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L D Kohn

Publications and source records attributed to L D Kohn.

At least 19 recordsLinked to original sources

Regulation of 3-hydroxy-3-methylglutaryl coenzyme A reductase gene expression in FRTL-5 cells. I. Identification and characterization of a cyclic AMP-responsive element in the rat reductase promoter.

Thyrotropin (TSH) increases 3-hydroxy-3-methylglutaryl coenzyme A (HMG-CoA) reductase gene transcription in FRTL-5 rat thyroid cells, and the effect of TSH can be mimicked by cAMP. Sequence analysis of the rat reductase promoter has revealed a hitherto unnoticed cAMP-responsive element (CRE)-like octamer. This octamer is located between 53 and 60 nucleotides downstream of the sterol regulatory element 1; its first 6 nucleotides are identical to the consensus somatostatin CRE, and the entire octamer is identical to the fos CRE. A synthetic oligonucleotide containing the HMG-CoA reductase CRE-like octamer (RED CRE) formed protein-DNA complexes with nuclear extracts from FRTL-5 cells, which could be prevented by unlabeled CRE-containing oligonucleotides whose flanking sequences were otherwise nonidentical. The complexes were specifically supershifted by anti-CREB antibodies. FRTL-5 cells transfected with a fusion plasmid carrying the bacterial chloramphenicol acetyl transferase (CAT) under the control of the HMG-CoA reductase promoter displayed CAT activity, which was specifically stimulated by TSH. In contrast, CAT activity in FRTL-5 cells transfected with similar constructs carrying mutations in the reductase CRE was significantly lower and did not increase after TSH challenge. We suggest that the HMG-CoA reductase gene contains a functional CRE, important for TSH regulation of transcription. The data presented provide the molecular basis for a novel regulatory mechanism for HMG-CoA reductase gene expression in rat thyroid cells, which involves the direct effect of cAMP.

Animals

Hormonal modulation of major histocompatibility complex class I gene expression involves an enhancer A-binding complex consisting of Fra-2 and the p50 subunit of NF-kappa B.

Hydrocortisone decreases major histocompatibility complex (MHC) class I gene expression in rat thyroid cells and counteracts increases induced by interferons. Using FRTL-5 cells transfected with class I promoter-reporter gene chimeras, we show that hydrocortisone action is transcriptional and mediated by an element located between 180 and 170 base pairs upstream of the start of transcription. Gel shift assays reveal that hydrocortisone causes the decrease of a specific protein-DNA complex; this same complex, referred to as Mod-1, is increased by interferon. Oligonucleotide competition assays reveal that the Mod-1 complex is associated with enhancer A of the class I gene, -180 to -170 base pairs (5'-GGGGAGTCCCC-3'), immediately upstream of the interferon response element. Antibodies to fra-2, a fos family member, and to the p50, but not the p65, subunit of NF-kappa B supershift the Mod-1 complex. We suggest that hydrocortisone decreases MHC class I gene expression by reducing the formation of Mod-1, which contains both p50 and fra-2; interferon reverses the hydrocortisone effect and increases Mod-1 formation. These observations are relevant to the molecular basis of hydrocortisone therapy in autoimmune thyroid disease and to the actions of interferon to exacerbate or induce autoimmune disease.

Animals

Periocular inflammation in mice with experimental systemic lupus erythematosus. A new experimental blepharitis and its modulation.

Experimental systemic lupus erythematosus (SLE) can be induced in mice by immunization with a human monoclonal anti-DNA Ab, bearing a major Id 16/6Id. Immunized mice initially produce Abs to 16/6Id, DNA and nuclear Ags, and subsequently develop various clinical manifestations including leukopenia and renal immune complex disease. MHC class I Ags play a critical role in the induction and progression of experimental SLE. The present study reports that ocular changes also occur in mice with experimental SLE. The ocular disease is characterized by bilateral subacute and chronic inflammation of the eyelids (blepharitis) with immune complex IgG deposition and hypertrophic meibomian glands. The severity of ocular changes was strain dependent: most severe in 129 mice, less intense in BALB/c animals and only minimal in C3H.SW mice. No blepharitis developed in mice deficient in MHC class I expression. Further, the disease was strongly inhibited in BALB/c mice treated with methimazole, an agent that has been shown to repress transcription of MHC class I. In these cases, there was no IgG deposition and a decreased infiltration of inflammatory cells in the eyelids. These observations thus suggest that, similar to the observation with experimental SLE, MHC class I is critical in the onset of this experimental autoimmune blepharitis. The new experimental eye disease described here provides an animal model for chronic blepharitis in humans, a common condition for which such a model has been sought.

