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Isolation and characterization of an alpha-amanitin-resistant rat myoblast mutant cell line possessing alpha-amanitin-resistant RNA polymerase II.

Cultures of the rat skeletal muscle myoblast cell line, L6, were treated with the mutagen ethylmethanesulfonate and grown in the presence of alpha-amanitin, an inhibitor of RNA polymerase II in vitro. One clonal cell line, Ama102, resistant tc the cytotoxic action of 2 mu-g/ml of alpha-amanitin was isolated and extensively characterized. Ama102 cells were about 30-fold more resistant to alpha-amanitin than their Ama+ parent cells based on a comparison of the concentration of alpha-amanitin required to reduce their plating efficiencies to similar extents. The RNA polymerase activities from Ama+ and Ama102 cells were solubilized and separated by DEAE-Sephadex chromatography. Whereas all of the Ama+ RNA polymerase II activity was inhibited by 0.1 mu-g/ml of alpha-amanitin, about 30% of the activity in the Ama102 RNA polymerase II peak was resistant to this concentration of alpha-amanitin and was inhibited only by much higher concentrations (25 mu-g/ml) of alpha-amanitin. This alpha-amanitin-resistant activity in Ama102 cells was identified as a bona fide RNA polymerase II by its chromatographic behavior on DEAE-Sephadex, salt optimum, preference for denatured DNA as template, insensitivity to inhibition by potassium phosphate, thermal inactivation kinetics, and inactivation by anti-RNA polymerase II antiserum. Both RNA polymerase IIa and IIb from Ama102 cells exhibited the partial alpha-amanitin resistance, as did this activity when purified further on phosphocellusose. Unlike the parental Ama+ cells, Ama102 cells neither fused at confluence nor showed an increase in the specific activity of creatine kinase. The altered sensitivity of the Ama102 RNA polymerase II to alpha-amanitin appears to account for the drug-resistant phenotype of these cells.

Amanitins↗

Unique amanitin resistance of RNA synthesis in isolated nuclei from Amanita species accumulating amanitins.

In order to understand the basis upon which amanitin-accumulating species of Amanita are able to develop in the presence of these specific inhibitors of RNA synthesis, the in vitro RNA synthesizing activities of nuclei isolated from amanitin-accumulating species. Amanita hygroscopica (culture, derived from amanitin-accumulating carpophore) and A. suballiacea (carpophore), and from the non-accumulating species A. solitaria (culture) and A. brunnescens (carpophore) were tested for their sensitivities to alpha-amanitin inhibition. The nuclear RNA synthesizing activities obtained from both carpophores and cultures of non-accumulating organisms displayed significant sensitivities to alpha-amanitin, whereas those obtained from accumulating organisms displayed remarkable resistance to alpha-amanitin. The observed relationship between levels of amanitins in carpophores and resistance of the RNA synthesizing activities to inhibition by alpha-amanitin supports the hypothesis that amanitins may function as regulators of mRNA transcription in Amanita species.

Agaricales↗

Analysis of amatoxins alpha-amanitin and beta-amanitin in toadstool extracts and body fluids by capillary zone electrophoresis with photodiode array detection.

Over 90% of the lethal cases of mushroom toxin poisoning in man are caused by a species of amanita. The amatoxins (especially alpha- and beta-amanitin) found in amanita deserve special attention, because of their high pharmacological potency, their high natural concentration and their high chemical and thermal stability. Measures can be taken to improve the survival rates (aggressive gastroenteric decontamination, liver protection therapy) if the poisoning is diagnosed correctly and as early as possible. The standard assay for alpha-amanitin is a radioimmunoassay (RIA). Among other reagents, this assay uses 125I-labelled alpha-amaintin, which has a low shelf life. The assay is therefore not available at all hospitals and all year round. In this paper, a first attempt to employ capillary zone electrophoresis (CZE) to quantify amatoxins alpha- and beta-amanitin in urine samples of afflicted patients and in toadstool extracts is described. Diode array detection is used for identification of the resolved substances in the electropherogram. An analysis requires 20 min. The detection limit is 1 microgram/ml, i.e., 5 pg absolute. Relative standard deviations are between 1 and 2% for the calibration standards (peak height and area) and ca. 7.5% for the real samples. Advantages of the CZE over the RIA include lower cost, the possibility of quantifying several toxins in one analysis, less consumption of potentially harmful reagents (no radio-labelled substances, no addition of alpha-amanitin as reagent) and, most importantly, all-year-round availability of the assay. The detection limit is still somewhat high and does not cover the entire clinically relevant range. Attempts to lower the detection limit by the necessary order of magnitude are currently under way in our laboratory. These include application of laser-induced fluorescence detection, liquid chromatography-CZE and CZE-mass spectrometry techniques.

