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L D Kohn

Publications and source records attributed to L D Kohn.

At least 73 records · Page 4Linked to original sources

Graves' disease following thyrotoxic painless thyroiditis. Analysis of antibody activities against the thyrotropin receptor in two cases.

The exact immunologic mechanisms that lead to the emergence and progression of painless ("silent") thyroiditis remain unclear. We report two cases of painless postpartum thyroiditis followed by Graves' disease, where extensive immunologic evaluation supported a possible pathogenetic association. The time course of changes in thyroid function tests, 123I thyroidal uptake values, and thyrotropin receptor antibodies (TSHRAbs) were documented. The existence of stimulating TSHRAbs (TSAbs) activating the cyclic adenosine monophosphate (cAMP) and phosphatidylinositol 4,5-bisphosphate (PIP2) signal cascades and their functional epitopes, as well as two different thyrotropin-binding inhibitory immunoglobulins (TBII) were documented in both patients at the time of diagnosis of Graves' disease. We suggest that susceptible persons may develop an immunologic response that can trigger the appearance of a mixture of species of TSHRAbs, which in turn may lead to the sequential occurrence of painless thyroiditis and Graves' disease. Additionally, the multiple phases of hyperthyroidism and hypothyroidism that can occur in these patients may reflect the existence and changing spectrum of TSHRAbs in their sera.

Adolescent↗

Patients treated with interferon-alpha, interferon-beta, and interleukin-2 have a different thyroid autoantibody pattern than patients suffering from endogenous autoimmune thyroid disease.

Cytokines are believed to mediate the induction and perpetuation of autoimmune thyroid disease (ATD) in humans. However, this concept is mainly based on in vitro findings and to date, concrete in vivo evidence is still lacking. This prompted us to compare serum thyroid parameters of patients treated with cytokines with patients suffering from ATD. The cytokine group (n = 61) consisted of patients suffering from chronic hepatitis (n = 27) and from hemato-oncological diseases (n = 34). Patients were treated with interferon-alpha (IFN-alpha) or IFN-beta, either alone (n = 31) or in combination with interleukin-2 (IL-2) (n = 15) or with antineoplastic agents (n = 15). The ATD group (n = 105) consisted of 51 patients with Graves' disease, 26 with euthyroid ATD, 18 with Hashimoto's disease, and 10 with atrophic thyroiditis. Only 6 of 61 patients (10%) from the cytokine-treated group had thyroid peroxidase antibody (TPOAb) titers equal to or greater than 100 U/mL, whereas 82 of 87 patients (94%) suffering from ATD had TPOAb titers equal to or greater than 100 U/mL (p = 0.0001). In contrast, the percentage of patients who had thyroglobulin antibody (TgAb) serum titers equal to or greater than 100 U/mL were identical in both groups: 25 of 61 patients (41%) treated with cytokines versus 40 of 87 patients (46%) suffering from ATD (p = 0.789). Thus, patients with ATD had significantly higher TPOAb titers (p = 0.0001) whereas TgAb titers were not significantly different compared with patients from the cytokine group. The substantial difference in autoantibody response raises the possibility that thyroid abnormalities associated with ATD reflect genetic susceptibility and/or an independent stimulus or incident aside from cytokine dysfunction and that cytokines may play a secondary, rather than primary role in disease expression.

Adult↗

Epitopes for thyroid stimulating and blocking autoantibodies on the extracellular domain of the human thyrotropin receptor.

