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A E Broadus

Publications and source records attributed to A E Broadus.

At least 19 recordsLinked to original sources

Stretch-induced parathyroid hormone-related peptide gene expression in the rat uterus.

We previously observed a peak in parathyroid hormone-related peptide (PTHrP) mRNA expression in preterm rat myometrium and found that this peak was dependent on intrauterine occupancy. We explored the possibility that mechanotransduction might control PTHrP gene expression in the uterus. This was done by developing an intrauterine balloon system that allowed us to reproduce experimentally the mechanical effects of the fetal pup in utero. An increase in PTHrP mRNA in the unoccupied horn of a unilaterally pregnant rat could be elicited as rapidly as 1 h after balloon inflation and was maintained for up to 72 h. The same response was seen in uterine horns from virgin animals and could be reproduced by three different methods of imposing a physical stretch. Balloon-induced stretch also increased mRNA expression in a muscle bath system in vitro. Mechanotransduction appears to be largely, if not entirely, responsible for the preterm peak in PTHrP mRNA expression.

Amino Acid Isomerases

Parathyroid hormone-related protein. Evidence for secretion of a novel mid-region fragment by three different cell types.

The cDNA-predicted amino acid sequence of parathyroid hormone-related protein (PTHrP) contains multiple basic amino acid motifs, suggesting that PTHrP undergoes extensive post-translational processing prior to secretion. The secretory forms of the peptide are currently unknown. To identify these secretory forms, medium was harvested from three cell types: human renal carcinoma (SKRC-1) cells, human keratinocytes, and rat insulinoma cells stably transfected with the cDNA for PTHrP(1-141) (RIN-141 cells). Amino-terminal species were immunopurified using an anti-PTHrP(1-36) column, and mid-region species using an anti-PTHrP(37-74) column. PTHrP peptides in medium and in cell extracts were further resolved by reverse phase high performance liquid chromatography (RP-HPLC) and identified using region-specific immunoassays. SKRC-1 and RIN-141 cells secreted three distinct amino-terminal species and a novel, non-amino-terminal, mid-region fragment. Sequence and sodium dodecyl sulfate-polyacrylamide gel electrophoresis analysis indicated that the RIN-141 cell mid-region fragment begins at amino acid 38 of the cDNA-predicted sequence and is approximately 70 amino acids in length. Comparison of RP-HPLC elution patterns suggests that SKRC-1 cells and keratinocytes secrete a similar or identical mid-region fragment. Immunofluorescence studies revealed a Golgi pattern for the amino-terminal species and a secretory granule pattern for the mid-region fragment. These studies indicate that 1) multiple PTHrP species are secreted, including a novel mid-region fragment; 2) Arg37 serves as a cleavage site in at least three cell types; 3) PTHrP(1-36) is likely to be an authentic secretory form of PTHrP; and 4) the mid-region fragment appears to be packaged into secretory granules. The marked interspecies conservation of this mid-region PTHrP suggests that it will have important biological functions.

Amino Acid Sequence

Structure of the mouse gene encoding parathyroid hormone-related peptide.

The parathyroid hormone-related peptide (PTHRP) was initially isolated from tumors associated with the syndrome of humoral hypercalcemia of malignancy. The human PTHRP gene is a complex transcriptional unit which uses multiple promoters and contains alternatively spliced 3' exons that result in mRNAs encoding three different deduced products. We report here the structure of the mouse PTHRP gene. The mouse gene has a considerably simpler organization than its human counterpart. This organization includes a single 3' exon and an apparent single 3' splicing pathway, leading to an mRNA encoding a 139-amino acid mature PTHRP. In addition, the mouse gene appears to be predominantly under the control of a short proximal promoter element. By RNase protection analysis, we identified PTHRP mRNA in specimens prepared from a variety of normal rodent tissues, including a number of tissues not previously recognized as sites of PTHRP gene expression.

Amino Acid Sequence

Immunochemical characterization of circulating parathyroid hormone-related protein in patients with humoral hypercalcemia of cancer.