Amanita↗

Determination of alpha-amanitin and beta-amanitin in human biological fluids by high-performance liquid chromatography.

A high-performance liquid chromatographic assay of alpha-amanitin and beta-amanitin in human serum, urine, or stomach washings is described. Sample preparation involves a chemical step with deproteinization and organic solvent treatment, and a selective cleanup and concentration step on reversed-phase prepacked cartridges. Separations are performed on a reversed-phase analytical column under isocratic conditions with uv detection at 280 nm. The method allows the quantitation of alpha- and beta-amanitin separately with a detection limit of 10 ng/ml for both toxins.

Amanitins↗

alpha-Amanitin resistant RNA polymerase II from Aedes albopictus cell mutants resistant to alpha-amanitin.

Spontaneous and EMS-induced alpha-amanitin-resistant Aedes albopictus cells have been isolated and characterized. Two mutant sublines, one of intermediate resistance (alpha A2) and the other highly resistant (Ama18) contained RNA polymerase II activity, the resistance of which in vitro to alpha-amanitin correlated well with the resistance of these cells in vivo. The resistance of these cells to alpha-amanitin can likely be attributed to the presence of an altered RNA polymerase II.

Aedes↗

Studies on the pathogenesis of liver necrosis by alpha-amanitin. Effect of alpha-amanitin on ribonucleic acid synthesis and on ribonucleic acid polymerase in mouse liver nuclei.

1. Injection of alpha-amanitin to mice causes a decreased incorporation of [6-(14)C]-orotic acid into liver RNA in vivo. 2. The activity of RNA polymerase activated by Mn(2+) and ammonium sulphate is greatly impaired in liver nuclei isolated from mice poisoned with alpha-amanitin, and is inhibited by the addition of the same toxin in vitro. 3. The activity of the Mg(2+)-activated RNA polymerase is only slightly affected by alpha-amanitin either administered to mice or added in vitro.

Animals↗

Alpha-Amanitin resistance of RNA polymerase II in mutant Chinese hamster ovary cell lines.

A number of mutant Chinese hamster ovary (CHO) cell lines resistant to the cytotoxic action of alpha-amanitin have been isolated. The alpha-amanitin sensitivity of the different mutant cell lines varied widely, but correlated well with the alpha-amanitin sensitivity of the RNA polymerase II activity in each of these mutant cell lines. In comparison with the RNA polymerase II of wild-type cells, three mutants, Ama39, Ama6, and Amal, required respectively 2- to 3-fold, 8- to 10-fold, and about 800-fold higher concentrations of alpha-amanitin for inhibition of their polymerase II activity. Determination of the equilibrium dissociation constants (KD) for complexes between 0-[3H]methyl-demethyl-gamma-amanitin and RNA polymearse II indicated that differences in alpha-amanitin sensitivity were reflected in differences in the ability of the enzymes to bind amanitin. Hybrids formed by fusion of mutants with cells of wild-type sensitivity contained both mutant and wild-type polymerase II activities. Thus, each of the different alpha-amanitin resistance mutations was expressed co-dominantly. A test for complementation between two of these mutations by measurement of both the alpha-amanitin sensitivity and the [3H]amanitin binding by RNA polymerase II in Ama6 X Amal hybrid cells did not reveal any wild-type RNA polymerase II activity. These data provide evidence that the mutation to alpha-amanitin resistance involves structural changes in the gene coding for the alpha-amanitin binding subunit of RNA polymerase II. These changes appear to account for the alpha-amanitin-resistant phenotypes of these mutant cells.