The majority (97%) of functional epitopes for stimulating thyrotropin receptor (TSHR) antibodies (stimulating TSHRAbs) in a large cohort (n = 59) of Japanese Graves' patients exists on the N-terminal region of the extracellular domain of TSHR, between residues 25 and 165 numbering from the methionine start site. This was determined by measuring the loss of stimulating activity in the Cos-7 cells transfected with TSHR/lutropin-choriogonadotropin receptor (LH-CGR) chimeras wherein TSHR residues 89-165 (Mc2) or 8-165 (Mc1 + 2) are replaced by comparable LH-CGR residues. There is no comparable loss when stimulating TSHRAb activity is measured in an Mc4 chimera, wherein TSHR residues 261 to 370 are replaced. In contrast, immunoglobulin (IgG) preparations from 35 patients with Hashimoto's disease or idiopathic myxedema, who have blocking TSHRAbs causing hypothyroidism, loose blocking TSHRAb activity in the Mc4 chimera, but not the Mc2 or Mc1 + 2 chimeras. Thus, in a large population of Japanese patients with autoimmune thyroid disease caused by TSHR autoantibodies, the major functional epitope for stimulating TSHRAbs is on the N-terminal portion of the TSHR extracellular domain, whereas that for blocking TSHRAbs is on the C-terminal portion of the extracellular domain. To further evaluate the nature of the critical functional epitope between residues 90 to 165, we divided this region approximately in half, creating chimeras Mc2a and Mc2b with, respectively, residues 90-124 or 125-165 replaced by comparable LH-CGR residues. IgGs from all patients tested lost significant stimulating activity using the Mc2a and Mc2b chimeras; however, when present, residual stimulating TSHRAb activity was evident on one or the other half of the region or on both halves, indicating that both segments are required for expression of the stimulating TSHRAb epitope within residues 90-165. Finally, we have identified a complex epitope involving both the N- and C-terminal portion of the extracellular domain that appears to account for the small fraction of stimulating TSHRAbs whose activity is not solely dependent on residues 25 to 165. Thus, using chimeras Mc1 + 2 + 4, with TSHR residues 8-165 and 261-370 substituted, or chimera Mc1 + 2 + 3 + 4, with residues 8-370 substituted, as well as Mc2, Mc1 + 2, and Mc4, we show that the Graves' IgGs which maintain stimulating TSHRAb activity when residues 8-165 of the TSHR are replaced by LH-CGR residues have an epitope involving residues 90-165 and the immunogenic 15mer peptide (YYVFFEEQEDEIIGF), residues, 352-366. Because that peptide can decrease the stimulating TSHRAb activity of these Graves IgGs in assays with the Mc2 chimera alone, we speculate that this complex epitope may be important in an epitope spreading process involved in the formation of stimulating TSHRAbs.

Amino Acid Sequence↗

Thyroid-specific expression of cholera toxin A1 subunit causes thyroid hyperplasia and hyperthyroidism in transgenic mice.

Thyroid cell growth and function are regulated by hormones and growth factors binding to cell surface receptors that are coupled via G proteins, Gs and Gq, to the adenylyl cyclase and phospholipase C signal transduction systems, respectively. Activating mutations of the TSH receptor and G alpha s have been documented in subsets of thyroid neoplasms. To test the oncogenic potential of activated G alpha s in transgenic mice, we used the cholera toxin A1 subunit that constitutively activates G alpha s and used the rat thyroglobulin gene promoter for targeting this transgene (TGCT) to thyroid follicular cells. Three (M1392, F1358, and F1286) of six founders identified were able to transmit the transgene to their offspring and thyroid glands from these mice contained elevated levels of cAMP. Concentrations of serum thyroxine were elevated as early as 2 months of age (M 1392 and F 1286). F1358 mice were euthyroid until 8 months of age, at which time they developed hyperthyroidism. All three TGCT lines developed thyroid hyperplasia independent of their thyroxine levels. DNA image analysis of thyroid follicular cells from both the hyper and euthyroid mice showed that DNA index and "S+G2/M" phase were increased compared with normal, changes similar to that seen in poor prognosis human carcinomas. These data suggest that the G alpha s-adenylyl cyclase-cAMP pathway has an important role in thyroid hyperplasia and the transgenic mouse models reported herein will allow further examination of the role of this pathway in thyroid oncogenesis.