Tumors from patients with humoral hypercalcemia of cancer produce a parathyroid hormone-related protein (PTHRP). We have developed two region-specific immunoassays capable of measuring PTHRP in plasma: an immunoradiometric assay directed toward PTHRP amino acid sequence 1 to 74 and a radioimmunoassay directed toward PTHRP amino acid sequence 109 to 138. Sixty normal subjects had low or undetectable plasma PTHRP (1 to 74) concentrations (mean, 1.9 pmol per liter) and undetectable PTHRP (109 to 138) concentrations (less than 2.0 pmol per liter). Patients with humoral hypercalcemia of cancer (n = 30) had elevated levels of both PTHRP (1 to 74) (mean, 20.9 pmol per liter) and PTHRP (109 to 138) (mean, 23.9 pmol per liter). The plasma concentrations of immunoreactive PTHRP correlated with the levels of urinary cyclic AMP excreted; in some patients, the concentrations decreased after the tumors were resected. Patients with chronic renal failure (n = 15) had plasma PTHRP (1 to 74) concentrations similar to those in the normal subjects, but their plasma PTHRP (109 to 138) concentrations were elevated (mean, 29.6 pmol per liter). The levels of both peptides were normal in patients with hyperparathyroidism and those with hypercalcemia due to various other causes. Breast milk contained high concentrations of PTHRP. An anti-PTHRP (1 to 36) immunoaffinity column failed to extract PTHRP (109 to 138) immunoactivity from plasma, suggesting that the C-terminal region circulates as a separate peptide. We conclude that plasma PTHRP concentrations are high in the majority of patients with cancer-associated hypercalcemia and that the circulating forms of PTHRP in such patients include both a large N-terminal (1 to 74) peptide and a C-terminal (109 to 138) peptide. Measuring the concentrations of PTHRPs may be useful in the differential diagnosis of hypercalcemia.

Adult

Regulation of parathyroid hormone-related peptide gene expression by cycloheximide.

A novel parathyroid hormone-related peptide (PTHRP) has been isolated from tumors associated with the syndrome of humoral hypercalcemia of malignancy. The human PTHRP gene appears to use multiple promoters and contains alternatively spliced 3' exons which give rise to three PTHRP mRNA classes, each bearing multiple copies of an AU motif that has been associated with mRNA instability. We report here that inhibition of protein synthesis leads to the super-induction of PTHRP mRNA expression in a number of human and rat cell lines. This phenomenon was found to reflect both an increase in the rate of PTHRP gene transcription and a stabilization of PTHRP mRNAs. The transcriptional mechanism appears to preferentially involve the activity of a short downstream promoter of the gene, which is presumed to be regulated by a labile repressor protein. Our findings indicate that both transcriptional and posttranscriptional mechanisms may be important control points in the regulation of PTHRP expression in normal and malignant cells.

Actins

Parathyroid hormone-related peptide gene is expressed in the mammalian central nervous system.

A parathyroid hormone-related peptide (PTHRP) has been identified in human tumors associated with the syndrome of humoral hypercalcemia of malignancy. While parathyroid hormone (PTH) gene expression appears to be limited to the parathyroid glands, PTHRP mRNA has been identified in a variety of normal tissues. To investigate the apparent expression of the PTHRP in the central nervous system, we examined extracts of whole rat brain for PTHRP bioactivity by measuring adenylate cyclase-stimulating activity (ACSA) in a PTH-sensitive assay. Extracts consistently contained ACSA and this activity was completely inhibited by a PTHRP antiserum but was unaffected by a PTH antiserum. ACSA was found in a number of anatomic subregions of rat brain, being greatest in the cortex and telencephalon. RNase protection analysis revealed PTHRP transcripts in total RNA prepared from whole rat brain and from the same anatomic subregions. By in situ hybridization histochemistry, we found that the highest levels of PTHRP gene expression occurred in neurons of the cerebral cortex, hippocampus, and cerebellar cortex. These studies demonstrate that both PTHRP mRNA and biological activity are present in a number of regions of rat brain. The widespread expression of this peptide by multiple types of neurons suggests that the PTHRP may play a general role in neuronal physiology.

Adenylyl Cyclases

Intrauterine occupancy controls expression of the parathyroid hormone-related peptide gene in preterm rat myometrium.

