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B Rapoport

Publications and source records attributed to B Rapoport.

At least 181 records · Page 10Linked to original sources

Molecular cloning of the structural gene for porcine thyroid peroxidase.

We have isolated and determined the nucleotide sequence of overlapping cDNA clones, representing the entire structural gene for pig thyroid peroxidase. The protein coding region extends from an ATG residue at base 252 to a termination codon at base 3030, coding for a 100.4-kDa apoprotein of 926 amino acids. The derived amino acid composition agrees well with the experimentally determined amino acid composition of purified pig thyroid peroxidase. Five potential glycosylation sites are present in the protein. Potential membrane spanning regions are present at the amino-terminal end (1-23) and near the carboxyl-terminal end (845-870) of the protein. These data indicate that pig thyroid peroxidase is synthesized as a single polypeptide that is membrane-bound.

Amino Acid Sequence↗

Nucleotide sequence and characterization of the 5' flanking region of the rat Ha-ras protooncogene.

Thyrotropin and cAMP stimulate growth of FRTL5 rat thyroid cells and increase c-Ha-ras mRNA levels. To study the mechanism by which thyrotropin enhances c-Ha-ras expression in the thyroid, we constructed a genomic library of FRTL5 DNA in the bacteriophage vector EMBL3. Using a v-Ha-ras probe (0.7-kilobase Sst I-Pst I fragment), we isolated eight clones containing portions of the FRTL5 c-Ha-ras gene. Restriction mapping of one of these clones revealed a structure very similar to that previously reported for the rat c-Ha-ras gene. We determined the nucleotide sequence of exon 1 as well as 1.15 kilobases upstream from exon 1. Blot-hybridization analysis of FRTL5 thyroid cell mRNA was performed with three DNA fragments upstream of exon 1. Two of these probes were Pst I-Pst I fragments 0.4 and 0.55 kilobases long, 1.15 and 0.6 kilobases upstream of exon 1, respectively. The third probe, a 0.6-kilobase Pst I-HindIII fragment, was immediately upstream of exon 1 and included 54 base pairs of the 5' end of exon 1. The data revealed an upstream ("-1") exon, consistent with the homology between the nucleotide sequences of our clone and the human c-Ha-ras gene in this region. Primer extension of a synthetic 30-mer oligonucleotide probe complementary to exon +1 on a FRTL5 mRNA template revealed three transcription start (cap) sites, 182, 169, and 153 bases upstream of the ATG codon. "CCAAT boxes" are present 65 and 100 bases upstream from the initial cap site. Three "GC boxes" and two C + G-rich inverted repeats characteristic of the binding site for the transcription regulation factor Sp1 are present in the 177 base pairs upstream of the initial cap site. Comparison of the rat and human c-Ha-ras -1 exons showed an area of poor homology immediately upstream of the human cap sites, followed further upstream by a region of close homology (approximately equal to 60 base pairs). The nucleotide sequence of the rat -1 exon is more similar to the v-ras sequence than is the human. The v-ras gene is truncated relative to both human and rat -1 exons.

Amino Acid Sequence↗

Isolation of a complementary DNA clone for thyroid microsomal antigen. Homology with the gene for thyroid peroxidase.

The thyroid microsomal antigen (MSA) in autoimmune thyroid disease is a protein of approximately 107 kD. We screened a human thyroid cDNA library constructed in the expression vector lambda gt11 with anti-107-kD monoclonal antibodies. Of five clones obtained, the recombinant beta-galactosidase fusion protein from one clone (PM-5) was confirmed to react with the monoclonal antiserum. The complementary DNA (cDNA) insert from PM-5 (0.8 kb) was used as a probe on Northern blot analysis to estimate the size of the mRNA coding for the MSA. The 2.9-kb messenger RNA (mRNA) species observed was the same size as that coding for human thyroid peroxidase (TPO). The probe did not bind to human liver mRNA, indicating the thyroid-specific nature of the PM-5-related mRNA. The nucleotide sequence of PM-5 (842 bp) was determined and consisted of a single open reading frame. Comparison of the nucleotide sequence of PM-5 with that presently available for pig TPO indicates 84% homology. In conclusion, a cDNA clone representing part of the microsomal antigen has been isolated. Sequence homology with porcine TPO, as well as identity in the size of the mRNA species for both the microsomal antigen and TPO, indicate that the microsomal antigen is, at least in part, TPO.