Adenylyl Cyclases↗

Characterization of monoclonal thyroid-stimulating and thyrotropin binding-inhibiting autoantibodies from a Hashimoto's patient whose children had intrauterine and neonatal thyroid disease.

A multiplicity of TSH receptor autoantibodies (TSHRAbs) have been characterized after subcloning heterohybridomas produced from the lymphocytes of a patient who has Hashimoto's thyroiditis and had three children with intrauterine or neonatal hyperthyroidism. Twelve clones produced stimulating TSHRAbs that increased cAMP levels and iodide uptake in rat FRTL-5 thyroid cells and increased cAMP levels in Chinese hamster ovary (CHO) cells transfected with the human TSHR; like 95% of Graves' stimulating TSHRAbs, all 12 have their functional epitope on the N-terminus of the TSHR extracellular domain, requiring residues 90-165 for activity. All 12 bind to human thyroid membranes in the absence, but not the presence, of TSH, but are only weak inhibitors of TSH binding in assays measuring TSH binding-inhibiting Igs (TBIIs). In contrast, 8 different clones produced TSHRAbs that did not increase cAMP levels, but, instead, exhibited significant TBII activity. Four inhibited the ability of TSH or a stimulating TSHRAb to increase cAMP levels and had their functional epitope on the C-terminal portion of the TSHR external domain, residues 261-370, mimicking the properties of blocking TSHRAbs that cause hypothyroidism in patients with idiopathic myxedema. The 4 other TBIIs inhibited the ability of TSH, but not that of a stimulating TSHRAb, to increase cAMP levels, like TBIIs in Graves' patients. The functional epitope for 3 of these Graves'-like TBIIs was residues 90-165; the functional epitope for the fourth was residues 24-89. The fourth also increased arachidonic acid release and inositol phosphate levels in FRTL-5 thyroid cells and exhibited conversion activity, i.e. the ability to increase cAMP levels in the presence of an anti-human IgG. Thus, this TBII exhibited signal transduction activity, unlike the other 3 Graves'-like TBIIs. The patient, therefore, has stimulating TSHRAbs and 3 different types of TBIIs, each with different functional properties and different epitopes on the TSHR.

Adult↗

Changes in epitopes for thyroid-stimulating antibodies in Graves' disease sera during treatment of hyperthyroidism: therapeutic implications.

To determine whether there are changes in epitope recognition by stimulating TSH receptor antibodies (TSHRAbs) during treatment of hyperthyroidism and to evaluate the clinical relevance of such changes, we serially measured the activity of IgG preparations from 39 patients with Graves' disease over an 8-month period. To measure epitope changes of the stimulating TSHRAbs, we used Chinese hamster ovary (CHO) cells transfected with wild-type human TSHR (hTSHR) or TSHR chimeras with residues 90-165 (Mc2) substituted by equivalent residues of the rat LH/CG receptor. When initially examined, 37 of the 39 patients had significant stimulating TSHRAb activity measured with wild-type CHO-hTSHR cells. Serial measurements of stimulating TSHRAb activity in Mc2 chimera-transfected cells divided the 39 patients into three distinct groups. Thus, 10 patients (heterogeneous epitope group) exhibited low but significant activity in Mc2 chimera assays at the start of the study; 10 patients who were initially negative in Mc2 chimera assays remained negative (persistently homogeneous epitope group); and 19 patients who were initially negative in Mc2 chimera assays became transiently or persistently positive during treatment, despite a simultaneous decrease in TSHRAb activity measured with wild-type TSHR (changing epitope group). The functional stimulating TSHRAb epitope thus changed from residues 90-165 to residues outside this region in the last group, which comprises nearly two-thirds of the initially Mc2-negative patients (19 of 29) and one-half of all patients (19 of 39). Patients in the changing epitope group responded more quickly and to lower doses of methimazole than patients in the persistently homogeneous epitope group, behaving in this respect exactly as the patients in the heterogeneous epitope group. Additionally, although the decrease in stimulating TSHRAb activities during the 8-month treatment period was similar in the two groups, the thyrotropin binding inhibitor immunoglobulin (TBII) activities decreased more rapidly in patients in the persistently homogeneous epitope group than in patients in the changing epitope group (P < 0.05). There were no differences in initial stimulating TSHRAb or TBII activities, degree of hyperthyroidism, goiter size, or prior duration of symptoms between the persistently homogeneous epitope group and changing epitope group. In summation, we show that the epitopes of stimulating TSHRAbs in Graves' disease patients may change during their clinical course or treatment period, and that the change is from antibodies recognizing N-terminal TSHR residues 90-165 to antibodies recognizing other regions of the TSHR. We also show that the development of stimulating TSHRAbs with this heterogeneous epitope or their presence at the initial screening for disease activity seems to be associated with increased responsiveness to antithyroid drug therapy. We suggest, therefore, that Mc2 chimera assays may be useful to predict the response of patients to antithyroid drug therapy.

