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Drug-biomolecule interactions: mechanism of ligand interactions with carbonic anhydrase studied by magnetic resonance relaxation and rapid reaction methods.

Kinetcs of interaction between the metalloenzyme carbonic anhydrase and either monovalent anions or aromatic sulfonamides were examined by three distinct fast reaction techniques: stopped flow, equilibrium perturbation, and magentic resonance relaxation. By correlating spectroscopic data on conformational and ionization equilibria of the complex and free species with the reaction kinetics, a relatively complete description of the mechanism can be presented. A proton-dependent equilibrium between two coordination forms of the free enzyme can be demonstrated spectroscopically. Anions selectively combine with the form predominating at low pH. For a series of carboxylate ligands, formate and substituted acetates, anion association is found to be three orders of magnitude greater than similar ligand substitution processes known in inorganic chemistry. For sulfonamide association, the attacking species are the form of carbonic anhydrase predominating at high pH and the neutral sulfonamide. Combination involving the neutral species is followed by loss of a proton to form the sulfonamido anion in the stabilized complex. This obligate proton transfer offers a probable explanation for the unique specificity of sulfonamides in inhibiting this enzyme. The anionic sulfonamido moiety can be shown to resemble closely a transition intermediate in the catalytic step of substrate hydration.

Acetates

[Possible interaction mechanisms of allele and nonallele genes on the translation level].

Data on mechanisms of the formation of hybrid (heteropolymeric) isozymes are surveyed. Hybrid isozymes are considered to be the result of the interaction of allelic and some non-allelic genes at the translation level. Evidence is provided indicating that the formation of hybrid isozymes is closely related to the translation process of those mRNAs that synthesize allelic genes. It is suggested that the stage necessary for the formation of hybrid isozymes is compartmentalization (joint location) in the cytoplasm of the mRNAs that are synthesized by allelic genes. This suggestion helps to clarify many experimental data on the mechanisms of the formation of hybrid isozymes in various animal and plant species. One of the conclusions derived from this suggestion is that the compartmentalization of mRNAs of allelic genes creates conditions for an equal-probability quantitative manifestation of allelic genes in the phenotype prior to post-translation.

Alleles

Studies on human plasma C1 inactivator-enzyme interactions. I. Mechanisms of interaction with C1s, plasmin, and trypsin.

This study has explored the nature of the molecular events which occur when C1 inactivator, a human plasma inhibitor of the complement, kinin-forming, coagulation, and fibrinolytic enzyme systems, interacts with C1s, plasmin, and trypsin. Purified inhibitor preparations demonstrated two bands, when examined by acrylamide gel electrophoresis in the presence of sodium dodecyl sulfate (SDS). The molecular weights of the major and minor bands were 105,000 and 96,000 daltons, respectively. The minor component appeared to be immunologically and functionally identical to the main C1 inactivator component. Loss of C1s and plasmin functional activity was associated with the formation of a 1:1 molar complex between the inhibitor and each enzyme. These complexes were stable in the presence of SDS and urea. The light chain of both these enzymes provided the binding site for C1 inactivator. Complex formation and enzyme inhibition occurred only with native and not with an inhibitor preparation denatured by acid treatment, thereby demonstrating the importance of conformational factors in the enzyme-inhibitor reaction. Although peptide bond cleavage of the C1 inactivator molecule by C1s was not documented, plasmin was found to degrade the inhibitor with the production of several characteristic derivatives. At least one of these products retained the ability to complex with C1s and plasmin. Trypsin, which failed to form a complex with C1 inactivator, degraded the inhibitor in a limited and sequential manner with the production of nonfunctional derivatives one of which appeared structurally similar to a plasmin-induced product. These studies therefore, provide new information concerning the molecular interactions between C1 inactivator and several of the proteases which it inhibits.

Animals

Mechanism of interaction of avian myeloblastosis virus reverse transcriptase with avian myeloblastosis virus RNA.

The synthesis of DNA on avian myeloblastosis virus (AMV) RNA as the primer-template using AMV reverse transcriptase in vitro has been examined as a function of the concentrations of these components, as well as a function of the ionic strenth of the assay medium. The results are consistent with the hypothesis that two types of sites exist on the AMV RNA: inactive "dead-end" sites that merely bind the enzyme, and active binding sites that lead to DNA synthesis. Velocity sedimentation studies of reverse transcriptase reveal that the enzyme becomes a dimer (or oligomer) at low salt concentrations and it is at these concentrations that the two types of sites are evident on the RNA. At high salt concentration the enzyme, which exists primarily as a monomer, is inactive with AMV RNA, although it is active when poly(rA)dT10 is used as the primer-template. We have shown that inactive sites are not due to binding of the reverse transcriptase to nicked regions or to partially denatured RNA molecules. We deduce that inactive sites are those containing incorrect 4S primer molecules. These results are discussed in terms of the mechanism of the interaction of the reverse transcriptase with AMV RNA.