Amino Acid Sequence↗

Initiation of normal thyroid cells in primary culture associated with enhanced c-myc messenger ribonucleic acid levels.

We studied expression of the c-myc and c-ras protooncogenes during the initiation of pig thyroid cells in primary cell culture. This period is associated with major changes in differentiated thyroid cell function. After 1, 2, and 3 days of culture, polyadenylated mRNA was prepared from 30-50 replicate dishes of cells. mRNA was also prepared from a portion of the intact tissue used to prepare the dispersed follicles. Expression of c-myc and c-ras mRNA was determined by Northern blot analysis using v-myc and v-ras probes labeled by nick translation. As a nononcogene control, actin mRNA was determined using a beta-actin probe. In intact thyroid tissue before follicle dispersion, c-myc (2.6 kilobases) and c-ras (1.1 kilobases) mRNA were detectable, though at relatively low levels. c-myc mRNA expression increased in cultured cells, to 430%, 670%, and 330% of tissue levels on the first, second, and third days of culture, respectively. In contrast to c-myc, c-ras oncogene mRNA expression was not significantly altered during the 3-day culture period. beta-Action mRNA expression, like c-myc, increased to 560%, 810%, and 460% of tissue levels on the first, second, and third days of culture, respectively. Southern blot analysis of thyroid tissue and cultured cell DNA indicated that gene amplification did not account for the increase in c-myc mRNA levels in cultured cells. In conclusion, c-myc, but not c-ras, oncogene expression is enhanced during the transition of thyroid follicular cells into monolayer culture. beta-Actin mRNA expression is also enhanced during the initiation of primary thyroid cell culture. These data are consistent with a role for c-myc expression in the regulation of normal thyroid cell differentiated function.

Animals↗

Treatment of neonatal hyperthyroidism due to Graves' disease with sodium ipodate.

We describe the effect of administration of repeated doses of sodium ipodate in a newborn infant with hyperthyroidism due to transient Graves' disease. Pretreatment (day 3) serum T4 and T3 concentrations were 49 micrograms/dl and 590 ng/dl, respectively. With 24 h after the first dose of ipodate, serum T3 fell by 40%, and it subsequently ranged from 209-278 ng/dl throughout the 39-day ipodate treatment period. Serum T4 also decreased after ipodate administration to 69% and 41% of the pretreatment value after 72 h and 7 days of treatment, respectively; values thereafter during treatment ranged from 19-22 micrograms/dl. These plateau values are in the upper range of normal for the neonatal period. Rapid clinical improvement occurred as the hyperiodothyroninemia abated. Serum rT3 concentrations increased from 468-672 ng/dl to greater than 1400 ng/dl 24 h after each ipodate dose. Thyroid-stimulating immunoglobulin was present in maternal and cord sera, and the half-life of serum thyroid-stimulating immunoglobulin in the infant was approximately 12 days. Antithyroglobulin and antimicrosomal antibodies were present in the infant at 10 days of age, and the titers decreased progressively thereafter; the half-life for the antimicrosomal antibody titer was 3 weeks. The data suggest that sodium ipodate can be useful for treatment of neonatal hyperthyroidism due to Graves' disease.

Antibodies↗

Molecular cloning and partial characterization of a new autoimmune thyroid disease-related antigen.