The parathyroid hormone (PTH) and parathyroid hormone-related peptide (PTHRP) genes are members of a gene family. Whereas PTH is a classical peptide hormone, mounting evidence suggests that the PTHRP may have predominately local actions. We report here that the PTHRP gene is expressed in rat myometrium, with a major peak in PTHRP mRNA expression occurring in the 48 hr immediately preceding parturition. A similar peak in peptide content was found in tissue extracts by biological and immunological assays, but the PTHRP could not be detected in the peripheral circulation or in uterine vein plasma during late gestation. By in situ hybridization histochemistry, PTHRP mRNA was demonstrated in both the longitudinal and circular layers of smooth muscle but was absent in the endometrium. The rise in myometrial PTHRP mRNA in late gestation was dependent upon intrauterine occupancy; it was greatly reduced or absent in nongravid uterine horns. These findings indicate that the expression of the PTHRP gene in preterm myometrium is under the control of a local stimulus and suggest that the PTHRP may play a paracrine or autocrine role in the uterus during the antepartum period, possibly involving myometrial contractility.

Animals

Clinical review 16: Parathyroid hormone-related proteins: coming of age in the 1990s.

The last 3 yr have yielded a fertile harvest of new information on the HHM clinical syndrome and on the novel peptide hormone family responsible for the syndrome. Whereas the clinical riddle enshrouding the HHM syndrome first posed in the early 1940s appears to have been largely solved, a whole new field, concerning the physiological role(s) of PTHRP has opened. The field has evolved rapidly and provides an example of fruitful clinical investigation: the original problem was a clinical one (the HHM syndrome); understanding the clinical disorder led to pursuit of the problem in the laboratory (adenylate cyclase assays, protein purification, molecular cloning, PTHRP synthesis); and observations made in the laboratory have rapidly yielded clinical fruits (PTHRP immunoassays) and opened a new window on normal physiology.

Gene Expression

Identification of an up-stream promoter of the human parathyroid hormone-related peptide gene.

Previous evidence has suggested that the human PTH-related peptide (PTHRP) gene uses two promoters, one a short down-stream element lying immediately between two 5' exons (1 and 2) and a second lying in an unknown up-stream location. We approached identification of the up-stream element in three steps. First, Northern analysis carried out using progressively 5' fragments of the gene as probes identified a candidate region some 2.5 kilobases up-stream of exon 1. Second, a battery of overlapping 5' cRNA probes was used in RNase protection experiments to identify two previously unrecognized exons, 212 and 93 basepairs in length (termed exons 1A and 1B to distinguish them from the previously designated exon 1, which was termed exon 1C). Third, primer extension experiments were performed with oligonucleotides complementary to each of the 5' exonic sequences. These experiments identified a transcription start site up-stream of exon 1A and also demonstrated that the 5' exons of the PTHRP gene could be spliced together in several combinations. The up-stream promoter element contains a TATA box, but does not otherwise resemble the down-stream PTHRP gene promoter or the PTH gene promoter. We conclude that the human PTHRP gene contains eight exons spanning more than 15 kilobases of genomic DNA, with promoter elements lying immediately up-stream of exons 1A and 2. The identification of these elements will permit functional analysis of their roles in mediating tissue- and tumor-specific PTHRP gene expression.

Base Sequence

Transcriptional regulation of the parathyroid hormone-related peptide gene by glucocorticoids and vitamin D in a human C-cell line.

A parathyroid hormone-related peptide (PTHRP) has been identified in human tumors associated with the syndrome of humoral hypercalcemia of malignancy. The PTHRP and parathyroid hormone (PTH) genes appear to have arisen by duplication and to represent members of a gene family. PTHRP mRNAs have been demonstrated in a number of normal tissues, but little is known concerning the regulation of PTHRP gene expression in any site. We studied PTHRP gene expression in TT cells, a human C-cell line which also produces calcitonin and calcitonin gene-related peptide. We found that both the synthetic glucocorticoid, dexamethasone, and the active vitamin D metabolite, 1,25-dihydroxyvitamin D3, decreased steady-state PTHRP mRNA levels in TT cells in a time- and dose-dependent fashion. The dexamethasone effect was completely blocked by the glucocorticoid antagonist RU-486. 24,25-dihydroxyvitamin D3 was found to be inactive. Neither dexamethasone nor 1,25-dihydroxyvitamin D3 appeared to influence PTHRP mRNA stability in TT cells, and both agents were shown by nuclear transcription run-off assay to decrease PTHRP gene transcription. These findings indicate that the PTHRP gene is under the transcriptional control of glucocorticoids and vitamin D in a cell line with prototypical neuroendocrine features.