Amanitins↗

Studies on the possible mechanisms of protective activity against alpha-amanitin poisoning by aucubin.

Aucubin, an iridoid glucoside, was investigated to determine whether it has a stimulating effect on alpha-amanitin excretion in alpha-amanitin intoxicated rats, and whether there is binding activity to calf thymus DNA. High-performance liquid chromatography (HPLC) analysis of alpha-amanitin in rat urine allowed quantitative measurement of the alpha-amanitin concentration with a detection limit of 50 ng/ml. In this system, a group treated with both alpha-amanitin and aucubin showed that alpha-amanitin was excreted about 1.4 times faster than in the alpha-amanitin only treated group. Our previous results showed that the toxicity of alpha-amanitin is due to specific inhibition of RNA polymerase activity and the resultant blockage of the synthesis of certain RNA species in the nucleus. However, no significant activity change on RNA polymerase from Hep G2 cells was observed when aucubin was treated with alpha-amanitin at any concentration tested. Nevertheless, aucubigenin inhibited both DNA polymerase (IC50, 80.5 microg/ml) and RNA polymerase (IC50, 135.0 microg/ml) from the Hep G2 cells. The potential of both alpha-amanitin and aucubin to interact with DNA were examined by spectrophotometric analysis. Alpha-Amanitin showed no significant binding capacity to calf thymus DNA, but aucubin was found to interact with DNA, and the apparent binding constant (Kapp) and apparent number of binding sites per DNA phosphate (Bapp) were 0.45 x 10(4) M(-1) and 1.25, respectively.

Amanitins↗

The Meixner test in the detection of alpha-amanitin and false-positive reactions caused by psilocin and 5-substituted tryptamines.

STUDY OBJECTIVE: The Meixner test has been suggested to identify the presence of alpha-amanitin, one of the toxic compounds in Amanita mushrooms. We attempted to determine the detection limit of the Meixner test for alpha-amanitin and to determine the percentage of positive sample interpretation compared with other mushroom indole compounds. METHODS: This was a 2-part in vitro experiment. In part 1, we applied the Meixner test to a series of dilutions of alpha-amanitin (0 microg, 0.8 microg, 1.0 microg, 2.0 microg, and 4.0 microg) on telephone book paper, which were then presented to 5 blinded emergency physicians. We sought to determine the lowest amount of alpha-amanitin that was universally recognized as positive by the physicians (the detection limit). In the second part, 5 emergency physicians were presented simultaneously with 10 Meixner processed samples, including the mushroom indole compounds alpha-amanitin (2 microg and 10 microg), psilocin (20 microL and 60 microL of mushroom extract), 5-hydroxytryptamine (100 microg and 200 microg), and 5-methoxy-N,N-dimethyltryptamine (100 microg and 200 microg), as well as 2 negative controls (20 microL of water and methanol). We determined how likely these other indoles are to be mistaken for a positive alpha-amanitin Meixner reaction result by determining the percentage of positive sample interpretation for each compound and comparing them with the rate for alpha-amanitin. Fisher's exact test was used to determine any significant difference (P<.05) between the samples. RESULTS: The minimum amount of alpha-amanitin that was identified with 100% agreement by testers was 2 microg. For the second part, there was 100% agreement that psilocin gives a positive Meixner test (100% false positive) and a 35% recognition rate of the 5-substituted tryptamine compounds as a positive Meixner test. There was no statistical difference between the interpretation of alpha-amanitin and psilocin, suggesting the test is unable to differentiate between them. CONCLUSION: Although the Meixner test has a good detection limit for toxic amounts of alpha-amanitin, a positive Meixner reaction does not adequately distinguish between alpha-amanitin and other mushroom indoles.

Agaricales↗

Regulation of RNA polymerase II activity in alpha-amanitin-resistant CHO hybrid cells.

