacillus megaterium. This single polypeptide contained 1 mol each of FAD and FMN/mol of heme and, in the presence of NADPH and O2, catalyzed the oxygenation of long-chain fatty acids without the aid of any other protein. We have now utilized limited trypsin proteolysis in the presence of substrate to cleave P-450BM-3 into two polypeptides (domains) of about 66,000 and 55,000 daltons. The 66-kDa domain contains both FAD and FMN but no heme, reduces cytochrome c in the presence of NADPH, and is derived from the C-terminal portion of P-450BM-3. The 55-kDa domain is actually a mixture of three discrete peptides (T-I, T-II, and T-III) separable by high performance liquid chromatography. All three contain heme and show a P-450 absorption peak in the presence of CO and dithionite. The major component, T-I (Mr = 55 kDa), binds fatty acid substrate and has an N-terminal amino acid sequence identical to that of intact P-450BM-3, an indication that this domain constitutes the N-terminal portion of the 119-kDa protein. T-II (54 kDa) is the same as T-I except that it is missing the first nine N-terminal amino acids and does not bind substrate. T-III (Mr = 53.5 kDa) has lost the first 15 N-terminal residues and does not bind substrate. Since trypsin digestion of P-450BM-3 carried out in the absence of substrate yields T-II and T-III but no T-I, it appears that 1 or more residues of the first nine N-terminal amino acids of this protein are intimately involved in substrate binding. Although both the heme- and flavin-containing tryptic peptides retain their original half-reactions, fatty acid monooxygenase activity cannot be reconstituted after proteolysis, and the two domains, once separated, show no affinity for each other. In most respects, the reductase domain of P-450BM-3 more closely resembles the mammalian microsomal P-450 reductases than it does any known bacterial protein.

Amino Acid Sequence↗

Enhanced lymphatic delivery of mitomycin C conjugated with dextran.

Absorption and lymphatic transfer of a polymeric prodrug of mitomycin C (MMC), mitomycin C-dextran conjugate (MMC-D), following i.m. injection were studied in rats in order to assess the feasibility of a macromolecular prodrug as a lymphotropic delivery system. Three types of MMC-D, conjugates with dextran with molecular weights of 10,000, 70,000 and 500,000, were synthesized, and the disposition of MMC was determined by bioassay. Following i.m. injection of MMC-D, MMC was retained at the injection site for a long period in a conjugated form while MMC administered as a free form disappeared rapidly. The disappearance was markedly influenced by the size of carrier dextran, because the remaining amount of MMC increased with an increase of molecular size. The lymphatic uptake of the drug was evaluated by determining the concentration in the regional lymph nodes and thoracic lymph fluid. In contrast to a slight lymphatic uptake following i.v. and i.m. injection of free MMC, MMC-D exhibited remarkable accumulation in the regional lymph nodes after i.m. injection which persisted up to 48 hr. MMC-D (Mr 10,000) appeared in the thoracic lymph as both the conjugated and the free form. Larger MMC-D gave a persistent supply of free MMC in thoracic lymph, suggesting that it was accumulated in the lymph node and supplying MMC continuously. These MMC-Ds suppressed the lymph node metastases introduced by a s.c. inoculation of L1210 leukemia cells. The usefulness of MMC-D as a lymphotropic delivery system for preventing lymphatic metastasis of cancer was suggested.

Animals↗

Effect of a zwitterionic detergent on the state of aggregation and catalytic activity of cytochrome P-450LM2 and NADPH-cytochrome P-450 reductase.

The zwitterionic detergent 3-(3-cholamidopropyl)-dimethylammonio-1-propanesulfonate (CHAPS) supports reconstituted cyclohexane hydroxylase activity of cytochrome P-450LM2 and NADPH-cytochrome reductase purified from phenobarbital-induced rabbit liver. Maximum activity (approximately 50% of that with phospholipid) was observed at 2 mM CHAPS. Inhibition took place at higher CHAPS, until at 20 mM CHAPS, no cyclohexane hydroxylase activity was observed. There was little denaturation of the two enzymes under these conditions. At 2 mM CHAPS, P-450LM2 was pentameric (Mr = 250,000) and reductase was dimeric (Mr = 139,500) by sedimentation equilibrium. P-450 was monomeric in 20 mM CHAPS. In addition, a stable complex between the two enzymes was not detected under conditions of maximum activity, even in the presence of saturating substrate. This confirms our previous conclusion that a stable complex between cytochrome P-450LM2 and NADPH-cytochrome P-450 reductase is not a prerequisite for reconstituted xenobiotic hydroxylation (Dean, W. L., and Gray, R. D. (1982) J. Biol. Chem. 257, 14679-14685). Difference spectra of ferric P-450LM2 revealed that below 5 mM CHAPS, the high spin form of the cytochrome was slightly stabilized, while higher CHAPS levels stabilized the low spin form. Monomeric P-450LM2 formed with 20 mM CHAPS catalyzed the hydroxylation of toluene by cumene hydroperoxide. Thus, the reason that monomeric cytochrome P-450LM2 was inactive in NADPH-supported hydroxylation may either be because the bound detergent blocked productive interaction of the cytochrome with reductase or the monomer may be intrinsically incapable of interaction with reductase.