Animals↗

Flow cytometric analyses of antibody binding to Chinese hamster ovary cells expressing human thyrotropin receptor.

To develop a method that can be used to directly detect binding of antibodies to TSH receptor (TSHr), we employed Chinese hamster ovary (CHO) cells permanently transfected with a human TSHr complementary DNA (CHOR). These cells showed increased cAMP production when treated with either human TSH or thyroid-stimulating antibodies and decreased TSH-mediated cAMP production when treated with stimulation-blocking antibodies. We employed flow cytometry and rabbit antibodies against the extracellular domain of the TSHr (ETSHr) to test whether these cells can be used to directly detect and quantitate the binding of anti-TSHr antibodies. Rabbit anti-ETSHr bound specifically to CHOR cells, and the binding could be blocked with purified ETSHr. To test the feasibility of using these cells for epitope mapping, we tested the binding of rabbit antibodies raised against several synthetic TSHr peptides. Rabbit antipeptide 92 (amino acids 12-30) and 91 (amino acids 32-46) showed little or no binding to the CHOR cells. In contrast, antibodies raised against peptides 93 (amino acids 316-330), 95 (aa 325-345), 3A (aa 357-372), 367 (aa 367-386), and 1B (aa 362-376) showed significant binding to the CHOR cells. The specificity of binding of antipeptide antibodies was demonstrated by a complete inhibition of binding by corresponding peptides. When TSH-binding inhibitory Ig-positive sera from 15 patients with hyperthyroidism were tested, 8 of them showed specific binding to the CHOR cells compared to their relative binding to normal CHO cells; sera from all normal individuals tested did not exhibit specific binding to CHOR cells. These studies showed the usefulness of CHOR cells and flow cytometry in epitope mapping using sera with known specificities and the potential usefulness of the technique to detect anti-TSHr antibodies in patient sera.

Animals↗

Phe576 plays an important role in the secondary structure and intracellular signaling of the human luteinizing hormone/chorionic gonadotropin receptor.