CHO hybrid cell lines obtained by fusing cells of wild-type sensitivity to alpha-amanitin with mutant cells containing RNA polymerase II activity resistant to alpha-amanitin have both sensitive (wild-type) and resistant forms of RNA polymerase II. When these hybrids were grown in medium containing alpha-amanitin, the sensitive form of polymerase II was inactivated, and the activity resistant to alpha-amanitin increased proportionally. The total polymerase II activity level therefore remained constant. This regulation of RNA polymerase II activity occurred independently of that of RNA polymerase I and was similar to that observed previously in the alpha-amanitin-resistant rat myoblast mutant clone Ama102 (Somers, Pearson, and Ingles, 1975a). A sensitive radioimmunoassay was developed to quantitate the total mass of RNA polymerase II enzyme. Under conditions of regulation of the enzymatic activity when hybrids grown in alpha-amanitin exhibited a 2-3 fold increase in the activity of the alpha-amanitin-resistant enzyme, no major change in the enzyme mass was detected immunologically. However, quantitation of the alpha-amanitin-inactivated polymerase II of wild-type sensitivity by 3H-amanitin binding indicated that the loss of its enzymic activity was accompanied by a loss of 3H-amanitin binding capacity in the cell lysates. All these results taken together indicate that a mechanism for regulating the intracellular level of RNA polymerase II exists and that it involves changes in the concentration of enzyme.

Amanitins↗

Determination of alpha-, beta-, and gamma-amanitin by high performance thin-layer chromatography in Amanita phalloides (Vaill. ex Fr.) secr. from various origin.

A fast, sensitive high performance thin-layer chromatographic method for the determination of alpha-, beta-, and gamma-amanitin in crude, methanolic extracts of Amanita phalloides is described. The limit of detection is 50 ng of each amanitin. With this method amanitin was determined in 24 pooled samples of Amanita phalloides, collected between 1970 and 1977 in Germany and Switzerland. The total amanitin content varied between 2010 and 7300 mg/kg dry weight and the average value was 4430 mg/kg of which 43% was alpha-amanitin, 49% beta-amanitin and 8% gamma-amanitin. The origin of the fungi hardly influenced their amanitin content: in samples collected during the same year at different sites it fluctuated within a factor of 1.7. The amanitin content of samples from the same site, but collected in different years, maximally varied within a factor of 3.7. The partial decomposition of amanitins during prolonged storage of the lyophilized samples undoubtedly contributed to this variation. Phalloidin, which was determined by conventional thin-layer-chromatography, could not be detected in a sample from 1970, whereas its concentration in material collected during 1977 amounted to 2400 mg/kg dry weight. The toxicity of the samples (LD50 of lyophilized defatted methanolic extracts intravenously for mice) varied within a factor of 2.5.

Agaricales↗

Ether derivatives of alpha-amanitin. Introduction of spacer moieties, lipophilic residues, and radioactive labels.

Etherification of alpha-amanitin with tritiated methyl iodide yielded a radioactively labeled amatoxin of high specific activity (similar to or approximately 4 Ci/mmol) which, in its inhibition capacity for RNA polymerase II, was very similar to alpha-amanitin. The labeled toxin was used successfully in binding assays with RNA polymerases II and in radioimmunological determinations of amatoxins. If long-chained alkyl bromides were reacted with alpha-amanitin, lipophilic ether derivatives were obtained with a facilitated penetration capacity into cells. As a consequence of the improved permeability, two derivatives, O-hexyl- and O-decyl-alpha-amanitin, were more toxic in vivo than alpha-amanitin, although their affinity to RNA polymerases II was much reduce. By reaction of N-tert-butyloxy-carbonyl-N'-(6-bromocaproyl)ethylenediamine with alpha-amanitin, a ten-atom spacer with a terminal amino group could be introduced into the toxin, which allowed the attachment of alpha-amanitin to proteins, solid-phase supports, or reporter groups. For example, by reaction with fluoresceinyl isothiocyanate, a fluorescent amatoxin was prepared for visualizing amatoxin-binding structures in cells. After succinylation of the spacer moiety, alpha-amanitin could be attached to proteins, e.g., fetuin, yielding a derivative with good antigenic properties. When an alpha-amanitin derivative was coupled to Sepharose 6B, an adsorbent for affinity chromatography was obtained suitable for a one-step purification of amatoxin-binding immunoglobulins from the sera of immunized rabbits.