Animals↗

Multiple forms of cytochrome P-450 in liver microsomes from beta-naphthoflavone-pretreated rats. Separation, purification, and characterization of five forms.

Five forms of cytochrome P-450 have been purified from liver microsomes of beta-naphthoflavone-pretreated rats by chromatography on DEAE-Sephadex, DEAE-cellulose, and hydroxylapatite or CM-Sepharose columns. Over 50% of the starting cytochrome P-450 content can be accounted for in these five forms after resolution on the DEAE-cellulose column, and after further purification, the combined total recovery is 30%. The five forms have the following Mr: 47,000, 50,500, 51,500, 53,500, and 56,500. The absorption maxima in reduced carbon monoxide difference spectra are 452.5, 449, 449, 447.5, and 447.5 nm, respectively. Antibody has been prepared in rabbits to each of the five forms; each antibody reacts with the antigen for which it was prepared, but not with the other four heterologous antigens. In addition, each form gives a unique peptide map pattern when partially digested with Staphylococcus aureus V-8 protease and electrophoresed in sodium dodecyl sulfate gels. Each form also shows an individual pattern of catalytic activities when tested with benzphetamine, ethylmorphine, p-nitroanisole, benzo[alpha]pyrene, and 7-ethoxycoumarin as substrates. By all criteria examined, these five forms appear to be distinct forms of cytochrome P-450.

Animals↗

[Interacting between amyloid P and connective tissue proteins ].

In order to look for the position of amyloid P in the macromolecular connective tissue and extracellular matrix system, we performed binding studies involving affinity chromatography. Binding studies revealed the strong binding of fibronectin to amyloid P (S-AP). The fibronectin-amyloid P linkage was dissociated after elution with 2 M urea. Heparan sulfate, a major glycosaminoglycan of the extracellular matrix, showed strong binding to S-AP, which was dissociated at 3 M urea. Laminin, collagen type I and type IV, reduced and alkylated glomerular basement membranes as well as the glycosamino-glycans hyaluronic acid and chondroitin-4-sulfate failed to bind to S-AP. Our binding studies show that amyloid P can react strongly with extra cellular matrix proteins and can help to explain the presence of amyloid P in normal connective tissue.

Amyloid↗

Relationship between state of aggregation and catalytic activity for cytochrome P-450LM2 and NADPH-cytochrome P-450 reductase.

The detergent 1-O-n-octyl-beta-D-glucopyranoside (octylglucoside) was found to replace the phospholipid requirement in the demethylation of benzphetamine by cytochrome P-450LM2 and NADPH-cytochrome P-450 reductase purified from phenobarbital-treated rabbit liver. At low enzyme concentration (0.1 microM) in the absence of glycerol and phosphate, the maximum rate of benzphetamine-specific NADPH oxidation was approximately 35% of that observed in the presence of dilauroylglyceryl-3-phosphoryl choline. At higher enzyme concentration (2.5 microM) and in the presence of 0.15 M phosphate, 20% glycerol, octylglucoside was as effective as phospholipid in stimulating the production of formaldehyde from benzphetamine. The detergent concentration required for maximal enzymatic activity was 2.5-4.0 g/liter, depending on the cytochrome preparation used. At higher octylglucoside concentrations (5-7 g/liter), activity decreased to zero, although neither enzyme appeared to be irreversibly denatured at these detergent concentrations. Sedimentation equilibrium experiments with P-450LM2 alone or in the presence of equimolar reductase showed that increasing octylglucoside levels promoted disaggregation of the cytochrome. Pentamers and hexamers predominated at detergent concentrations where maximal activity was observed, while higher levels of detergent where activity was absent produced cytochrome dimers and, ultimately, monomers. The reductase was monomeric at detergent levels between at least 3 and 7 g/liter. Moreover, both gel filtration and sedimentation equilibrium experiments demonstrated that a stable complex between P-450LM2 and its reductase was not formed at octylglucoside concentrations where high activity was evident. These results are consistent with a model of P-450/reductase interaction in which functional aggregates of three to six cytochrome polypeptides move laterally in the microsomal membrane and interact with the reductase by random collision.