To clone and characterize antigens to autoantibodies in Hashimoto's thyroiditis we constructed a cDNA library in the expression vector lambda gt11 using mRNA prepared from Grave's thyroid tissue. This library was screened using serum from a patient with Hashimoto's thyroiditis which had an antimicrosomal antibody titer greater than 1:10(6). Five positive recombinants were identified and cloned. Of these, 3 reacted with 7 of 17 normal serum samples. The 2 other clones (IL-28 and IL-33) reacted with none of the 17 normal serum samples. IL-28 reacted with 4 of 15 and IL-33 with 2 of 15 Hashimoto's thyroiditis serum samples (antimicrosomal antibody titers, greater than 1:6400). The specificity of the interaction between the Hashimoto's thyroiditis samples and the fusion protein was demonstrated by Western blot analysis. In addition, neither 10(-6) M human thyroglobulin nor 100 mU/ml bovine TSH inhibited binding of the serum samples to these 2 clones. Lysate from clones IL-28 and IL-33 did not reduce the antimicrosomal antibody titer in a hemagglutination assay. Absorption of Hashimoto's thyroiditis serum with purified thyroid microsomes reduced the serum antimicrosomal antibody titer, but not binding to these 2 clones. The cDNA inserts of clones IL-28 and IL-33 were approximately 0.6 and 0.4 kilobases (kb), respectively. The 0.6-kb IL-28 insert was used to probe human thyroid and human liver poly(A)+ mRNA. A single band of 3.3 kb was evident only with the thyroid mRNA. The IL-28 insert was subcloned into M13 and sequenced in both directions by the dideoxy technique and found to be 572 basepairs in length. When tested against the GenBank and Dayhoff gene banks, no significant homology with any known sequence was determined. In summary, a cDNA fragment of a previously unrecognized gene coding for an autoimmune thyroid disease-related antigen has been cloned and partly characterized; and the protein produced by this clone is not thyroglobulin, the thyroid microsomal antigen, or the TSH-binding site of the TSH receptor. We have, therefore, identified a new autoimmune thyroid disease-related antigen, the pathogenetic significance of which remains to be determined.

Autoantibodies↗

Studies on the promoter region of the c-Ha-ras gene in FRTL5 rat thyroid cells.

The functional activity of the promoter region of the rat c-Ha-ras gene was examined in FRTL5 rat thyroid cells, the cell type from which this promoter was cloned. A plasmid (p035-ras-CAT) was constructed containing the untranslated-1 exon as well as 172 base pairs (bp)5' to this exon inserted upstream of the chloramphenicol acetyl transferase (CAT) reporter gene. These 172 bp of 5'-flanking region contain two 10 bp GC box consensus sites and two CAAT boxes. Very weak promoter activity was observed in experiments involving transient transfection of FRTL5 cells with this plasmid, as well as with another plasmid (p5kb-ras-CAT) containing a much more extensive (3.5 kb) 5'-flanking region of the gene. In contrast, strong promoter activity was observed when the same plasmids were transfected into mouse 3T3 fibroblasts. When other promoters (pfos, RSV, and MMTV) were used to drive CAT activity, CAT activity in FRTL5 cells was about 10-fold less than in NIH-3T3 cells and rat embryo fibroblasts. However c-Ha-ras promoter activity was reduced out of proportion in FRTL5 thyroid cells relative to the other cell types (approximately 50-fold less). DNA gel-shift assays performed using crude extracts of FRTL5 and 3T3 nuclear proteins revealed quantitatively similar binding to the same promoter region in the c-Ha-ras 5'-flanking sequence. These data demonstrate that promoter activity of the rat c-Ha-ras gene is contained within the 172 bp 5'-flanking region of the gene. This promoter activity is expressed at a much lower level in slow-growing FRTL5 cells relative to other more rapidly growing cell types.

Animals↗

Molecular cloning of the complementary deoxyribonucleic acid for human thyroid peroxidase.