Recent studies have identified multiple activating mutations in the sixth transmembrane domain of LH/chorionic gonadotropin receptor (LH/CGR) in patients with male-limited precocious puberty. Computer analysis suggested that these mutations had an effect on the secondary structure of the third cytoplasmic loop and sixth transmembrane domain, and that Phe576 was a critical conformational bridging residue between these regions that might be important for receptor activity. We made four amino acid substitutions of the Phe576 (F576I, F576G, F576Y, F576E) in the LH/CG receptor to analyze its functional role. Computer analysis of secondary structure predicted that the F576E mutant changed the secondary structure to a totally helical conformation in the region of the third intracellular and sixth transmembrane domain. In contrast, the F576G, F576I, and F576Y mutants were predicted to change the helical conformation in the region to an extended conformation. In expression studies, mutations of Phe576 produced functional changes in cAMP and inositol phosphate (IP) signaling, and human CG (hCG) binding. Mutations predicted to cause an extended conformation exhibited two functional patterns: first, constitutively activating in cAMP signaling without changes in IP signaling or hCG binding (F576I and F576G), and second, constitutively activating in cAMP signaling with decreased hCG-induced cAMP and IP signaling and with both higher affinity and lower capacity of hCG binding (F576Y). The mutation predicted to cause a totally helical conformation resulted in no cAMP response and a minimal IP response to hCG stimulation, with negligible hCG binding (F576E). These data suggest that the common change induced by the F576I, F576G, and F576Y mutations to an extended conformation on the third cytoplasmic loop and sixth transmembrane domain of the LH/CGR results in increased Gs coupling and activation of adenylyl cyclase. The F576Y mutation appears to have an additional effect, beyond a modification in receptor conformation, that leads to higher affinity and lower capacity of hCG binding, as well as altered Gq coupling and phospholipase C activation. The F576E mutation has a distinct and different impact on receptor conformation, which leads to negligible hCG binding and minimal function; however, the F576E mutation may provide a clue to understanding the receptor mutations that result in loss of function and pseudohermaphroditism. We conclude that Phe576 plays an important role in the human LH/CGR with respect to receptor conformation, Gs coupling, and cAMP signaling consistent with predictions from mutations associated with male-limited precocious puberty.

Amino Acid Sequence↗

Cloning and characterization of the 4.2 kb region of the rat thyrotropin receptor promoter.

We previously identified an approximately 200 bp "minimal promoter" of the rat TSH receptor (TSHR) gene which is essential for the promoter activity. In the present study, we have cloned and characterized an upstream region of the TSHR promoter to disclose additional functional element(s). We screened a rat genomic library and obtained a DNA fragment which contained a 4.2 kb 5'-flanking region. This fragment was 2.5 kb longer than that we previously studied (1.7 kb). To assess the promoter activity, chimeric plasmids containing the 4.2 kb promoter and its 5'-deletions ligated to a chloramphenicol acetyltransferase gene were transfected into thyroid and non-thyroid cells. These plasmids expressed significant promoter activity in FRTL-5 and FRT thyroid cells, but not in BRL liver cells. The strongest promoter activity was expressed by the -199 bp promoter, and the longer promoter expressed rather decreased activity. Co-expression of thyroid transcription factor-1 (TTF-1) increased the activity of the promoter region from -3187 to -199 bp, which encompassed one or two TTF-1 binding sites we previously identified, but not the -4206 bp promoter. In addition, FRTL-5 stable transfectants each having a chimeric construct were cultured in the presence or absence of TSH. All transfectants expressed higher promoter activity in the absence of TSH than in the presence of TSH, in particular, the -3187 bp plasmid expressed significantly higher activity by comparison to the -2617 and -4206 bp constructs. This result indicates that the region between -3187 and -2617 bp may contribute to TSH/cAMP-induced suppression and also suggests that the region between -4206 and -3187 bp involves the element(s) for constitutive suppression of the promoter activity. These results not only suggest that the 4.2 kb upstream region of the TSHR gene possibly contains some elements for the regulation of the gene expression, but also emphasize the importance of the minimal promoter region which we previously identified for the efficient expression of the gene.

Animals↗

Role of MHC class I molecules in autoimmune disease.

The MHC class I molecules play a pivotal role in triggering cellular immune responses, binding and presenting intracellularly derived peptide antigens. Studies of MHC class I expression revealed a complex regulatory mechanism that integrates tissue-specific and hormonal modulation. Dynamic regulation occurs in the thyroid, in response to hormonal repression by TSH and stimulation by thyroid hormone. This dynamic cycle provides the basis for proposing the model that such regulation is important to maintain tolerance to self-antigens in tissues synthesizing large amounts of secretory proteins. Failure to appropriately regulate class I levels is predicted to result in autoimmunity. In support of this model, we found that class I-deficient mice are resistant to the experimentally induced autoimmune diseases, SLE, and blepharitis. Furthermore, pharmacological treatment with an agent that reduces class I expression also reduces the incidence and severity of both experimental and spontaneous autoimmune SLE.

