3(17)beta-Hydroxysteroid dehydrogenase of Pseudomonas testosteroni. A convenient purification and demonstration of multiple molecular forms.
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Biomedical subjects
Publications and source records attributed to R M Schultz.
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The binding of NAD and NADH to electrophoretically pure 3(17)beta-hydroxysteroid dehydrogenase of Pseudomonas testosteroni was determined by Fluorescence spectroscopy and gel filtration. Four moles of cofactor are bound/mol of tetrameric enzyme; the binding sites are equivalent and independent. The dissociation constants for NAD and NADH are 16 and 0.25 micronM, respectively. As measured by gel filtration in the absence of cofactor, 0.4 mol of estradiol-17 beta is bound/mol of tetrameric enzyme. Data obtained from isotope exchange at equilibrium indicate that the binding of the cofactor to the enzyme is favored over the binding of steroid, although each may bind in the absence of the other. The rates of cofactor dissociation from the ternary complexes are slower than the rates of steroid dissociation; cofactor dissociation is probably the rate-limiting step. Cofactor analogs modified in the pyridine moiety are cosubstrates, whereas modified adenine derivatives are not. The enzyme also utilized as substrate a number of potential steroid affinity labels; no enzyme inactivation by these compounds was observed.
The standard free energy (deltaG degrees), enthalpy (deltaH degrees), and entropy (deltaS degrees) of association for proflavin and D- and L-N-AcTrp have been obtained at pH 7.8 for native alpha-chymotrypsin (Cht) and for forms of Cht in which essential catalytic residues of the active site are modified. The modified Cht forms studied are dehydroalaninyl-195-alpha-Cht and N-methylhistidinyl-57-alpha-Cht. Associations to native Cht (pH 7.8) are characterized by negative deltaH degrees and deltaS degrees values (i.e., for L-AcTrp deltaH degrees = -9.1 kcal/mol and deltaS degrees = -21 eu at T = 25 degreesC). In contrast, we found associations to modified Chts to be characterized by an enthalpy near zero and a positive entropy of association, the values of the deltaH degrees and deltaS degrees for association to the modified Cht forms being similar to those expected for transfer of small aromatic molecules from water to a nonpolar solvent phase. Differences in deltaH degrees and deltaS degrees observed for binding of substrate analogues and inhibitors to modified and native Cht (pH 7.8) are approximately + 10 kcal/mol and +30 eu, respectively. Data from D. D. F. Shiao ((1970), Biochemistry 9, 1083) similarly show differences of comparable magnitude between binding of substrate analogues to active alpha-Cht (pH 7.8) and the His-57 protonated form of alpha-Cht (pH 5.6). The negative deltaH degrees and deltaS degrees values of associations for binding to active alpha-Cht indicate that a substrate-induced conformational change occurs on substrate association with the primary binding site (S1), which does not occur in Ser-195 and His-57 modified Cht. From these differences we infer a linkage between binding of substrate into S1 and the catalytic residues in the nucleophilic subsite (S1-S1'). Our data also show that associations of substrate analogues into potentially productive Michaelis complexes S1 cannot be easily differentiated from associations that are nonproductive (i.e., nonactivated) from their deltaG degrees obsd, but may be differentiated by their respective deltaH degrees obsd and deltaS degrees obsd for association. Accordingly, it is indicated that the probable substrate association-activation process, characterized thermodynamically in this work, occurs in the substrate binding step and leads to lowered free energies of activation in catalytic steps succeeding binding however, the process does not influence the observed strength of substrate binding.
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High resolution two-dimensional electrophoresis has been used to examine the pattern of protein synthesis during meiotic maturation of mouse oocytes in vitro. Fluorograms of [35S]methionine-labeled oocyte proteins have revealed that meiotic progression from dictyate to metaphase II (meiotic maturation) is accompanied by marked changes in the pattern of proteins synthesized by oocytes. Virtually all of the changes observed take place subsequent to the breakdown of the oocyte's germinal vesicle, but are not dependent upon the occurrence of other morphological events, such as spindle formation or polar body emission. These changes in protein synthesis do not take place in oocytes that fail to undergo breakdown of germinal vesicles spontaneously or in oocytes arrested at the germinal vesicle stage by dibutyryl 3':5'-cyclic AMP. These data suggest that mixing of the oocyte's nucleoplasm and cytoplasm may trigger many of the changes in protein synthesis that accompany meiotic maturation of mouse oocytes in vitro.