Five overlapping cDNA clones representing the entire mRNA for human thyroid peroxidase (TPO) have been isolated from a human Graves' thyroid cDNA library. The cDNA sequence has been determined. Human TPO cDNA contains 3060 bases from the start of transcription to the beginning of the poly (A) tail at the 3'-end. The derived amino acid sequence of human TPO consists of 933 amino acids with a mol wt of 102,937. The derived amino acid sequence contains five potential glycosylation sites (Asn-X-Ser/Thr), a probable transmembrane signal peptide sequence at the amino terminus, and a hydrophobic putative membrane-spanning region beginning 85 amino acid residues from the carboxyl terminal end. Comparison of the human TPO amino acid sequence to that of pig TPO shows strong homology extending from the amino terminus to within 44 amino acid residues of the carboxyl-terminus.

Amino Acid Sequence↗

Thyrotropin stimulation of cultured thyroid cells increases steady state levels of the messenger ribonucleic acid for thyroid peroxidase.

We have examined the effect of TSH on thyroid peroxidase (TPO) mRNA levels in dog thyroid cell primary cultures. Freshly dispersed dog thyroid cells were cultured for up to 5 days in the absence or presence of 5 mU/ml bovine TSH. At the outset of culture, and at daily intervals thereafter, total cytoplasmic RNA was extracted and applied to Nytran paper using a slot-blot apparatus. A nick-translated cDNA fragment of the porcine TPO gene was used to probe these filters. Autoradiographs were quantified by densitometry. Nonspecific binding was negligible as determined using a pUC18 probe. During the first 2 days of culture, TPO mRNA levels declined irrespective of whether or not TSH was present in the medium. TSH did not affect this decline. Between 3 and 5 days of culture, TPO mRNA levels in control (no TSH) cells increased to 3 times the initial level (expressed relative to cellular DNA). However, during the same period TSH stimulated TPO mRNA levels 8-fold above the initial level. To confirm that the signal with the cDNA probe was actually that of dog TPO mRNA, cellular RNA (day 4 of culture) was subjected to Northern blot analysis using the same cDNA probe. Specific bands of 2.9 kilobases were detected corresponding to the known size of TPO mRNA in pig thyroid tissue. The signal of this 2.9 kilobase species was enhanced by TSH. In conclusion, the data indicate that chronic TSH stimulation raises steady state levels of TPO mRNA and provide an explanation, at least in part, for the mechanism by which TSH enhances TPO bioactivity in thyroid tissue.

Animals↗

Molecular cloning of antigens to thyroid autoantibodies using the expression vector lambda gt11.

The molecular cloning of certain antigens to thyroid autoantibodies present in patients with autoimmune thyroid disease would be of great value in further understanding the pathogenesis of these diseases, and in devising new approaches for their treatment. The ideal method for molecular cloning is to first obtain a partial amino acid sequence of a purified protein and to construct an oligonucleotide probe for screening an appropriate cDNA library. Unfortunately in the case if thyroid autoimmunity, important antigens such as the TSH receptor and the microsomal antigen have not been purified. An alternate approach devised by Young & Davis (1983) is to construct a cDNA library in a vector that expresses the encoded proteins. The library can then be screened with an antibody as a probe. We have constructed cDNA libraries in gt11 using mRNA purified from human, pig and rat thyroid cells. Our experiences in constructing and screening these libraries will be described. The advantages of this system are 1) the protein does not have to be purified, 2) previously unknown antigens may be identified. The disadvantages are 1) lack of specificity with antibody selection, 2) because the cDNA is inserted in the beta-galactosidase gene in the vector the antigen is expressed as a fusion protein. This may disturb the tertiary structure of the antigen and alter its antigenicity, 3) cDNA inserts frequently only contain part of the antigen molecule, and may therefore lack important epitopes; polyclonal antibody may therefore be preferable to monoclonal, 4) only 1 in 6 cDNA inserts will be in the correct reading frame for antigen expression, 5) the expressed protein is not glycosylated.(ABSTRACT TRUNCATED AT 250 WORDS)

Autoantibodies↗

Recombinant DNA technology in the study of autoimmune thyroid disease.