Animals↗

Induction of Graves-like disease in mice by immunization with fibroblasts transfected with the thyrotropin receptor and a class II molecule.

Graves disease is an autoimmune thyroid disease characterized by the presence of antibodies against the thyrotropin receptor (TSHR), which stimulate the thyroid to cause hyperthyroidism and/or goiter. By immunizing mice with fibroblasts transfected with both the human TSHR and a major histocompatibility complex class II molecule, but not by either alone, we have induced immune hyperthyroidism that has the major humoral and histological features of Graves disease: stimulating TSHR antibodies, thyrotropin binding inhibiting immunoglobulins, which are different from the stimulating TSHR antibodies, increased thyroid hormone levels, thyroid enlargement, thyrocyte hypercellularity, and thyrocyte intrusion into the follicular lumen. The results suggest that the aberrant expression of major histocompatibility complex class II molecules on cells that express a native form of the TSHR can result in the induction of functional anti-TSHR antibodies that stimulate the thyroid. They additionally suggest that the acquisition of antigen-presenting ability on a target cell containing the TSHR can activate T and B cells normally present in an animal and induce a disease with the major features of autoimmune Graves.

Animals↗

A case of male-limited precocious puberty caused by a point mutation in the second transmembrane domain of the luteinizing hormone choriogonadotropin receptor gene.

We describe a Japanese patient with male-limited precocious puberty who has a heterozygous thymine to cytosine (T to C) transition at nucleotide 1193; the mutation encodes a methionine to threonine substitution in residue 398 (M398T) of transmembrane helix 2 of the luteinizing hormone/choriogonadotropin receptor. Transfected into COS-7 cells, M398T exhibited constitutively high basal cAMP levels but retained an agonist-induced cAMP response. The constitutively higher cAMP levels caused by M398T are consistent with Leydig cell activation and precocious puberty in the patient. By comparison to wild type receptor, M398T transfectants have significantly lower agonist-induced inositol phosphate (IP) levels at > 10(-10) M hCG concentrations and a higher apparent affinity for binding hCG. These data suggest that the M398T substitution alters Gq coupling and phospholipase-C activation, as well as Gs, coupling and adenylyl cyclase activity, and changes the conformation of the extracellular domain of the receptor.

Amino Acid Sequence↗

Iodide, cytokines and TSH-receptor expression in Graves' disease.

The present study was initiated to characterize thyrotropin receptor (TSH-R) expression in thyroids from patients with Graves' disease, as well as parameters that influence TSH-R expression either causally, such as interferon-gamma (IFN-gamma), the leading candidate among the cytokines thought to play a key role in the initiation of autoimmune thyroid disease, or therapeutically, such as iodide, which is used to prepare patients for surgery. Our data show that there is an average 4-fold increase of TSH-R mRNA levels in the thyroids of Graves' patients coming to surgery, which is paralleled by an increase in TSH-R protein levels and TSH binding capacity. The increase does not appear to be related to IFN-gamma since IFN-gamma transcripts are barely detectable in most Graves' patients. Iodide treatment causes a 2-fold decrease in TSH-R expression in association with significant decreases in major histocompatibility complex (MHC) class I and class II gene expression. These last data are compatible with a recently enunciated "transcription factor hypothesis" according to which abnormally high TSH-R and MHC class I and class II gene expression in Graves' thyroids are the result of a loss of the normal negative regulation of these genes necessary to allow the normal growth and function of the gland, yet preserve self-tolerance.

Gene Expression↗

Transformation of rat thyroid follicular cells stably transfected with cholera toxin A1 fragment.

