Search PubMed⌕ Search

Biomedical subjects

L D Kohn

Publications and source records attributed to L D Kohn.

At least 235 records · Page 13Linked to original sources

Tetanus toxin interactions with the thyroid: decreased toxin binding to membranes from a thyroid tumor with a thyrotropin receptor defect and in vivo stimulation of thyroid function.

Normal rat thyroid membranes adsorb neurotoxicity when incubated with purified tetanus toxin. Membranes from a rat thyroid tumor with a thyrotropin receptor defect adsorb very little neurotoxicity when similarly evaluated. This inability of the tumor membranes to adsorb neurotoxicity is correlated with a defect in their ability to bind both 125I-labeled tetanus toxin and [125I]iodothyrotropin. The effect of tetanus toxin on the release of radioiodine from the thyroids of appropriately prepared mice has been measured by adapting methods used for the bioassay of thyrotropin. One minimum lethal dose of tetanus toxin given sc caused a significant release of radioiodine into the blood of mice 48 h after injection. In mice subjected to the stress of prior bleedings or anesthesia, the release of radioiodine from the thyroid by tetanus toxin was accelerated, i.e., the increase in blood radioiodine could be measured 24 h after injection. These results again suggest that tetanus toxin may interact with thyrotropin receptors on thyroid plasma membranes. The "sympathetic overactivity syndrome" seen in some patients with tetanus and the syndrome characterized as "thyroid storm" in patients with Graves' disease are discussed as they may relate to these observations.

Animals↗

Effects of thyrotropin on iodine metabolism of dog thyroid cells in tissue culture.

When grown in the presence of thyrotropin, dog thyroid cells in culture from follicle-like structures, take up labeled iodide, and iodinate macromolecular components in the cell. When grown in the absence of thyrotropin, dog thyroid cells in culture form a monolayer, take up only 6% of the iodide of follicular cells, and do not iodinate macromolelcular components in the cell. The iodide uptake in monolayer cells does, however, reflect an incorporation process unique to thyroid cells because hepatocytes and fibroblasts do not have the capacity of the monolayer cells to take up iodide. Thyrotropin stimulation of monolayer cells for a prolonged period (3-8 days) causes the cAMP levels of these cells to return to levels identical to those in follicular cells. The increased cAMP levels are not due to the induction of an adenylate cyclase enzyme, because homogenates of monolayer cells have a thyrotropin-stimulable adenylate cyclase activity. The low level of cAMP, thus, seems to be a problem of receptor coupling to the adenylate cyclase enzyme. The return of cAMP to normal levels is accompanied by an increase in iodide uptake and by macromolecular organification; the return of cAMP levels to normal values is not accompanied by follicular development. The majority (75%) of the iodinated macromolecular product accumulated by follicular thyroid cells, by monolayer thyroid cells stimulated with thyrotropin for a prolonged period, or by thyroid cells treated with dibutyryl cAMP from the onset of culture has the characteristics of 19 S thyroglobulin. The remainder appears to be low mol wt material which may be thyroglobulin-related i.e., be either precursor or biodegraded material.

Animals↗

Relationships of the structure and function of the interferon receptor to hormone receptors and establishment of the antiviral state.

This report describes similarities between the structure and function of the interferon receptor and receptors for glycoprotein hormones and several bacterial toxins. Specifically, it describes several common molecular and mechanistic elements, including: (a) the presence of a glycoprotein as well as a ganglioside component in the receptor; (b) changes in membrane structure as a consequence of interferon action; (c) interferon-induced intracellular cyclic adenosine 3':5'-monophosphate changes; and (d) alterations in the flux of certain ions across the membrane. Since interferon has an antiviral effect, these results define a relationship between hormonal perturbation of cellular events and the ability of an agent to prevent or suppress viral infections of cells. Further definition of these relationships should be important to our understanding of the oncogenic state, of hormonal effects on the oncogenic state, and of other human diseases in which hormonal perturbations of non-target tissues or cross-reactivity of receptors could be pathogenic.

Binding Sites↗

Effects of thyrotropin on the thyroid cell membrane: hyperpolarization induced by hormone-receptor interaction.

Cultured thyroid cells accumulate the lipophilic cation triphenylmethylphosphonium, indicating that there is an electrical potential (interior negative) across the plasma membrane. Thyrotropin stimulates the uptake of the lipophilic cation 3-fold, and the proton conductor carbonylcyanide-m-chlorophenylhydrazone causes efflux of triphenylmethylphosphonium accumulated in the presence or absence of thyrotropin. The stimulatory effect of thyrotropin on triphenylmethylphosphonium accumulation is not mimicked by human chorionic gonadotropin, a glycoprotein hormone with a similar structure whose target organ is not the thyroid, and the effect is abolished if the thyrotropin-receptor activity of the cells is destroyed by treatment with trypsin. Analogous effects are observed with thyroid plasma membrane vesicles which are essentially devoid of mitochondrial and soluble enzyme activities. Triphenylmethylphosphonium uptake and stimulation by thyrotropin occurs when NaCl, KCl, or Tris.HCl concentration gradients are artifically imposed across the vesicle membrane ([salt](out) > [salt](in)). It seems likely, therefore, that triphenylmethylphosphonium uptake is driven by a chloride diffusion potential (interior negative) and that thyrotropin either increases the permeability of the membrane to anions or decreases its permeability to cations. Thyrotropin-stimulated triphenylmethylphosphonium uptake in the vesicle preparations reaches a quasi steady-state within 3 min; in contrast, thyrotropin-stimulated adenylate cyclase activity is negligible during this period of time, becomes measurable after about 4 min, and is optimal after 12-15 min. Thus, a primary mode of action of thyrotropin on the thyroid cell may be an alteration in the electrical potential across the plasma membrane. The relevance of this observation to the mechanism of action of other glycoprotein hormones, certain bacterial toxins, and interferon is discussed.

Animals↗

Delayed hypersensitivity in Graves' disease and exophthalmos: identification of thyroglobulin in normal human orbital muscle.

Patients with Graves' disease and exophthalmos demonstrate delayed hypersensitivity to antigens present in extracts of certain normal human tissue; namely,thyroid gland and retroorbital tissue. The delayed hypersensitivity can be assayed in vitro by quantitating the amount of a lymphokine, migration inhibition factor (MIF), which is produced when T lymphocytes of patients with Graves' disease and exophthalmos are exposed to these antigens. In the present report, a partial purification is described for the retro-orbital tissue antigen which is responsible for the positive leucocyte migration inhibition factor assay (MIF assay) exhibited by a sensitized lymphocytes of these patients. The purified retro-orbital tissue antigen preparation demonstrates a 50- to 150-fold higher specific activity over crude homogenates in its ability to act as an antigen in the MIF assay of exophthalmic patients. Immunodiffusion, ultracentrifugation, and disc electrophoretic data indicate that this purified antigen preparation, obtained from normal human, retro-orbital tissue, contains thyroglobulin or a derivative of thyroglobulin; immunofluorescence studies localize the anti-thyroglobulin reactive material to the plasma membranes of extraocular muscle fibers of normal individuals. On the basis of these data it is concluded that thyroglobulin or a derivative of the thyroglobulin molecule is present in the orbital muscle of normal individuals. Since thyroglobulin purified from normal human thyroid glands and the purified retro-orbital tissue preparation are nearly equivalent as antigens in the MIF assay of exophthalmic patients, we conclude that thyroglobulin or an antigenic component of the thyroglobulin molecule is one of the antigens to which patients with Graves' disease and exophthalmos demonstrate delayed hypersensitivity.

Antigens↗