Avian Leukosis Virus

Hepatic organelle interaction. IV. Mechanism of succinate enhancement of formaldehyde accumulation from endoplasmic reticulum N-dealkylations.

Further evidence for organelle interaction during drug metabolism by the liver is presented. The apparent stimulation by succinate of formaldehyde accumulation in the medium, which was reported to occur with liver slices and homogenates as well as with mitochondria plus microsomes, has been shown to be the result of succinate inhibition of mitochondrial aldehyde dehydrogenase. The mechanism of succinate inhibition is shown to be by reverse electron transport, and an increase in the NADH to NAD+ ratio in the mitochondria; the aldehyde dehydrogenase requires the oxidized form of the pyridine nucleotide as its cofactor. Studies on in vitro N-demethylation by liver microsomes and endoplasmic reticulum segments which cosediment with the mitochondria indicate that formaldehyde produced by the mixed function oxidase is handled differently from formaldehyde added to the medium. The latter is mainly retained in the medium containing 5 mM semicarbazide, while the generated formaldehyde is more than 50% consumed by the mitochondria. Electron microscopy has indicated that the microsomes and the endoplasmic reticulum fragments have a tendency to align themselves close to the mitochondria when present in the same medium. Consequently, it is possible that formaldehyde released to the medium adjacent to the mitochondria, as by N-demethylation, would be exposed to semicarbazide for shorter periods than that added directly to the medium. In agreement with this suggestion, complexing of formaldehyde with semicarbazide was observed spectroscopically not to be an extremely rapid reaction even at 37 degrees C. This is believed to be the reason for the greater extent of consumption of formaldehyde generated by the endoplasmic reticulum.

Aldehyde Oxidoreductases

Drug-biomolecule interactions: bioelectrometric study of the mechanism of carbachol interactions with the cornea and its relation to miotic activity.

The augmentation of carbachol miotic activity attributable to enhanced transcorneal absorption, which results from the action of cationic adjuvants included in ophthalmic vehicles, suggested a study of carbachol-corneal tissue interaction as a further step toward understanding the phenomenon. The present study was performed in vivo using an innocuous electrometric technique. A fixed charge density of the corneal epithelial surface versus carbachol concentration profile was obtained from the electrometric results; it revealed three distinct concentration regions defined by precipitous decreases of fixed charge over extremely small concentration ranges. This anomalous behavior is attributed to cooperative alterations in the binding affinities of fixed anionic sites on the tissue surface, which result in an all-or-none release of protons and/or other nicrocations. The unmasked anionic sites become reoccupied with carbachol except in the last region where the reoccupation by carbachol is competitive with other cations in the solution in contact with the surface. This behavior, postulated on the basis of the construction of a carbachol-tissue binding isotherm from which thermodynamic interaction affinities were computed, was corroborated by the observed dependency of the duration of miotic activity on carbachol concentration. Allosteric interactions between anionic binding sites, which are mediated through electron inductive and electrostatic field effects and likely involve a cooperative alteration in tissue water structure, are implicated as underlying the observed phenomena.

Animals

[Studies on the mechanism of interaction of glutaraldehyde with microorganisms (author's transl)].

The antimicrobial action of glutaraldehyde on Candida lipolytica increases with reagent concentration, pH and duration of contact. The simultaneous study of the size distribution of the particles shows an agglutination of the cells. This result is confirmed by direct observation of the cells by electron microscopy. Cell agglutination also occurs with other microorganisms (Saccharomyces carlsbergensis, Bacillus megaterium, Escherichia coli) and increases their settling rate. The formation of such intercellular bonds seems to confirm the hypothesis of a preferential action of glutaraldehyde on the outer layers of the cells. The effect of pH on the antimicrobial action of glutaraldehyde is accounted for by the fact that this reagent does not act, under neutral and alcaline conditions, as a dialdehyde but as an unsaturated polymer. This mechanism also accounts for various observations made on microorganisms-glutaraldehyde interactions.

Agglutination

Hormone-receptor interactions--basic mechanisms.