Animals↗

Phycobiliprotein synthesis in the unicellular rhodophyte, Cyanidium caldarium. Cell-free translation of the mRNAs for the alpha and beta subunit polypeptides of phycocyanin.

Phycobiliproteins are a class of abundant light-harvesting proteins assembled in complex multimeric aggregates located on thylakoid membranes of red algae and cyanobacteria. This study was undertaken to investigate the molecular basis of phycobiliprotein synthesis in the unicellular red alga, Cyanidium caldarium. RNA was isolated and separated into poly(A)-enriched and poly(A)-deficient fractions by oligo(dT)-cellulose chromatography. Both fractions stimulated incorporation of radiolabeled amino acids into protein in a reticulocyte lysate translation system. The alpha and beta subunit polypeptides of phycocyanin were among the products of poly(A)-deficient (but not poly(A)-enriched) RNA directed translation reactions on the basis of Mr and immunological cross-reactivity with immune serum prepared against native phycocyanin. After chromatography of post-oligo(dT)-cellulose poly(A)-deficient RNA on poly(U) agarose, the messenger RNAs for the alpha and beta subunit polypeptides of phycocyanin were again recovered in the poly(A)-deficient fraction, confirming that these messenger RNAs did not appear to be polyadenylated. Automated radiosequencing of in vitro synthesized alpha and beta subunit polypeptides of phycocyanin labeled with either [35S]methionine, [3H]isoleucine, or [3H]phenylalanine revealed partial amino acid sequences which were the same as the NH2-terminal sequences of native phycocyanin subunits. This demonstrates that a "transit peptide", such as that found in several proteins made in the cytosol and transported into chloroplasts, is not present on the subunits of phycocyanin.

Animals↗

Synthesis of bovine lutropin in cell-free lysates containing pituitary microsomes.

Bovine pituitary rough microsomes were used to determine the ratio of newly synthesized lutropin (LH) alpha and beta subunits in different physiological states of animals. Proteins synthesized by microsomal runoff are derived from preinitiated mRNAs and thus, in the present case, should reflect the initial intracellular steady state levels of the subunits. The products were identified by immunoprecipitation using bovine LH subunit specific antisera and analyzed by electrophoresis on sodium dodecyl sulfate-polyacrylamide gels. Microsomes isolated from castrated animals (steers) synthesized comparable amounts of LH alpha- and LH beta-subunits as determined by quantitation of the immunoprecipitated products. However, microsomes from intact animals (bulls) directed the synthesis of 3-5 times more alpha than LH beta. A comparison of the levels of alpha- and LH beta-subunits synthesized by an equivalent concentration of bull and steer pituitary microsomes indicates that the increased ratio of alpha to LH beta in bull pituitary microsomes is the result of a preferential decrease in the synthesis of the LH beta subunit. The results suggest that the rate of beta subunit synthesis determines the level of intact LH produced.

Animals↗

[Experimental model of impaired gastrointestinal macromolecular permeability].

Gastrointestinal macromolecular permeability for polyethylene glycol (PEG)-4000 was studied in Wistar rats with resected distal portion of the small intestine, experimental colitis induced by chemical toxicant (acetic acid) and in rats receiving oral ethyl alcohol. Gastrointestinal permeability in animals with resection transiently increased during the first two weeks after operation and returned to normal thereafter. Colitis induction resulted in marked (2.5-fold) growth of permeability for PEG-4000 on day 7 and in a less significant increase on day 21. In animals exposed to ethyl alcohol no changes in macromolecular permeability were noted for PEG-4000 and food protein (chick's egg albumin). It is concluded that the model of colitis induced by chemical toxicants is most suitable among the models tested for experimental research on dietetic correction of altered macromolecular permeability.

Animals↗

Protein conformation and disease.

In a number of neurodegenerative diseases, a change in the conformation of specific proteins occurs which is considered to be related to the development of the disease process. In general, a change in the protein conformation from a predominantly alpha-helical to a predominantly beta-sheet structure, due to genetic or environmental factors, leads to oligomerization of the proteins. In Alzheimer's and prion diseases, insoluble precipitates or plaques are often observed in vivo as a consequence of beta-fibril formation due to the polymerization of the proteins. In certain other neurodegenerative diseases, for example in Huntington disease, the beta-sheet oligomers may interact differently with other functional proteins compared to the monomeric proteins inducing the disease. Biophysical studies would provide information regarding the forces responsible for the oligomerization of these proteins and hence provide methods for detecting these diseases, leading eventually to therapeutic approaches.

Alzheimer Disease↗