Animals

Photoaffinity labeling of lysosomal membrane proteins with [125I]diiodotyrosine, a system h ligand.

Percoll-purified rat thyroid FRTL-5 cell lysosomes were photoaffinity-labeled with [125I]diiodotyrosine to identify proteins which bind diiodotyrosine, a ligand for lysosomal transport system h. SDS-PAGE and autoradiography of these membranes showed specific labeling of a 70-kDa protein and weak labeling of three smaller proteins. [125I]Diiodotyrosine photolabeling of the 70-kDa protein was specifically competed against by ligands of lysosomal transport system h ligands. The 70-kDa protein was photolabeled more strongly in lysosomal membranes isolated from thyrotropin-stimulated cells when compared with those grown in the absence of thyrotropin, consistent with previous demonstrations that thyrotropin stimulates system h transport. The 70-kDa protein may represent some portion of the system h carrier protein.

Affinity Labels

The thyrotropin receptor.

This chapter has outlined the complex process required for thyroid growth and function. Both events are regulated by TSHR via a multiplicity of signals, with the aid of and requirement for a multiplicity of hormones that regulate the TSHR via receptor cross-talk: insulin, IGF-I, adrenergic receptors, and purinergic receptors. Cross-talk appears to regulate G-protein interactions or activities induced by TSH as well as TSHR gene expression. The TSHR structure and its mechanism of signal transduction is being rapidly unraveled in several laboratories, since the recent cloning of the receptor. In addition, the epitopes for autoantibodies against the receptor that can subvert the normal regulated synthesis and secretion of thyroid hormones, causing hyper- or hypofunction, have been defined. Studies of regulation of the TSHR minimal promotor have uncovered a better understanding of the mechanisms by which TSH regulates both growth and function of the thyroid cell. A key novel component of this phenomenon involves TSH AMP positive and negative regulation of the TSHR. Negative transcriptional regulation is a common feature of MHC class I genes in the thyroid. Subversion of negative regulation or too little negative regulation is suggested to result in autoimmune disease. Methimazole and iodide at autoregulatory levels may be important in reversing this process and returning thyroid function to normal. Their action appears to involve factors that react with the IREs on both the TSHR and the TG promoter. Too much negative regulation, as in the case of ras transformation, results in abnormal growth without function. TTF-1 is implicated as a critical autoregulatory component in both positive and negative regulation of the TSHR and appears to be the link between TSH, the TSHR, TSHR-mediated signals, TG and TPO biosynthesis, and thyroid hormone formation. Differentially regulated expression of the TSHR and TG by cAMP and insulin depend on differences in the specificity of the TTF-1 site, that is, the lack of Pax-8 interactions with the TSHR, and the IRE sites. Single-strand binding proteins will become important in determining how TSHR transcription is controlled mechanistically.

Amino Acid Sequence

The thyrotropin (TSH) receptor transmembrane domain mutation (Pro556-Leu) in the hypothyroid hyt/hyt mouse results in plasma membrane targeting but defective TSH binding.

The hyt/hyt mouse is hypothyroid because of a mutation in the TSH receptor (TSH-R). In this report, we confirm the presence of a Pro to Leu mutation in amino acid 556 of the fourth transmembrane domain (TM4) of the TSH-R. This Pro is highly conserved in members of the G protein-coupled seven-transmembrane family of receptors. Insertion of this mutation into the wild-type rat receptor eliminated TSH binding and receptor function in transfected 293 and COS cells. Wild-type TSH-R conferred a 7.4-fold increase in cAMP and a 2.3-fold stimulation of a cAMP-responsive reporter gene. The P556L mutant receptor elicited no increase in cAMP or the reporter gene. Cells transfected with wild-type receptor bound TSH with a Kd of 3.3 x 10(-10) M, whereas no TSH binding was detected with the P556L mutant. Because the P556L mutation occurs in a receptor region (TM4) that is not expected to alter the binding of TSH, additional studies were performed to examine receptor processing and cellular localization. Mutant receptors from solubilized membranes also failed to bind TSH, indicating that the absence of binding to intact cells was not accounted for intracellular trapping of the mutant receptor. Western blot analyses demonstrated that the mutant and wild-type receptors were processed through a similar series of precursors and that a mature 95-kilodalton form of the mutant TSH-R was produced, consistent with its insertion into the plasma membrane. Immunofluorescence studies confirmed expression of the P556L mutant on the cell surface of transfected cells and in thyroid tissue from hyt/hyt mice. Although the extracellular domain of the TSH-R is sufficient for high affinity binding of TSH, we conclude that the hyt mutation in the fourth transmembrane domain eliminates TSH binding. These results suggest interactions between the extracellular and transmembrane domains of the TSH-R and indicate that this highly conserved proline is required for normal receptor structure and function.