An understanding of the basic mechanisms of hormone action is becoming an important part of a clinician's training. With the advent of radioreceptor assays and their comparison with radioimmunoassays, we are becoming increasingly aware that the normal physiological function of a hormone is not necessarily dependent on "normal" levels of hormone being present in the plasma. Even if plasma levels are normal, if a particular target cell lacks the receptor for the particular hormone the target tissue will not respond to the hormone. It has been shown, for example, by many workers that steroid hormones act on their cells via a receptor located in the cytoplasm of the target cells (1-4). Since the presence or absence of such receptors are becoming increasingly important in terms of unexplained infertility, endometrial carcinoma and breast cancer, it is necessary that the practicing clinician be familiar with the concept of receptors and have some understanding of their mode of action. In this brief presentation, I will explain certain terminology and summarize the state of the art so that you can critically read the literature concerning new developments in the area of hormone action which is to become increasingly important in the next few years. I will discuss some of the aspects of the mechanism of peptide hormones such as LH and FSH but will devote most of my attention discussing the details of steroid hormone action since our knowledge in this area is much more complete. I will also explain the terms frequently discussed in the literature concerned with hormone-receptor interactions.

Animals

The use of aqueous space markers to determine the mechanism of interaction between phospholipid vesicles and cells.

A method has recently been introduced that quantitates the extent of phospholipid vesicle-cell interactions by following the amount of a vesicle-entrapped water-soluble fluorescent probe, carboxyfluorescein (CF) that becomes cell associated (Weinstein, J.N., Yoshikami, S., Henkart, P., Blumenthal, R. and Hagins, W.A. (1977) Science 195, 489--492). We have characterized some of the properties of this probe in sonicated phospholipid vesicles. The CF undergoes a pH-dependent quenching as previously reported and both a pH- and temperature-dependent efflux from vesicles. Decreasing the pH from 7.4 to 5.0 results in almost a 100-fold increase in CF efflux from the vesicles. The simultaneous measurement of cell-associated tritiated lipid and CF fluorescence reveals a discrepancy between the two markers with the tritiated phospholipid becoming associated to 5--10-fold greater extent than the CF. In the presence of cells the leakage of CF from vesicles increases from 1.5- to 10-fold depending on the vesicle composition. This data suggests that interpretations of cell-vesicle interactions followed by the CF technique or other aqueous space markers should be done with caution. However, in experiments where the leakage of CF from vesicles can be controlled, the technique can provide useful information.

Animals

[Mechanisms of interaction of vitamins B1 and PP during absorption in rat intestine].

Interrelation between vitamins B1 and PP during absorption in rat intestinum tenue depended on the quantitative ratio of vitamins in luminal contents. Large doses of one of vitamins decreased absorption of physiologic doses of another drug affecting vitamin metabolism in intestinal wall. Excess of nicotinic acid (40-10(-3)M) inhibited thiamine pyrophosphatase activity in intestinal mucosa if thiamine was used at concentration 3-1-10(-6) M). Use of low amount of 14C-nicotinic acid (40-10(-6) M) caused an occurrence of 14C-nicotinamide in intestinal mucosa; content of nicotinamide was distinctly decreased, when 14C-nicotinic acid was administered simultaneously with 3-1-10(-3) M thiamine. tat the same time, thiamine did not effect on 14C-nicotinic acid accumulation in segments of rat intestinum tenue in vitro.

Animals

Pulmonary host defense: coordinated interaction of mechanical, cellular and humoral immune systems of the lung.

The respiratory system has numerous ways to protect lung parenchyma from implantation of bacteria and subsequent infection. Such "natural" defense utilizes the clearing mechanism in the nose, larynx and upper airways and the cellular and humoral immune factors in the lower respiratory tract so effectively that the host is largely unaware of its tireless surveillance. Normal lungs are kept sterile. In contrast, pneumonitis, which represents the fully developed acute inflammatory reaction, signals the ultimate response to virulent bacteria, but can be considered as general failure of host defense also--depending on your viewpont. In between these extremes are gradations of response, which are unnoticed, perhaps. Thus, the inflammatory response in the lung to bacteria requires initiation, modulation and eventually suppression. This report attempts to dissect individual components of this response and to examine cell products which may have regulatory functions.

Antibodies, Bacterial

Isatin-enzyme interactions. VII. Mechanism of inhibition of rat kidney alkaline phosphatase.

Isatin has been found to inhibit rat kidney alkaline phosphatase (EC 3.1.3.1). The inhibition is dependent on isatin concentration and is of un-competitive type. The hydrolysis of disodium phenyl phosphate by the enzyme at different temperatures (17--37 degrees C) obeys the Arrhenius equation. Energy of activation in the absence and presence of isatin has been found to be 9.84 and 10.24 kCal/mol. The hyperbolic profile of isatin inhibition; the lowering of both Km and Vmax in the presence of isatin, and, small changes in enthalpy, free energy and entropy in the presence of isatin suggest a non-allosteric un-competitive inhibition of the enzyme.

Alkaline Phosphatase