Calcitonin

Clonal rat parathyroid cell line expresses a parathyroid hormone-related peptide but not parathyroid hormone itself.

A novel parathyroid hormone-related peptide has been identified in tumors associated with the syndrome of humoral hypercalcemia of malignancy. Subsequently, mRNAs encoding this peptide have been found to be expressed in a number of normal tissues, including the parathyroids. Using Northern blotting, RNase protection, and immunochemical techniques, we examined a clonal rat parathyroid cell line originally developed as a model system for studying parathyroid cell physiology. We found that this line expresses the parathyroid hormone-related peptide but not parathyroid hormone itself. Secretion of the parathyroid hormone-related peptide varied inversely with extracellular calcium concentration, but neither calcium nor 1,25-dihydroxyvitamin D3 appeared to influence steady-state parathyroid hormone-related peptide mRNA levels. This clonal line may prove to be an interesting system for studying the factors responsible for tissue-specific parathyroid hormone and parathyroid hormone-related peptide gene expression.

Animals

Trichlormethiazide and oral phosphate therapy in patients with absorptive hypercalciuria.

In a short-term prospective study 36 patients with absorptive hypercalciuria were initially treated with diet alone followed by either trichlormethiazide (4 mg. per day) or oral neutral phosphate (1,500 mg. of elemental phosphorus per day) for 6 weeks. Study subjects were then crossed over to the second drug for an additional 6 weeks. In response to dietary treatment urinary calcium decreased from a pre-treatment value of 346 +/- 63 mg. per 24 hours to 308 +/- 90 mg. per 24 hours. Oral phosphate therapy caused a further decrease in urinary calcium to 218 +/- 85 mg. per 24 hours, an over-all decrease of 37 per cent. Parathyroid function did not change significantly with phosphate administration but circulating levels of 1,25-dihydroxyvitamin D decreased by 22 per cent (73 +/- 12 to 57 +/- 16 pg. per ml., p less than 0.001). Pre-treatment renal phosphate threshold did not correlate with the response to oral phosphate administration. Trichlormethiazide treatment led to a 34 per cent decrease in urinary calcium with a mean value on treatment of 228 +/- 80 mg. per 24 hours. 1,25-Dihydroxyvitamin D levels decreased by 10 per cent. Pre-treatment fasting calcium excretion, parathyroid function and 1,25-dihydroxyvitamin D levels did not correlate with the response to trichlormethiazide. We conclude that both drugs by pharmacological means improve the biochemical abnormalities in absorptive hypercalciuria and should be efficacious in its treatment.

Adult

Primary hyperparathyroidism.

Hyperparathyroidism was described initially in the mid 1920s in patients suffering from a rare and severe form of bone disease, osteitis fibrosa cystica. In the 1940s and 1950s renal stone disease was recognized as a far more frequent complication of primary hyperparathyroidism than bone disease, and approximately half of the patients with primary hyperparathyroidism in clinical series published through the 1970s presented with renal stones. The introduction of routine determination of serum calcium concentration in the mid 1970s has had a dramatic impact on the frequency with which primary hyperparathyroidism is diagnosed in the population, particularly in older individuals with predominantly nonspecific symptoms of the disease. Stone complications appear to occur in less than 10 per cent of such patients. Underlying primary hyperparathyroidism is diagnosed in approximately 1 to 5 per cent of the patients with calcium stone disease. The predominant risk factor for stone formation in primary hyperparathyroidism is hypercalciuria, and patients typically present with moderate to marked hypercalciuria but with only mild hypercalcemia, in the range of 11 mg. per dl. or less. Hypercalciuria in these patients is principally the result of 1,25-dihydroxyvitamin D-mediated hyperabsorption of calcium from the intestine. The pattern of hypercalciuria disproportionate to the degree of hypercalcemia that typifies patients with primary hyperparathyroidism and stone disease reaches an extreme degree in patients with so-called subtle or normocalcemic primary hyperparathyroidism, in whom diagnosis by routine techniques may be difficult. Parathyroid exploration remains the treatment of choice in patients with primary hyperparathyroidism and stone complications.

