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J Toth

Publications and source records attributed to J Toth.

At least 73 records · Page 4Linked to original sources

Regulation of estrogen and progestin receptor concentrations in an experimental rat prostatic carcinoma by estrogen, antiestrogen, and progesterone.

In order to assess prostatic tissue as a target for receptor-mediated estrogen action, we have examined the regulation of estrogen (ER) and progestin receptors (PgR) by estrogen, antiestrogen, and progesterone in cytosolic and nuclear fractions of the R3327H (Dunning) prostatic adenocarcinoma of the rat. Twenty micrograms diethylstilbestrol (DES) with or without 800 micrograms tamoxifen (Tam) were injected s.c. in oil 5 times weekly for 2 weeks. Controls were given oil only. Estrogen receptor assays were carried out using [3H]estradiol and a hydroxylapatite exchange method. Progestin receptors were assayed using [3H]R5020 and dextran-coated charcoal to separate free and bound steroid. All binding data were evaluated by using Scatchard analysis. Treatment with DES depleted cytosolic ER, promoted association of ER with the nuclear fraction, and concomitantly increased PgR concentrations in amounts proportional to nuclear ER. Treatment with Tam alone resulted in higher nuclear ER concentrations than treatment with DES, but induced only one-fifth the amount of PgR. Treatment with DES plus Tam resulted in similar nuclear ER concentrations as with Tam alone, but PgR concentrations were intermediate between those observed with DES alone and Tam alone. Thus Tam exhibited both estrogenic and antiestrogenic properties. In this experiment, the same cytosolic and nuclear extracts were also assayed for ER by using monoclonal antibodies to the receptor in an enzyme immunoassay. No significant differences were observed between the results obtained by the radioligand and enzyme immunoassay methods in the cytosol and nuclear fractions from the control and DES-treated tumors. However in both Tam-treated groups, the ER values obtained by the enzyme immunoassay method were significantly higher than those obtained by the radioligand method in both cytosolic and nuclear fractions. This confirms the observations made by others in female target organs, that monoclonal antibody to ER reacts differently with the Tam-bound ER complex than with the estradiol-bound ER complex. In a separate experiment, administration of progesterone with DES decreased the concentration of nuclear ER to less than one-half that observed after administration of DES alone, with proportional decreases in both cytosolic and nuclear PgR. All these observations indicate that the control of ER and PgR concentrations in this prostatic tumor is identical to that observed in female rat target organs. Use of an immunohistochemical method for the detection of ER in frozen sections indicated that the receptor was localized in the glandular epithelium in both control and DES-treated tumors.

Animals↗

Quantitation of estrogen receptor content and Ki-67 staining in breast carcinoma by the microTICAS image analysis system.

The microTICAS image analysis system, originally designed for karyometry using Papanicolaou-stained or Feulgen-stained smears and tissue sections, has been adapted to assess tissue sections stained by immunohistochemical techniques. This system was used to quantitate growth fractions and the estrogen receptor (ER) content of breast carcinomas stained by immunoperoxidase techniques. The results were similar to those obtained with nonautomated methods of quantitating immunohistochemically stained tissue sections and, in the case of ER content, were similar to the results obtained with cytosol estrogen binding methods. The findings show that the microTICAS system provides an objective alternative to visual counting of labeled cells in tissue sections stained for growth fraction or for ER content by immunohistochemical methods.

Antibodies, Monoclonal↗

Characterization of toxins A and B of Clostridium difficile with monoclonal antibodies.

Two monoclonal antibodies (MAbs) were used to learn more about the structures of Clostridium difficile toxins A and B. One of the antibodies, the PCG-4 MAb, reacted specifically with toxin A. This MAb precipitated toxin A and neutralized the enterotoxic but not the cytotoxic activity of the toxin. The site to which the antibody bound was resistant to denaturation with sodium dodecyl sulfate; however, it was destroyed by N-bromosuccinimide. Immunoblot analysis with the PCG-4 MAb revealed the presence of a large number of bands in preparations of denatured toxin A, suggesting that toxin A exists as an aggregate of smaller components. The antibody was covalently coupled to Affi-Gel 10, and the gel was used to purify toxin A from the culture filtrate of a highly toxigenic strain of C. difficile by immunoaffinity chromatography. The second antibody, the G-2 MAb, cross-reacted with toxins A and B. The cross-reaction was confirmed by immunoblot analysis. These results show that toxins A and B share an epitope and suggest that they have a common subunit. The G-2 MAb did not neutralize or precipitate either toxin. The site to which the G-2 MAb bound was partially destroyed by sodium dodecyl sulfate and was resistant to oxidation with N-bromosuccinimide.

Antibodies, Monoclonal↗

Salvage of an ischemic limb by laser angioplasty: description of a new technique.

A 62-year-old male with severe claudication and rest pain of the left leg resulting from a totally occluded superficial femoral artery and a 95% stenosis of the deep femoral artery was treated with laser angioplasty after attempts at surgical revascularization were unsuccessful. A 200 mu silica fiber was inserted through a catheter and advanced into the lesion using 2 watts of delivered energy from an argon laser source. The fiber was then withdrawn from the lesion using 7 watts of energy to enlarge the lumen. No complications occurred, and posterior tibial blood flow was reestablished, as shown by Doppler flow measurements and resolution of clinical symptoms. We report a new technique of transcatheter fiberoptic-directed argon laser radiation (laser angioplasty) for the treatment of occlusive vascular disease.

Arterial Occlusive Diseases↗

Drug-induced changes in the composition of the cerebral free amino acid pool.