Activating mutations of the alpha subunit of the G protein G(s) (G(s)alpha) have been identified in thyroid adenomas and well-differentiated thyroid carcinomas. To examine the role of activating mutations of G(s)alpha in thyroid neoplasia, we transfected rat follicular thyroid (FRTL-5) cells with a transgene in which the cholera toxin A1 subunit (CTA1) is expressed under the control of the rat thyroglobulin gene promoter (TG). This transgene recapitulates effects of the activating mutation of G(s)alpha by its ability to ADP-ribosylate and thereby inhibit GTPase activity of endogenous G(s)alpha molecules. To assess the effect of G(s)alpha activation on cell growth, TGCTA1, or control, pM AM neotransfected FRTL-5 cells (10(4)-10(6)) were injected s.c. into nude mice. TGCTA1-transfected FRTL-5 cells grow in nude mice, whereas control cells do not. Tumor histology revealed increased mitotic activity, infiltration of skeletal muscle, perineural invasion, and plugging of lymphatic spaces. In addition, nude mice injected with TGCTA1 transfected cells or xenografted with the tumors developed metastases to lung. These results indicate that activation of G(s)alpha and constitutive production of cAMP in FRTL-5 cells can result in TSH-independent cellular proliferation and neoplastic transformation.

Adenosine Diphosphate Ribose↗

Increased cyclic adenosine 3',5'-monophosphate inhibits G protein-coupled activation of phospholipase C in rat FRTL-5 thyroid cells.

Thyroid cell growth and function are regulated by several hormones and growth factors that bind to cell surface receptors coupled via G proteins, Gs and Gq, to stimulation of adenylyl cyclase and phospholipase C (PLC), respectively. We created a permanently transfected FRTL-5 cell line (TG8) in which the thyroglobulin gene promoter directs expression of the cholera toxin (CT) A1 subunit (CTA1). CTA1 catalyzes ADP ribosylation of Gs alpha, which results in persistent activation of Gs alpha. Activated Gs alpha causes constitutive stimulation of adenylyl cyclase and increases levels of intracellular cAMP. Because G protein-coupled signaling pathways exhibit cross-talk, we compared TG8 cells to FRTL-5 cells transfected with the neomycin resistance gene (TG4) to determine whether constitutive stimulation of adenylyl cyclase influences the PLC pathway. PLC activity was assessed by measuring levels of total inositol phosphates (IPs) in TG4 and TG8 cells that had been preincubated with myo-[3H]inositol for 2 days. Baseline values of [3H]IP production were similar for the two cell lines. Incubation of TG4 control cells with 10(-8) M TSH, 300 microM ATP, and 100 microM norepinephrine for 60 min stimulated 2.5-, 8.1-, and 3.4-fold increases, respectively, in [3H]IP production over the control value. By contrast, there was no [3H]IP response to any of these ligands in TG8 cells. TG8 cells exhibit a decrease in [35S]adenosine 5'-(gamma-thio)triphosphate binding to their cell surface compared to TG4 control cells counterparts, but no decrease in [125I]TSH binding. Treatment of TG4 cells with 100 ng/ml CT, 50 microM forskolin, or 1 mM 8-bromo-cAMP for 2 days reproduced the loss of ligand-stimulated [3H]IP synthesis present in TG8 cells. Although levels of immunoreactive Gq alpha and Gq alpha 11 were normal in TG8 cells, sodium fluoride-induced [3H]IP production was also inhibited. Levels of immunoreactive PLC beta 3, the dominant subtype of PLC beta in FRTL-5 cells, were not altered in TG8 cells or by CT treatment of TG4 cells. These data indicate that elevated levels of cAMP can inhibit the activity of G protein-coupled PLC. Further study of this model will elucidate our understanding of the exact mechanism responsible for this interaction.

Adenosine Triphosphate↗

Thyrotropin (TSH) receptor antibodies (TSHrAb) can inhibit TSH-mediated cyclic adenosine 3',5'- monophosphate production in thyroid cells by either blocking TSH binding or affecting a step subsequent to TSH binding.