Molecular biology techniques are now beginning to be applied to the study of autoimmune thyroid disease. This review provides a background to the molecular biology techniques used, summarizes the limited data presently available in the area of autoimmune thyroid disease, and describes the potential future application of these techniques for further understanding of autoimmune thyroid disease.

Autoantigens↗

Isolation and characterization of a cDNA clone for porcine thyroid peroxidase.

We undertook the molecular cloning of porcine thyroid peroxidase (TPO). Four oligonucleotide probes were synthesized on the basis of amino acid sequences of 3 tryptic peptides from highly purified porcine TPO. These probes were used to screen a pig thyroid cDNA library. Seven of 16 selected clones (0.45-1.15 kb in size) reacted with all 4 probes. Nucleotide sequencing of the 1.15 kb at the 3'-end of the structural gene revealed the complementary sequence to all 4 probes as well as the nucleotides coding for the entire length of the 3 tryptic peptides. There is an open reading frame of 332 amino acid residues. On Northern blot analysis this gene codes for an mRNA species of 2.85 kb, corresponding to the anticipated size of the mRNA for the intact TPO molecule. We have therefore cloned and characterized a cDNA clone coding for approx. 36% of porcine thyroid peroxidase.

Animals↗

Thyrotropin and cyclic AMP regulation of ras proto-oncogene expression in cultured thyroid cells.

We examined the effect of thyrotropin (TSH) on intracellular levels of c-ras mRNA in a line of differentiated rat thyroid cells obtained from normal Fischer rat thyroids. These cells are totally dependent on TSH for growth. TSH stimulation of quiescent cells increased c-ras mRNA content, with a maximal response (730% of basal) after 6 h, and a decline towards basal levels after 24 h. Dibutyryl cAMP and forskolin mimicked this stimulatory effect of TSH on c-ras, but did not enhance beta-actin mRNA content. This study demonstrates hormonal and cyclic nucleotide control of c-ras expression in a well-differentiated, non-tumorogenic mammalian cell.

Animals↗

Control of growth in cultured rat thyroid cells.

The purpose of this study was to determine the role of cAMP in the growth of FRTL and FRTL5 cells, 2 continuous cultured thyroid lines. TSH, at concentrations similar to those reported to induce growth in primary dog thyroid cultures, played an essential role for growth. Stimulators of adenylate cyclase, cholera toxin and forskolin, and cAMP analogues, dibutyryl cAMP and 8-bromo cAMP, mimicked the effect of TSH in both groups of cultured cells. The present data confirm the role of TSH in controlling growth of both cell lines and suggest that cAMP is an essential intracellular mediator of TSH action.

1-Methyl-3-isobutylxanthine↗

Studies on auto-anti-idiotypic thyroid-stimulating antibodies.

We immunized rabbits with human (h) or bovine (b) thyroid-stimulating hormone (TSH), hTSH beta chains or human serum albumin. Serum from the rabbits was then assayed for thyroid-stimulating activity, using the thyroid-cell bioassay. Anti-idiotypic antibodies (anti-ID) to monoclonal anti-TSH were detected in these rabbit antisera after removal of rheumatoid factor by absorption with IgG. Anti-ID activity was detected in the serum of the rabbits immunized with bovine TSH. Thyroid-stimulating antibody (TSI) activity, too, was most prominent in the sera obtained from bTSH-immunized rabbits. Anti-ID activity seemed to arise sooner than did TSI, but both tended to peak 3 months after an initial series of immunizations. Since thyroid-stimulating immunoglobulins can develop following TSH immunization of rabbits, it is possible that a similar immunopathogenesis may be responsible for some instances of Graves' hyperthyroidism.

Animals↗