[Analytical procedure of the adhesion molecules: especially for the platelet].
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Biomedical subjects
Publications and source records attributed to S Kosugi.
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Mutations involving the transmembrane domain of the thyrotropin receptor (TSHR) confer constitutive activation of the receptor and can cause human diseases. Naturally occurring activating mutations identified to date are located only in the transmembrane domain of the receptor. We now report a mutant involving the extracellular domain of the TSHR which also shows constitutive activation. This mutation is missing residues 339-367 located in the C-terminal portion of the extracellular domain. When expressed in COS-7 cells, the mutated TSHR (M3B) retained similar TSH binding ability to that of the wild-type receptor. However, the basal cAMP production without TSH stimulation in COS-7 cells transfected with M3B cDNA was significantly higher than that of COS-7 cells with wild-type receptor, indicating that the mutant receptor is constitutively activated. Our results provide new insight into the mechanism of receptor activation.
OBJECTIVE: Autoimmunity-prone (New Zealand white x BXSB)F1 ([NZW x BXSB]F1) mice have been shown to be useful as a model of antiphospholipid syndrome with myocardial infarction. The aim of this study was to examine the cross-reactivity of anticardiolipin antibody (aCL) derived from (NZW x BXSB)F1 mice with oxidized low-density lipoprotein (ox-LDL), which is closely associated with atherosclerosis. METHODS: Six monoclonal antibodies (MAb) against CL were established from (NZW x BXSB)F1 mice, and reactivity of aCL with ox-LDL was examined by micro-enzyme-linked immunosorbent assay. RESULTS: Higher titers of anti-ox-LDL autoantibodies were found in adult (NZW x BXSB)F1 mice compared with other autoimmunity-prone mouse strains (P < 0.01) or a control strain (P < 0.005). There was a significant positive correlation between titers of aCL and those of anti-ox-LDL in (NZW x BXSB)F1 mice (r = 0.79, P < 0.001). Of the 6 MAb against CL, 2 clones that showed beta 2-glycoprotein 1-dependent reactivity also cross-reacted with ox-LDL. Binding of monoclonal aCL to solid-phase cardiolipin was inhibited by ox-LDL, but not by native LDL. CONCLUSION: We confirmed that aCL derived from (NZW x BXSB)F1 mice can cross-react with ox-LDL. This result suggests that aCL, which is closely associated with lupus-associated thrombosis, may also play an important role in atherosclerotic complications in patients with systemic lupus erythematosus.
In this study, we apply recently developed methods to evaluate the thyrotropin receptor (TSH-R). These methods are called deviation (DEV) model, deviation decrease (DD) and DEV/DD analyses, and are based on deviation of amino acid sequences. A 3-dimensional structure model of TSH-R was graphically constructed, and found to possess a large central cavity (donut-like structure). The N-terminus was found to be in the center of the whole extracellular structure and to form a part of the bottom of the cavity. High DEV values indicate deviated amino acid compositions in the protein and were seen in 7 regions, 6 of which were found to be in regions with hydrophilic and acrophilic character. On the basis of the analysis of intra-molecular cis-acting relationships, 7 pairs of regions were presumed to be closely related. Further, when 3 exoplasmic loop lesions were analyzed similarly, 3 other regions were shown to have a close relationship with the cell surface. DEV/DD values were applied to predict the interface of TSH-R with trans-acting molecules such as TSH-R antibody or TSH. The regions in association with trans-acting molecules were seen in 14 regions, 11 of which included the high DEV regions. Both of the TSH-R specific regions in the N- and C-terminal side, especially the latter, were found to be the major components.
Proliferating cell nuclear antigen (PCNA) is an auxiliary protein of DNA polymerase delta, and it is highly conserved among eukaryotes. The rice PCNA promoter, truncated to position -263, was previously shown to confer meristematic tissue-specific expression in transgenic plants. By DNasel footprinting and gel retardation analysis, three cis-acting elements were defined in this truncated promoter, which designated site I (-201 to -194, CCAGGTGG), site IIa (-197 to -188, TGGGCCCGT) and site IIb (-178 to -169, TGGTCCCAC). Site I resembles the G-box, and sites IIa and IIb resemble the conserved motif (T/GGTCCCAT) that is found in promoter regions of auxin-regulated genes. Functional analysis of expression of a PCNA-GUS gene fusion in transgenic tobacco plants revealed that a mutation in site I in the full-length 2.0 kb promoter had no significant effect on the activity. However, the mutation in site I in the truncated -263 promoter, which had 14% of the activity of the full-length promoter, caused a considerable decrease in the activity, suggesting that site I contributes in part to transcriptional activation. Simultaneous disruption of sites IIa and IIb in the full-length promoter caused about 80-85% loss of promoter activity, while separate disruption of site IIa or site IIb resulted in no marked change on the activity. These observations suggest that site IIa and site IIb play an important role in the meristematic tissue-specific expression of the rice PCNA gene, presumably by mediating putative enhancer activities dependent on the far-upstream region.