Amino Acid Sequence

A new constitutively activating point mutation in the luteinizing hormone/choriogonadotropin receptor gene in cases of male-limited precocious puberty.

A single point mutation that encodes an aspartic acid (Asp578) to glycine substitution in the LH/CG receptor (LH/CGR) gene, D578G, was recently found in American patients with familial male-limited precocious puberty and in a Japanese patient with a sporadic form of the disorder. Transfection of the mutant, compared to the wild-type, LH/CGR complementary DNA into COS-7 cells results in higher basal cAMP production, but a normal agonist-induced response; the mutation is, therefore, proposed to constitutively activate Leydig cells and elevate serum testosterone, despite low levels of gonadotropin. In the current study we examined two additional Japanese patients with male-limited precocious puberty without a family history of the disease. We describe a heterozygous cytosine (C) to thymine (T) transition at nucleotide 1715 in both; the mutation encodes an alanine to valine substitution in codon 572 of transmembrane helix 6, A572V. Transfected into COS-7 cells, the A572V mutant exhibited the same constitutively high basal cAMP levels and normal agonist-induced cAMP response as the D578G mutant. We conclude that the constitutively higher cAMP levels caused by the A572V mutation led to Leydig cell activation and male-limited precocious puberty, as in the previously described D578G mutation. As the mother of one of the two patients had the same heterozygous mutation, this patient represents the first recognized case of inherited male-limited precocious puberty in the Japanese population. The previously described D578G mutant did not increase basal or agonist-induced inositol phosphate production in transfected COS-7 cells, or the number of LH/CGRs or their affinity for LH/CG. In contrast, transfection of the A572V mutation in COS-7 cells exhibited significantly higher inositol phosphate levels basally and at 10(-11) mol/L hCG, but significantly lower inositol phosphate levels at 10(-7) mol/L hCG. These data suggest that the A572V mutation of the LH/CGR may have effects on the guanine nucleotide binding protein which activates phospholipase C (Gq) coupling and phospholipase-C activation in addition to its effects on Gs coupling and activation of adenylyl cyclase. A572V-transfected cells also exhibited a higher affinity, despite an apparent decrease in the number of binding sites, for [125I]hCG, compared to transfectants with the wild-type LH/CGR. We hypothesize that these differences between the A572V and D578G mutations reflect a greater impact of the A572V mutation on receptor conformation.

Base Sequence

Single strand DNA-binding proteins and thyroid transcription factor-1 conjointly regulate thyrotropin receptor gene expression.