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Pyran copolymer (NSC 46015) therapy markedly enhanced host resistance to a murine lung carcinoma (M109) implanted s.c. Multiple dose schedules were not significantly better than single doses at increasing lifespan. Although tumor necrosis was much more extensive in the lesions of pyran-treated mice, pyran copolymer was not directly toxic to M109 cells in vitro. A comparative histopathological study revealed an intense histiocytic reaction in the connective tissue surrounding the primary tumor in mice receiving pyran as compared to 0.9% NaCl solution-treated controls. Macrophages were often associated with necrobiotic tumor cells. Morphologically activated macrophages were recovered from pyran-treated animals which potently inhibited DNA synthesis of M109 tumor cells in vitro. This response peaked 6 days after drug treatment and was to a large extent specific for neoplastic cells. Our results from both in vivo and in vitro studies support the concept that pyran enhances host resistance to neoplasia by mobilization and activation of the reticuloendothelial elements of the host's defense.
Treatment of normal BALB/c mice i.p. with a number of adjuvants, including pyran copolymer, the copolymer of polyinosinic and polycytidylic acids, Bacillus Calmette-Guérin, glucan, and dextran sulfate, rendered macrophages nonspecifically cytostatic for syngeneic tumor cells. Macrophage activation was highly dose dependent. The validity of the inhibition of DNA synthesis assay for measuring macrophage-induced cytostasis of target cells was proven by demonstrating a concurrent decrease in RNA synthesis and a reduction in viable tumor cell number. Moreover, conditioned supernatants from pyran-activated macrophages did not significantly decrease [3H]thymidine incorporation by freshly added leukemia cells. Biological or synthetic agents that activated macrophages were generally effective systemic antitumor agents against the M109 lung carcinoma. Drugs that did not activate macrophages, such as typhoid vaccine, tilorone, levamisole, WY-13876, and thymosin, were ineffective in prolonging the life of tumor-bearing mice. Pyran treatment i.p. was the most effective antitumor adjuvant in two separate tumor models, and suppression of tumor growth appeared to be related not only to an increase in macrophage tumoricidal function, but also to a larger influx of macrophages responding at the tumor site.
We find that specific oxidation for the Met-192 residue in delta-chymotrypsin to methionine sulfoxide results in a twofold increase in Km(app) and unchanged kcat in the hydrolysis of N-acetyl mono(amino acid) amide substrates. However, the catalyzed hydrolyses of N-acetyl dipeptide amide substrates by (methionine sulfoxide)-192-delta-chymotrypsin (MS-delta-Cht) shows a four- to fivefold decrease in kcat and unchanged Km(app) with respect to delta-chymotrypsin. Hydrolysis of alpha-casein by MS-delta-Cht shows a similar 4.2-fold decrease in kcat. These results imply that the Met-192 acts differently with substrates that bind only in the primary, S1, binding site (i.e., AcPheNH2) from those that bind to more extended regions of the enzyme active site. In the binding of c+AcPheNH2 and AcTrpNH2, the results support a mechanism in which the Met-192 acts to slow the rate of sustrate dissociation from the Michaelis complex to free substrate and enzyme. This is in agreement with the x-ray crystallographic structure of dioxane inhibited alpha-chymotrypsin (Steitz, T., et al. (1969), J. Mol. Biol. 46, 337). However, this mechanism is not apparent when peptide and protein substrates bind. The decrease in kcat on Met-192 modification of approximately fivefold in the hydrolysis of polypeptide substrates show a small, but significant, catalytic contribution of the Met-192 toward the lowering of the energy of activation polypeptide substrate hydrolysis by chymotrypsin. This may support the crystallographic model of Fersht et al. (Fersht, A., et al. (1973), Biochemistry 12, 2035) in which it is proposed that the Met-192 participates in the distortion of bound polypeptide substrates toward the reaction transition-state configuration and, thus, plays a role in catalysis. However, if this mechanism occurs, the effect is small, only contributing about 1 kcal/mol to the lowering of the reaction activation energy.
In the reduction of 17beta-hydroxy-5alpha-androstan-3-one to the 3beta-alcohol, horse liver alcohol dehydrogenase utilizes the 4-pro-R hydrogen of NADH whereas the 3(17)beta-hydroxysteroid dehydrogenase of Pseudomonas testosteroni utulized the 4-pro-S hydrogen. These observations provide an exception to the rule proposed by Alworth and Bentley that with regard to the paired methylene hydrogens at C-4 of NADH and NADPH "the stereospecificity of a particular reaction is fixed and does not vary with the source of the enzyme preparation". It is also apparent that for these two enzymes, the selection of the side of NADH from which hydride is transferred to substrate cannot in both cases be dictated by the "best fit" of substrate and cofactor.