Familial male precocious puberty (FMPP) is a gonadotropin-independent disorder that is inherited in an autosomal dominant, male-limited pattern. A heterozygous mutation encoding substitution of Asp578 with Gly in transmembrane helix 6 of the G protein-coupled receptor for luteinizing hormone (LHR) has been found in affected males from nine American FMPP families. Cells expressing the mutant LHR exhibit markedly increased cyclic adenosine monophosphate (cAMP) production in the absence of agonist, suggesting that autonomous Leydig cell activity in FMPP is caused by a constitutively activated LHR. We have now analyzed genomic DNA from affected males from six additional FMPP families. PCR was used to amplify a fragment of the LHR gene encoding amino acid residues 441-594. None of the six new samples contained the Asp578-->Gly mutation, as indicated by absence of digestion with MspI. PCR products were then screened for heterozygous mutations using temperature-gradient gel electrophoresis. DNA fragments from two of the patients migrated abnormally. Direct sequencing of PCR product from one affected German male revealed a heterozygous mutation (ATG-->ATA) encoding Met571-->Ile at the cytoplasmic end of helix 6, the same mutation that has been reported in another European FMPP kindred. Affected males in the second family had a novel Thr577-->Ile mutation (ACC-->ATC). Mutations in different portions of the LHR or in a different gene may be responsible for disease in the other FMPP kindreds. Agonist binding and functional coupling of the mutant receptors to the cAMP and inositol phosphate pathways were studied by transiently expressing them in COS-7 cells. Agonist affinity was unaffected by the mutations.(ABSTRACT TRUNCATED AT 250 WORDS)
CD36 deficiency is divided into two subgroups: neither platelets nor monocytes express CD36 (type I deficiency), and monocytes express CD36 in spite of the lack of platelet CD36 (type II deficiency). We have already demonstrated that a 478C-->T substitution (proline90-->serine) in platelet CD36 cDNA predominates in type II deficiency (Kashiwagi, H., S. Honda, Y. Tomiyama, H. Mizutani, H. Take, Y. Honda, S. Kosugi, Y. Kanayama, Y. Kurata, and Y. Matsuzawa. 1993. Thromb. Haemostasis. 69:481-484). In this study, we revealed that monocyte CD36 cDNA from two type II deficient subjects was heterozygous for C478 and T478 form, while platelet CD36 cDNA of these subjects consisted of only T478 form. In a type I deficient subject, both platelet and monocyte CD36 cDNA showed only T478 form. Expression assay using C478 or T478 form of CD36 cDNA transfected cells revealed that there was an 81-kD precursor form of CD36, and that the maturation of the 81-kD precursor form to the 88-kD mature form of CD36 was markedly impaired by the substitution. The mutated precursor form of CD36 was subsequently degraded in the cytoplasm. These results indicate that the 478C-->T substitution directly leads to CD36 deficiency via defects in posttranslational modification, and that this substitution is the major defects underlying CD36 deficiency.