An element, -186 to -176 base pairs (bp), in the minimal TSH receptor (TSHR) promoter binds thyroid transcription factor-1 (TTF-1) and is important for both constitutive expression and TSH/cAMP-induced negative autoregulation of the TSHR in thyroid cells. An element on the noncoding strand of the TSHR, contiguous with the 5'-end of the TTF-1 element, has single strand binding activity. It is distinct from the TTF-1 site, as evidenced by competition experiments using gel shift assays; but the association of the two elements is not random. Thus, the single strand binding protein (SSBP) element also exists contiguous to the 5'-end of an upstream TTF-1 site, -881 to -866 bp; mutation of two conserved nucleotides in each SSBP element results in the loss of SSBP binding and cross-competition. Transfection experiments indicate that full, constitutive TSHR gene expression in FRTL-5 thyroid cells requires the binding of both SSBPs and TTF-1, since mutation of either element halves thyroid-specific promoter activity, whereas mutation of both decreases promoter activity to values near those of a control vector. Transfection experiments with rat liver cells support their independent activities and show that the SSBP site contributes to TSHR gene expression in non-thyroid tissue. The SSBPs function conjointly with TTF-1 in thyroid-specific, TSH/cAMP-induced negative autoregulation of the TSHR. Thus, TSH or forskolin-treated FRTL-5 cells coordinately decrease TSHR RNA levels and TSHR DNA binding to both the SSBPs and TTF-1; also the maximal TSH/cAMP-induced decrease in gene expression requires both elements. The TSH-induced effect in each case is inhibited by cycloheximide; the TSH-induced decrease in SSBP/DNA complex formation requires the presence of insulin or calf serum, exactly as does TSH-induced down-regulation of TSHR RNA levels. In sum, full, constitutive expression of the TSHR in thyroid cells requires TTF-1 and the SSBPs to bind separate, contiguous elements on the TSHR promoter. TSH/cAMP decreases the binding of each factor to its respective site, thereby decreasing TSHR gene expression. The role of the SSBP and TTF-1 sites in constitutive TSHR expression and in TSH/cAMP-induced negative regulation of the TSHR is, therefore, additive and independent.

Animals

Thyrotropin stimulation of the lutropin/choriogonadotropin receptor: different sites mediate agonist activity and high affinity binding.

Surprisingly, thyrotropin (TSH) can increase cAMP and inositol phosphate (IP) levels in Cos-7 cells transfected with the lutropin (LH)/choriogonadotropin (CG) receptor (LH/CGR) as well as LH or CG, as evidenced by similar EC50 and maximal stimulation values. Additionally surprising, TSH activation is evident, despite markedly reduced levels of high affinity TSH binding by comparison to CG (Hidaka A, et al. 1993 Biochem Biophys Res Commun 196:187-195). In this report, we questioned whether the unusual TSH activity, as well as the discrepancy between TSH activity and binding, might reflect the existence of distinct agonist and binding sites on the LH/CGR extracellular domain and the ability of TSH to interact with the former despite a minimal interaction with the latter. We evaluated this possibility by using two chimeras spanning the extracellular domain of the TSHR and the LH/CGR:Mc1 + 2, where residues 8-165 of the TSHR are substituted, and Mc2 + 3 + 4, where residues 90-370 are replaced with the corresponding peptide segment from the LH/CGR. After transfection in Cos-7 cells, Mc2 + 3 + 4 exhibits higher affinity for CG than wild-type LH/CGR, but has no CG agonist response in assays measuring cAMP or inositol phosphate (IP) levels. Conversely, the Mc1 + 2 chimera exhibits significantly decreased affinity for CG, but CG agonist activity is comparable to wild-type LH/CGR in cAMP and IP assays. These data show that the extracellular domain of the LH/CGR does have distinct sites for CG binding and agonist activity: the C-terminus in Mc2 + 3 + 4 is important for high affinity CG binding, whereas the N-terminus in Mc1 + 2 is able to exhibit a CG agonist response, despite low affinity binding. When evaluated using TSH, Mc1 + 2, with the C-terminus of the TSHR present, exhibits high affinity TSH binding comparable to wild-type TSHR. Unexpectedly, Mc1 + 2, with the substitution of the N-terminus of the extracellular domain of the LH/CGR, exhibits even better TSH agonist activity than wild-type TSHR, not a loss of activity. Thus, the N-terminus of the extracellular domain of the LH/CGR can couple TSH binding to signal transduction events even better than the N-terminus of the TSHR. This may, in part, explain why TSH has an unusual agonist activity in cells transfected with LH/CGR, despite relatively low affinity binding. Although distinct agonist and binding sites exist in the linear sequence of the extracellular domain, the activity of the two sites is interdependent.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals

A sporadic case of male-limited precocious puberty has the same constitutively activating point mutation in luteinizing hormone/choriogonadotropin receptor gene as familial cases.