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The immune response of BALB/c x DBA/2 F1 mice to a transplantable Moloney leukemia virus-induced tumor allograft (MBL-2) was studied to determine the mechanism of pyran copolymer-induced tumor enhancement. The relative levels of humoral, lymphocyte, and macrophage response were followed chronologically by in vitro cytotoxic microassays using 51Cr-labeled target cells. Although pyran increased the titer of humoral cytotoxic antibody, levels of humoral factors capable of abrogating lymphocytoxicity were not enhanced. Furthermore, splenic lymphocyte-mediated cytotoxicity, although slightly diminished in pyran-treated mice, was not significantly affected. Macrophages harvested from allograft-bearing animals exhibited marked tumoricidal activity, which was augmented by pyran treatment. This macrophage-associated activity was specific for MBL-2 cells and not attributable to cytotoxins elaborated into the culture medium. Pyran slightly activated macrophages from nonsensitized mice to become cytotoxic for MBL-2 cells; activation was not T-cell dependent. However, strikingly fewer macrophages infiltrated the allograft in pyran-treated animals as judged by both histopathology and direct measurement. The defect in the migration or deposit of macrophages at the allograft site may have contributed to tumor enhancement.
Human placental estradiol-17beta dehydrogenase is rapidly inactivated upon treatment with 3-bromoacetoxyestrone. Pseudo-first order kinetic data are obtained and inactivation is accompanied by incorporation of 1 mol of 3-acetoxyestrone/mol of subunit (Mr =34,000). Treatment of the inactivated enzyme with (4S)-[4-2H]DPNH results in the formation of covalently bound [17alpha-2H]estradiol-17beta, which can be released by hydrolysis and identified by gas chromatography-mass sepctrometry. When (4R)-[4-2H]DPNH was used, deuterium was not transferred. Thus, the normal stereochemistry of hydridetransfer is preserved for both partners. After treatment with p-mercuribenzoate, affinity-labeled estradiol-17beta dehyrogenase is no longer able to caralyze reduction its covalently bound estrone; in the presence of DPNH and native enzyme, however, reduction occurs, demonstrating that affinity-labeled enzyme can itself serve as subtrate for native estradiol-17beta dehydrogenase. The reversible enzymatic interconversion of covalently bound estrone was demonstrated using a transhydrogenase assay. The ability of an enzyme to catalyze its normal reaction with a covalently bound substrate is termed catalytic competence, and is considered to be a new criterion for affinity labeling.
Sera from eight of 15 patients with colonic carcinoma exhibited demonstrable cytotoxicity against an established cell strain derived from adenocarcinoma of the ileocecum, HCT-8. Sera from 12 of 16 patients with rectal carcinoma were cytotoxic for an established cell strain derived from an adenocarcinoma of the rectum, HRT-18. Patients with colonic carcinoma exhibited serum cytotoxicity against only the colonic target cells, whereas patients with rectal carcinoma gave significant cytotoxicity against both cell strains. This cytotoxicity was shown to be complement-dependent and appeared to be specific for colonic and/or rectal carcinoma cells. Although the cells produced carcinoembryonic antigen (CEA) in vitro, the cytotoxic antibody response in these patients did not appear to be directed against CEA. Serum cytotoxicity was not demonstrated against two other cell strains, HCT-48 and HT-29, derived from adenocarcinomas of the human colon, except for a reaction against a blood-group-related antigen. These cell strains had comparable levels of cell-associated CEA. The routine titration of cytotoxic antibody against these established cell cultures may provide meaningful information on the host's immune response to colorectal neoplasms.
RNAase A irradiated by ultraviolet light at 254 nm shows a linear dependence between loss of activity and destruction of cystine. At least one of the cystine modified forms in irradiated RNAase is catalytically active. Circular dichroism spectra of irradiated RNAase show a marked decrease in ellipticity between 210 nm and 230 nm, an increased ellipticity between 230 nm and 240 nm, and a blue shift of the 210-nm minimum toward 205 nm. These circular dichroism changes indicate a pariial disorganization of the native secondary and tertiary changes with irradiation. The temperature dependency of the circular dichroism shows the irradiated enzyme to be conformationally less stable to thermal perturbation than native RNAase. Differences in the polypeptide conformations of unirradiated RNAase denatured by heat and sodium dodecylsulfate, and irradiated RNAase treated with heat and sodium dodecylsulfate are discussed.
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