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Two synthetic peptides, P354-14 (amino acid nos. 354 to 367) and P338-16 (nos. 338 to 353), corresponding to the partial amino acid sequences of the hTSH receptor structure were studied for their ability to bind specifically serum IgGs from patients with Graves' disease and to inhibit thyroid stimulating TSH receptor antibody (TSH-R SAb) activity. IgG binding was measured by an ELISA using sera from 102 Graves', 20 Hashimoto patients, and 9 normal subjects. Both peptides showed significantly increased IgG binding of Graves' sera compared with those of Hashimoto and normal sera. There was a significant correlation (r = 0.529) between the amount of IgG bound by the two peptides, but neither of these values correlated well with their TSH-R SAb activity nor thyrotropin-binding inhibitor TSH receptor antibody (TSH-R IAb) activity. TSH-R SAb inhibiting effects of these peptides were then analysed by measuring TSH-R SAb activity after incubation with the peptides. Among eight Graves' IgGs tested the TSH-R SAb activity of three was inhibited by both peptides, two were inhibited only by P354-14 and three were not affected by either. These TSH-R SAb inhibiting effects were dose-dependent and reproducible. To confirm these findings, a peptide-sepharose gel affinity absorption study was performed. Eleven Graves' IgGs were applied to both peptide gels and the TSH-R SAb activity of the unabsorbed fraction was measured. The TSH-R SAb activity of five IgGs was strongly absorbed only by P354-14 and five others were absorbed by both peptides to an almost similar extent.(ABSTRACT TRUNCATED AT 250 WORDS)
To define the epitope(s) of stimulating thyrotropin receptor antibody (TSH-R-Sab), we synthesized 19 oligopeptides covering almost all amino acids of the extracellular domain of the human TSH-R and studied these effects on the inhibition of one TSH-R-Sab activity. Four of the 19 peptides encompassing residues 31-50 (P31-20), 91-119 (P91-29), 287-304 (P287-18) and 354-367 (P354-14) were found to show significant TSH-R-Sab inhibition and to have similar effects on the other three Graves' immunoglobulins. When these peptides were applied in combination with P354-14 only P287-18 revealed additional effects but the other two combinations did not. Furthermore, sequential addition of these peptide pairs confirmed the additional effects of P287-18 and P354-14. Sequential peptide-affinity gel studies were then performed. Most of the TSH-R-Sab activity in the unabsorbed fraction from P287-18 gel was absorbed to a subsequent P354-14 gel and the eluted fraction from P287-18 mostly remained unabsorbed by the P354-14 gel. On the other hand, most of the unabsorbed fraction from P91-29 gel remained unabsorbed even by the subsequent P354-14 gel. When a P354-14 affinity gel-purified TSH-R-Sab immunoglobulin was labeled and evaluated for its binding to FRTL-5 cells, additions of original immunoglobulin, P354-14 and P91-29 resulted in significant inhibition of the binding but P287-18 did not affect either. From these results, it was concluded that most of the individual Graves' immunoglobulins contain at least two heterogeneous moieties with TSH-R-Sab activity, one of which binds P354-14 and the other binds P287-18. Further, P354-14 and P91-29 were indicated to bind the same molecule of TSH-R-Sab immunoglobulin.
We analyzed the molecular genetic defect responsible for type I Glanzmann's thrombasthenia in a Japanese patient. In an immunoblot assay using polyclonal anti-GpIIb-IIIa antibodies, some GPIIIa (15% of normal amount) could be detected in the patient's platelets, whereas GPIIb could not (< 2% of normal amount). Nucleotide sequence analysis of platelet GPIIb mRNA-derived polymerase chain reaction (PCR) products revealed that patient's GPIIb cDNA had a 75-bp deletion in the 3' boundary of exon 17 resulting in an in-frame deletion of 25 amino acids. DNA analysis and family study revealed that the patient was a compound heterozygote of two GPIIb gene defects. One allele derived from her father was not expressed in platelets, and the other allele derived from her mother had a 9644C--> T mutation which was located at the position -3 of the splice donor junction of exon 17 and resulted in a termination codon (TGA). Moreover, quantitative analysis demonstrated that the amount of the abnormal GPIIb transcript in the patient's platelets was markedly reduced. Thus, the C --> T mutation resulting in the abnormal splicing of GPIIb transcript and the reduction in its amount is responsible for Glanzmann's thrombasthenia.
We performed family studies with type II CD36 deficiency. In the Mi. Y family, the proband (YII.1) and his brother (YII.2) displayed a type II deficient phenotype. In the mother (YI.2), binding of the anti-CD36 monoclonal antibody, OKM5, to both platelets and monocytes was reduced as compared to CD36 positive control cells. In the father (YI.1), while OKM5 binding to his platelets was reduced, that of his monocytes was almost the same as normal control monocytes. Analysis of genomic DNA showed that YI.2, YII.1 and YII.2 were heterozygous for a proline90-->serine mutation, and showed that both alleles of YI.1 did not have the mutation. Analysis of CD36 cDNA showed that the Pro90 form of CD36 cDNA could be detected in monocytes, but not in platelets from YII.1 and YII.2. These data indicated that YII.1 and YII.2 could be compound heterozygotes; an allele having a platelet-specific mRNA expression defect(s), which was responsible for the different CD36 expression between their platelets and monocytes, and the Ser90 allele. YI.1 was suggested to be a carrier of the platelet-specific silent allele. The platelet-specific silent allele was linked to a specific genotype of a polymorphic microsatellite sequence in the CD36 gene, supporting our hypothesis that mRNA expression defect(s) occurred at or near the CD36 gene. In a second type II CD36 deficient family, we also obtained results consistent with this hypothesis.