Familial male-limited precocious puberty (FMPP) is an autosomal dominant disorder characterized by marked elevation of serum testosterone despite low levels of gonadotropin. Recently, a single point mutation in the LH/hCG receptor (LH/CGR) gene was found in FMPP families that constitutively activates the LH/CGR, causing Leydig cell activation and precocious puberty. Among the Japanese population, only four sporadic cases of male-limited precocious puberty have been reported. In the current study, we examined one of the four reported Japanese patients with sporadic male-limited precocious puberty and found the same mutation as that in the FMPP families. Genomic DNA was isolated, and the polymerase chain reaction (PCR) was performed to amplify a fragment of LH/CGR DNA encoding amino acid residues that include transmembrane helixes 5 and 6. Sequencing of the PCR products revealed a heterozygous adenosine-guanine transition at nucleotide 1733 in codon 578. The mutation encodes an aspartic acid578-glycine substitution in transmembrane helix 6. The mutant LH/CGR, created by site-directed mutagenesis in vitro, exhibited constitutively higher cAMP levels in transfected COS-7 cells than the wild-type LH/CGR, as described previously; however, basal inositol phosphate levels were not increased by transfection with complementary DNA for the mutant receptor. The concentration and affinity of [125I]hCG-binding sites were similar in cells transfected with the mutant and wild-type LH/CGR complementary DNAs, indicating that the mutant did not alter the production of receptor or its ability to bind human LH/CG. The sporadic occurrence of this case was confirmed by further studies. The mutation creates a recognition site for the restriction endonuclease MspI. Restriction digestion was positive for the mutant not digested by MspI, indicating that the patient's mutant allele was not inherited from his parents. DNA analysis of the patient and the parents, using microsatellite repeat markers, was compatible with biological paternity and maternity. We conclude that the aspartic acid578-->glycine mutation in the LH/CGR has arisen in the Japanese population and is the cause of a sporadic case of male-limited precocious puberty.

Aspartic Acid

[Anti-thyrotropin (TSH) receptor antibody binding epitopes of TSH receptor: site-directed mutagenesis approach].

Anti-TSH receptor antibodies are thought to be involved in the expression of autoimmune thyroid diseases, especially Graves' disease and idiopathic myxedema. Cloning of TSH receptor gene allowed us to study aspects of its structure and function at the molecular level, including autoantibody-binding sites. The long extracellular domain of TSH receptor was presumed to contain antibody-binding site. Site-directed mutagenesis of this domain defined regions important for autoantibodies. The C-terminal region of the extracellular domain, residues 295-306, 387-395 and tyrosine 385 were determinants of the "blocking-type" antibody, which were present in patients with primary hypothyroidism. And the N-terminal region, residues 34-37, 40, 42-45 and 52-56 were the site of the "stimulatory-type" antibody interactions, important in patients with Graves' disease.

Amino Acid Sequence

Role of cysteine residues in the extracellular domain and exoplasmic loops of the transmembrane domain of the TSH receptor: effect of mutation to serine on TSH receptor activity and response to thyroid stimulating autoantibodies.

The extracellular domain of the thyrotropin (TSH) receptor is the primary site with which TSH and receptor autoantibodies interact. Cysteines 494 or 569 in the 1st and 2nd exoplasmic loops, respectively, of the transmembrane domain of the TSH receptor are important in this process or in coupling ligand binding to signal generation. Thus, when either is mutated to serine, a receptor results which has no detectable TSH binding and no cAMP response to TSH or thyroid stimulating autoantibodies after transfection, despite the fact the mutant receptor is normally synthesized, processed, and integrated in the membrane, as evidenced by Western blotting using a TSH receptor-specific antibody. Additional site directed mutagenesis studies are performed in order to identify cysteine residues in the extracellular domain of the receptor which, with cysteines 494 and 569, are important for tertiary structure and receptor bioactivity.

Animals

Mutation of alanine 623 in the third cytoplasmic loop of the rat thyrotropin (TSH) receptor results in a loss in the phosphoinositide but not cAMP signal induced by TSH and receptor autoantibodies.