In the present study, rabbit antibodies that possess thyroid stimulation-blocking activity were used to investigate potential mechanisms by which TSH receptor antibodies can inhibit thyroid cell function. The antibodies were produced against two synthetic peptides corresponding to amino acids 357-372 (p357) and 367-386 (p367) of the human TSHr (hTSHr). By enzyme-linked immunosorbent assay, both antisera (alpha 357 and alpha 367) had high titers ( > 1:100,000) of IgG against their respective peptides and recombinant extracellular TSHr protein (ETSHr); alpha 357 had a low IgG titer to p367 (1:800), and alpha 367 had a low IgG titer to p357 ( < 1:200). Based on competitive inhibition studies, alpha 357 and alpha 367 displayed similar relative binding affinities for their respective peptides and for recombinant ETSHr. When tested by commercial RRA, alpha 357 did not block (TSH binding inhibition index, -3.7%), whereas alpha 367 blocked TSH binding to TSHr (TSH binding inhibition index, 53.9%). The blocking effect of alpha 367 could be reversed by incubating the antiserum with p367 before assay. When applied alone to FRTL-5 cells, IgG from alpha 357 inhibited [compared to normal rabbit IgG (NRI); P < 0.01] based cAMP production by the cells, whereas IgG from alpha 367 did not. IgG from both alpha 357 and alpha 367, however, were able to inhibit (P < 0.001) TSH-mediated cAMP production by FRTL-5 cells [bovine (b) TSH, 2.5 x 10(-10) M; cAMP (mean +/- SD; picomoles per ml): NRI, 62.5 +/- 6.1; alpha 357, 12.2 +/- 2.4; alpha 367, 36.2 +/- 3.5]. Alpha 357 continued to inhibit (P < 0.05) cAMP production by FRTL-5 cells in 10(-8) M bTSH, whereas alpha 367 no longer inhibited cAMP production at bTSH concentrations above 5 x 10(-10) M. Compared to NRI, both alpha 357 and alpha 367 were also able to inhibit (P < 0.001) Graves' IgG-mediated cAMP production by FRTL-5 cells. When IgG were tested on FRTL-5 cells in the presence of 10(-7) M forskolin, only alpha 357 inhibited (P < 0.001) cAMP production (NRI, 75.1 +/- 4.8; alpha 357, 52.3 +/- 4.5; alpha 367, 77.2 +/- 1.4). To determine whether the inhibitory effect of alpha 357 on forskolin-mediated stimulation was thyroid cell dependent, IgG were tested on Chinese hamster ovary (CHO) cells transfected with the complementary DNA of the hTSHr (CHO-R). Again, alpha 357 inhibited (P < 0.005) cAMP production mediated by forskolin (at 10(-7) M; NRI, 68.7 +/- 4.4; alpha 357, 36.8 +/- 5.7; alpha 367, 64.6 +/- 8.5). alpha 357 did not inhibit forskolin-mediated cAMP production by untransfected CHO cells (CHO-N), indicating that the inhibitory effect of alpha 357 on forskolin stimulation was TSHr dependent. In addition, alpha 357 inhibited (P < 0.01) basal cAMP production by CHO-R cells, but not by CHO-N cells. alpha 367 had no effect on the basal cAMP production in either CHO-R or CHO-N cells. Neither alpha 357 nor alpha 367 inhibited cholera toxin-mediated cAMP production in FRTL-5 cells. In all relevant bioassays, the inhibitory effects of alpha 357 and alpha 367 could be reversed by preincubating the IgG with the respective peptides. From these data, we conclude that 1) alpha 367 binds to the ETSHr and blocks TSH-mediated cAMP production by inhibiting TSH from binding to its receptor; 2) alpha 357 binds to the TSHr and, without blocking TSH binding, inhibits TSH-mediated cAMP production at a step(s) subsequent to ligand binding that affects adenylate cyclase activity; and 3) forskolin-mediated cAMP production by thyroid cells can be inhibited by IgG that bind directly to the TSHr.

Animals↗