The effects of insulin, hydroxybutyrate, deoxypyridoxine, chlorpromazine, codeine, morphine, puromycin, and cycloheximide on the composition of the free amino acids in mouse and rat brain were tested. Significant changes occurred in a number of amino acids with most compounds tested; the largest was of alanine (a 50% increase with glucose, a 50% decrease with drugs); histidine was often increased, and the nonessential amino acids were mostly decreased. The pattern of changes was somewhat different in the mouse brain from that in the rat brain. Changes of amino acid levels may participate in the pharmacological action of a number of compounds.

Amino Acids↗

Compartments of protein metabolism in the developing brain.

We investigated whether the higher rate of amino acid incorporation into immature than into mature brain protein is due to (a) rapid growth, (b) a small rapidly metabolized protein pool, or (c) a higher turnover rate of most of the protein. We measured net growth and the incorporation of [14C]tyrosine or [14C]valine into brain proteins in young rats and mice. The specific activity of the free amino acid pool was kept constant in the tyrosine experiments. Incorporation of tyrosine into protein was continued for up to 30 h by which time the specific activity of protein-bound amino acid reached 1/3 of that of the free (precursor) amino acid. The growth (accretion) of brain proteins was approx. 0.635% per h in mice and rats in the 1-4 day period after birth. In previous studies we found that the turnover rate of the bulk (about 96%) of adult brain proteins is below 0.3% per h. Because of the presence of a small (about 4%) active pool the average turnover rate is 0.6% per h. The present experiments show a degradation rate of 0.7-1.1% per h in the brain proteins of the young. This high metabolic rate is not due to a small rapidly degraded fraction of protein. The very rapid protein fraction previously seen in adult rats is either very small (below 1%) or absent in the young. Thus most of the proteins in the immature brain during the rapid growth phase are formed and broken down at a rate that is approximately three times higher than that of the bulk of proteins in the adult brain. The small active protein pool in the adult on the other hand has a metabolic rate higher than that of the immature brain proteins.

Aging↗

The effect of amino acids on protein metabolism as measured in long-term experiments in immature brain explants.

In a study of a system suitable for investigating long-term effects on brain protein metabolism, we measured amino-acid incorpration into isolated immature brain explants incubated under sterile conditions up to ten days. Measurements of changes in total proteins, total DNA, cell number during the experiments, and 14C-thymidine incorporation measurements indicated no significant net growth; new cell formation was below 5% in a 5-day period; therefore, amino-acid incorporation was mainly due to protein turnover. The rate of incorporation in our immature brain preparation was similar to that of the adult brain in vivo: by ten days about one-half of the tissue protein turned over. The label incorporated was released in subsequent incubations with cold amino acids. Such release occurred in all subcellular fractions examined. Incorporation was fairly stable; at temperatures below 30 degrees C it rapidly declined, but it was not affected when phenylalanine or the branched chain amino acids (leucine, isoleucine, valine) were elevated in the incubation medium. Brief exposure to low amino-acid media had no effect; longer exposure resulted in tissue damage. Our model system indicates that overall brain protein turnover is not sensitive to such variations in the level of most amino acids, which may occur under various conditions. Protein metabolism of the nervous system occurs at a high rate. A recent long-term labeling method (Lajtha, Latzkovits, and Toth, 1976) gave a best fit to incorporation curves by assuming two compartments for adult brain proteins, one of which (about 6%) has a half-life of 15 hr and the other (94%) has a half-life of ten days. The disappearance of protein-bound label with time under conditions in which all proteins were previously labeled indicated that most, possibly all, proteins in brain are in a dynamic state (Lajtha and Toth, 1966). Incorporation of amino acids was found in all proteins and structures that have been studied to date; myelin proteins previously thought less active are also metabolized at a significant rate (Sabri, Bone, and Davison, 1974; Lajtha, Toth, Fujimoto, and Agrawal, 1977). We have fairly extensive information available in addition to turnover studies about the mechanisms of protein synthesis in brain (Roberts, 1971); protein breakdown was also studied in some detail (Marks and Lajtha, 1971). In contrast to our knowledge about protein metabolism under physiological equilibrium conditions, our information about alterations during functional demands or pathological conditions is scanty. Although a significant amount of work has been reported, largely because of technical difficulties the results are difficult to interpret unequivocally. The present report represents our effort to address some of the obstacles: to develop a system in which influences on long-term incorporation can be studied...

Amino Acids↗

Turnover of myelin proteins in mouse brain in vivo.

The incorporation of tyrosine into proteins was measured after the subcutaneous implantation of a pellet of [14C]tyrosine in mice. This method keeps the specific radioactivity of free tyrosine fairly constant and makes it possible to follow incorporation up to a 10-day period. At the end of 10 days most of the protein-bound tyrosine was replaced (i.e. most protein turned over) in lung, liver, heart, kidney and spleen; about half was replaced in brain, one-quarter in muscle. The rate of protein turnover in myelin was approx. 40% of that of whole brain proteins; at 10 days one-fifth of the myelin proteins were replaced. All protein components of myelin measured were in a dynamic state; incorporation decreased in the following order, Wolfgram greater than DM-20 greater than basic greater than proteolipid proteins. The incorporation of tyrosine into each protein fraction was greater in the 0-5-day than in the 5-10-day period, indicating heterogeneity of metabolic rates. The results show that after myelination at least a portion of each protein component of myelin is undergoing significant metabolic turnover. In the adult, myelin components are not stable, but turnover is heterogeneous, and each protein may be compartmentalized. Turnover can be influenced by a variety of factors.

Animals↗