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Four different somatic mutations (F631C, T632I, D633E, and D633Y) in the putative 6th transmembrane helix of the human thyrotropin receptor (TSHR) were recently described in hyperfunctioning thyroid adenomas [Porcellini et al. (1994) J. Clin. Endocrinol. Metab. 79, 657-661]. We transiently expressed these mutant receptors in Cos-7 cells and measured [125I]TSH binding, basal and TSH-stimulated cAMP production, and phosphatidylinositol hydrolysis. The concentration of receptors expressed at the cell surface was lower for the mutants than for the wild type (WT) TSHR. Compared to the WT, all four mutant receptors caused a marked increase in basal cAMP levels, but did not increase basal production of inositol phosphates. This suggests that autonomous thyroid function and adenoma formation may be related to constitutive activation of the cAMP pathway alone. A cluster of conserved residues at the base of the 6th transmembrane helix of the TSHR and other glycoprotein hormone receptors appears important for maintaining an inactive receptor conformation.
We characterized the role of the three exoplasmic loops in the transmembrane region of the thyrotropin receptor (TSHR) by substituting each loop with the counterpart of beta 2-adrenergic receptor amino acid sequence. Mutant El3 with a substitution of the 3rd exoplasmic loop showed significant decrease in the maximal level and sensitivity of TSH-stimulated cAMP response despite good retention of TSH binding. These findings suggest that the third exoplasmic loop of the TSH receptor is partially involved in the signal transduction mechanism.
We performed a molecular analysis of a subject whose platelets and monocytes did not express any cell surface CD36 (designated as a type I CD36 deficiency). Amplification of the 5' half of platelet and monocyte CD36cDNA (corresponding to nucleotide [nt] 191-1009 of the published CD36 cDNA sequence [Oquendo et al, Cell, 58:95, 1989]) showed that two different-sized CD36 cDNAs existed. One cDNA was of predicted normal size, whereas the other was about 150 bp smaller than that predicted for normal CD36 cDNA. Amplification of the 3' region of CD36 cDNA (nt 962-1714) in this subject showed only normal-sized CD36 cDNA. Cloning and nt sequence analysis of the cDNAs showed that the smaller sized CD36 cDNA had 161-bp deletion (from nt 331 to 491), and a dinucleotide deletion starting at nt position 539. The same dinucleotide deletion was also detected in the normal sized CD36 cDNA. Both deletions caused a frameshift leading to the appearance of a translation stop codon. RNA blot analysis and quantitative assay using the reverse transcription-polymerase chain reaction (RT-PCR) showed that the CD36 transcripts in both platelets and monocytes were greatly reduced. Comparison of the determined cDNA sequences with the genomic DNA sequence for the human CD36 gene showed that the dinucleotide deletion was located in exon 5, and that the 161-bp deletion corresponded to a loss of exon 4. PCR-based analysis using genomic DNA showed that this subject was homozygous for the dinucleotide deletion in exon 5. Except for the dinucleotide deletion, we could not find any abnormalities around exon 3, 4, and 5 including the splice junctions. These results suggested that the deletions in CD36 mRNA were likely to be responsible for instability of the transcripts, and the dinucleotide deletion in exon 5 might affect the splicing of exon 4.
Residue 113 of the thyrotropin receptor (TSHR) is a possible asparagine-linked glycosylation site in the human TSHR, but not in rat or dog TSHR. Russo et al. (Mol Endocrinol 5:29-33) reported that mutation of this residue in the human TSHR diminished TSH binding activity after transfection. To investigate the difference in the role of residue 113 of the TSHR among species, we created a mutant at residue 113 in the rat TSHR, transfected Cos-7 cells with the mutant DNA and measured TSH binding and TSH- and Graves' IgG-stimulated cAMP and phosphoinositide signals. No difference was found in the activities of the mutant transfectant from the wild type receptor transfectant. These results might suggest a real difference in glycosylation of the TSHR among species.
We investigated the role of the cytoplasmic tail of the thyrotropin receptor (TSHR) in signal transduction using mutants with truncation at the cytoplasmic tail. Mutant without residues 700-764 completely lost inositol phosphate response to agonists and showed decreased basal cAMP level. Mutant without residues 710-764 showed full cAMP responses but blunted inositol phosphate responses. However, mutant without residues 722-764 retained all signal transduction activities. These findings suggest that the amino-terminal half of the cytoplasmic tail (up to residue 721) is essential for full expression of functional activities.