Amanitins↗

Amanitin greatly reduces the rate of transcription by RNA polymerase II ternary complexes but fails to inhibit some transcript cleavage modes.

The toxin alpha-amanitin is frequently employed to completely block RNA synthesis by RNA polymerase II. However, we find that polymerase II ternary transcription complexes stalled by the absence of NTPs resume RNA synthesis when NTPs and amanitin are added. Chain elongation with amanitin can continue for hours at approximately 1% of the normal rate. Amanitin also greatly slows pyrophosphorolysis by elongation-competent complexes. Complexes which are arrested (that is, which have paused in transcription for long periods in the presence of excess NTPs) are essentially incapable of resuming transcription in the presence of alpha-amanitin. Complexes traversing sequences that can provoke arrest are much more likely to stop transcription in the presence of the toxin. The substitution of IMP for GMP at the 3' end of the nascent RNA greatly increases the sensitivity of stalled transcription complexes to amanitin. Neither arrested nor stalled complexes display detectable SII-mediated transcript cleavage following amanitin treatment. However, arrested complexes possess a low level, intrinsic transcript cleavage activity which is completely amanitin-resistant; furthermore, pyrophosphorolytic transcript cleavage in arrested complexes is not affected by amanitin.

Amanitins↗

Giardia lamblia RNA polymerase II: amanitin-resistant transcription.

Giardia lamblia is an early branching eukaryote, and although distinctly eukaryotic in its cell and molecular biology, transcription and translation in G. lamblia demonstrate important differences from these processes in higher eukaryotes. The cyclic octapeptide amanitin is a relatively selective inhibitor of eukaryotic RNA polymerase II (RNAP II) and is commonly used to study RNAP II transcription. Therefore, we measured the sensitivity of G. lamblia RNAP II transcription to alpha-amanitin and found that unlike most other eukaryotes, RNAP II transcription in Giardia is resistant to 1 mg/ml amanitin. In contrast, 50 microg/ml amanitin inhibits 85% of RNAP III transcription activity using leucyl-tRNA as a template. To better understand transcription in G. lamblia, we identified 10 of the 12 known eukaryotic rpb subunits, including all 10 subunits that are required for viability in Saccharomyces cerevisiae. The amanitin motif (amanitin binding site) of Rpb1 from G. lamblia has amino acid substitutions at six highly conserved sites that have been associated with amanitin resistance in other organisms. These observations of amanitin resistance of Giardia RNA polymerase II support previous proposals of the mechanism of amanitin resistance in other organisms and provide a molecular framework for the development of novel drugs with selective activity against G. lamblia.

Amanitins↗

In vivo degradation of RNA polymerase II largest subunit triggered by alpha-amanitin.

Alpha-Amanitin is a well-known specific inhibitor of RNA polymerase II (RNAPII) in vitro and in vivo. It is a cyclic octapeptide which binds with high affinity to the largest subunit of RNAPII, RPB1. We have found that in murine fibroblasts exposure to alpha-amanitin triggered degradation of the RPB1 subunit, while other RNAPII subunits, RPB5 and RPB8, remained almost unaffected. Transcriptional inhibition in alpha-amanitin-treated cells was slow and closely followed the disappearance of RPB1. The degradation rate of RPB1 was alpha-amanitin dose dependent and was not a consequence of transcriptional arrest. Alpha-Amanitin-promoted degradation of RPB1 was prevented in cells exposed to actinomycin D, another transcriptional inhibitor. Epitope-tagged recombinant human RPB1 subunits were expressed in mouse fibroblasts. In cells exposed to alpha-amanitin the wild-type recombinant subunit was degraded like the endogenous protein, but a mutated alpha-amanitin-resistant subunit remained unaffected. Hence, alpha-amanitin did not activate a proteolytic system, but instead its binding to mRPB1 likely represented a signal for degradation. Thus, in contrast to other inhibitors, such as actinomycin D or 5,6-dichloro-1-beta-D-ribofuranosyl-benzimidazole, which reversibly act on transcription, inhibition by alpha-amanitin cannot be but an irreversible process because of the destruction of RNAPII.

Amanitins↗