Thyrotropin (TSH) and IgG preparations from patients with Graves' disease increase inositol phosphate as well as cAMP formation in Cos-7 cells transfected with rat TSH receptor cDNA. Mutation of alanine 623 in the carboxyl end of the third cytoplasmic loop of the TSH receptor, to lysine or glutamic acid, results in the loss of TSH- and Graves' IgG-stimulated inositol phosphate formation but not in stimulated cAMP formation. There is no effect of the mutations on basal or P2-purinergic receptor-mediated inositol phosphate formation. The mutations do not affect transfection efficiency or the synthesis, processing, or membrane integration of the receptor, as evidenced by the unchanged amount and composition of the TSH receptor forms on Western blots of membranes from transfected cells. The mutations increase the affinity of the TSH receptor for [125I]TSH and decrease Bmax; however, cells with an equivalently decreased Bmax as a result of transfection with lower levels of wild type receptor do not lose either TSH-induced inositol phosphate formation or cAMP signaling activity. Thus, in addition to discriminating between ligand-induced phosphatidylinositol bisphosphate and cAMP signals, the mutation appears to cause an altered receptor conformation which affects ligand binding to its large extracellular domain.

Alanine

Peptide sequences from the hypervariable regions of two monoclonal anti-idiotypic antibodies against the thyrotropin (TSH) receptor are similar to TSH and inhibit TSH-increased cAMP production in FRTL-5 thyroid cells.

Monoclonal antibodies, D2 and 4G11, selected by the autoantiidiotypic approach following injection of thyrotropin (TSH) into mice, mimic TSH in binding to receptors on thyroid membranes. Based on TSH receptor transfection studies, D2 and 4G11 show unequivocal specificity for the TSH receptor. To see if the complementary determining regions (CDRs) of these antibodies share any primary sequence similarities to regions of TSH critical for receptor binding, we deduced the primary structure of the variable regions of D2 and 4G11 by sequencing the immunoglobulin mRNA. We found that CDR1 of 4G11K and CDR2 of D2 mu show sequence similarity to regions of TSH alpha and TSH beta that had been previously implicated in the interaction of the hormone with its receptor. We tested the inhibitory effects of synthetic peptides from D2 mu-CDR2 and 4G11K-CDR1 on the binding of the corresponding antibodies to rat thyroid FRTL-5 cells and found an EC50 of 0.1 and 1 microM, respectively. TSH-derived peptides with similarity to D2 mu-CDR2 and 4G11K-CDR1 showed a significant but lesser effect on the binding of 4G11 or D2 to thyroid cells. Additionally, we tested the effects of the CDR peptides and TSH-derived peptides on TSH-stimulated cAMP production in FRTL-5 cells and found that D2 mu-CDR2 and 4G11K-CDR1 inhibited this activity, D2 mu-CDR2 most strongly (EC50 10 microM). Thus, linear sequences from the CDRs of these autoantiidiotypic antibodies with similarity to sequences from both subunits of TSH appear to interact with the TSH receptor. These data support previous studies indicating the complexity of the interaction between TSH and its receptor and advance earlier findings that such immunologic approaches are useful in dissecting receptor-ligand interactions.

Animals

Hormonal regulation of major histocompatibility complex class I genes in rat thyroid FRTL-5 cells: thyroid-stimulating hormone induces a cAMP-mediated decrease in class I expression.

Thyrocytes normally express major histocompatibility complex (MHC) class I, but not class II, cell surface antigens. A rat thyrocyte cell line, FRTL-5, also expresses MHC class I antigens, in addition to a variety of thyroid-specific genes. Treatment of FRTL-5 thyrocytes with physiological concentrations of thyroid-stimulating hormone (TSH) has been shown to induce increased expressed of thyroglobulin and thyroid peroxidase but to simultaneously decrease expression of the TSH receptor. The reduction in TSH receptor expression by TSH is cAMP mediated. In the present study, it is demonstrated that, in thyrocytes treated with TSH, MHC class I expression decreases concomitant with the decrease in TSH receptor expression. This decreased expression is evidenced by reduced cell surface levels of MHC class I antigens, by reduced steady-state RNA levels, and by reduced transcription of the class I genes. TSH-mediated reduction of MHC class I gene transcription in FRTL-5 cells was mapped to a region within 135 base pairs of the promoter.

Animals

Regulation of thyrotropin receptor gene expression in rat FRTL-5 thyroid cells.

TSH receptor mRNA levels in FRTL-5 thyroid cells are autoregulated at a transcriptional level by the same hormones required for the growth and function of the cells: TSH, insulin, and insulin-like growth factor-I (IGF-I). Thus, the ability of TSH, via its cAMP signal, to down-regulate steady state receptor mRNA levels is preceded by the action of TSH to decrease pre-mRNA levels in nuclear run-on assays to the same quantitative level as evident in Northern analyses. In contrast, the receptor mRNA half-life is shown not to change when down-regulation is reversed by withdrawing TSH in the presence or absence of actinomycin-D. Evidence is additionally provided that TSH receptor mRNA levels are increased by insulin, IGF-I, or calf serum in both Northern and run-on assays. This action cannot be duplicated by hydrocortisone and is evident at more than 20-fold lower concentrations of IGF-I than insulin. Moreover, insulin, IGF-I, and/or calf serum are required for the autoregulatory negative transcriptional regulation of the TSH receptor by TSH/cAMP, as is the case for thyroglobulin. This occurs despite the opposite actions of TSH/cAMP on the two genes, positive in the case of thyroglobulin and negative with TSH receptor. The positive and negative regulatory actions, respectively, of insulin/IGF-I and TSH on receptor gene expression are associated with coincident increases or decreases in cell surface receptors measured by [125I]TSH binding. The autoregulation additionally involves the interplay of a second cAMP-modulated regulatory factor, one which up-regulates TSH receptor mRNA levels rather than causing down-regulation. Thus, cycloheximide inhibits the transcriptional action of both TSH/cAMP and insulin/IGF-I/serum within 4 h, i.e. a rapidly synthesized protein is an intermediate in both cases. The presence of cycloheximide for as little as 1 h, however, uncovers the ability of TSH/cAMP to increase TSH receptor mRNA levels. This activity is the result of the action of a stable cAMP-induced activator which can be detected physiologically, i.e. in the absence of cycloheximide. For example, low levels of a cAMP analog (0.2 mM), as opposed to high levels (greater than 1 mM), can increase TSH receptor RNA levels. Low levels also accelerate the insulin/IGF-I-dependent return of receptor mRNA to normal levels after TSH withdrawal.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals

Specific antibody to the thyrotropin receptor identifies multiple receptor forms in membranes of cells transfected with wild-type receptor complementary deoxyribonucleic acid: characterization of their relevance to receptor synthesis, processing, structure, and function.

An antibody to a peptide of the TSH receptor, residues 352-366 which are not present in gonadotropin receptors, specifically identifies three major forms of the receptor on Western blots of detergent-solubilized membrane preparations from Cos-7 cells transfected with full-length rat and human TSH receptor cDNA: 230, 180, and 95-100 kilodaltons (kDa), based on simultaneously run protein standards. The 95- to 100-kDa protein is absent in cells transfected with a mutant receptor with no signal peptide and is sensitive to endoglycosidase-F. Its size is consistent with the sum of amino acids predicted from its cDNA sequence (84 kDa after subtracting the signal peptide) plus its carbohydrate content (14 kDa estimated from glycosylation mutants). It alone is absent in two deletion mutants that have lost TSH binding and activity after transfection: M1 missing residues 37-121 and M2 missing residues 110-307. It, thus, appears to be the processed glycosylated functional receptor on the cell surface. The 230-kDa protein is a nonprocessed form of the receptor, as evidenced by its insensitivity to endoglycosidase-F and its continued presence in cells transfected with a mutant receptor with no signal peptide. It is the primary form identified in rat FRTL-5 thyroid cells that have a functioning TSH receptor; it is not present in rat FRT thyroid cells with no functioning TSH receptor or receptor RNA. It appears, therefore, to be a early synthetic form of the functional TSH receptor. The 180-kDa protein is endoglycosidase-F sensitive and appears to be a processed intermediate between the 230-kDa early synthetic form and the 95- to 100-kDa functional receptor, rather than a dimer of the latter. Thus, with decreases in size appropriate to a receptor monomer, it remains present in membranes from the M1 and M2 deletion mutants that contain the 230-kDa protein but are missing the 95- to 100-kDa receptor form in association with lost TSH binding and activity after transfection. Minor receptor forms (54 kDa in rat receptor transfectants, 54 and 48 kDa in human receptor transfectants) appear to be degraded forms of the processed and glycosylated 95- to 100-kDa receptor. The presence or absence of reducing agents in the detergent solubilization mixture does not change the pattern or amount of the receptor forms recognized by the antibody, including the 54-kDa form; however, boiling does.(ABSTRACT TRUNCATED AT 400 WORDS)

Amino Acid Sequence