Adult

Isolation and characterization of the human parathyroid hormone-like peptide gene.

A parathyroid hormone-like peptide (PTH-LP) has recently been identified in human tumors associated with the syndrome of humoral hypercalcemia of malignancy. The peptide appears to be encoded by a single-copy gene that gives rise to multiple mRNAs that are heterogeneous at both their 5' and their 3' ends. Alternative RNA splicing is responsible for the 3' heterogeneity and results in mRNAs encoding three different peptides, each with a unique C terminus. We have isolated and characterized the human PTHLP gene. The gene is a complex transcriptional unit spanning more than 12 kilobases of DNA and containing six exons. Two 5' exons encode distinct 5' untranslated regions and are separated by a putative promoter element, indicating that the gene either has two promoter or is alternatively spliced from a single promoter upstream of the first exon. The middle portion of the PTHLP gene, comprising exons 2-4, has an organizational pattern of introns and exons identical to that of the parathyroid hormone gene, consistent with a common ancestral origin of these two genes. Exon 4 of the PTHLP gene encodes the region common to all three peptides and the C terminus of the shortest peptide, and exons 5 and 6 encode the unique C termini of the other two peptides. Northern analysis of mRNAs from four human tumors of different histological types reveals the preferential use of 3' splicing patterns by individual tumors.

Amino Acid Sequence

Expression of transcripts encoding a parathyroid hormone-related peptide in abnormal human parathyroid tissues.

A PTH-related peptide (PTHRP) has been identified and its cDNA cloned from human tumors associated with the syndrome of humoral hypercalcemia of malignancy. The human PTHRP gene has been recently isolated and found to be a complex transcriptional unit using multiple promoters and containing alternatively spliced 3' exons which result in three mRNA classes, each class encoding a PTHRP with a unique carboxy-terminus. The PTHRP gene appears to be expressed in a number of normal tissues, and PTHRP transcripts have been previously reported to be overexpressed in a small sample of human parathyroid adenomas. In the present study we surveyed RNA prepared from a total of 60 abnormal human parathyroid glands for PTHRP gene expression using a combination of Northern blotting and RNase protection techniques. Apparent overexpression of PTHRP mRNA was observed in two thirds of parathyroid adenomas, whereas no overexpression was found in 7 examples of sporadic primary hyperplasia, 5 examples of secondary hyperplasia, and 3 examples of parathyroid carcinoma. Apparent overexpression was also observed in 1 of 4 cases of multiple endocrine neoplasia type 1, 1 of 2 examples of multiple endocrine neoplasia type 2, and 1 gland considered to represent tertiary hyperparathyroidism. Northern analysis of poly(A)+ RNA prepared from three representative adenomas using region-specific probes indicated that two putative promoters are used and revealed a pattern of preferential splicing of transcripts to include the most distal 3' exon. These findings suggest that the PTHRP gene is commonly overexpressed in adenomatous parathyroid glands, but not in sporadic primary hyperplasia, that this overexpression does not seem to be dependent on the use of a single specific promoter, and that adenomatous parathyroid cells appear to preferentially use one of several alternative splicing pathways. It is presently not known whether PTHRP is secreted by abnormal parathyroid tissues and, if so, in what form.

Adenoma

Glucocorticoid regulation of parathyroid hormone-related peptide gene transcription in a human neuroendocrine cell line.

A PTH-related peptide (PTHRP) has been identified and its cDNA cloned from tumors associated with the syndrome of humoral hypercalcemia of malignancy. The PTHRP and PTH genes appear to represent members of a gene family. Whereas the PTH gene is expressed exclusively in the parathyroids, the PTHRP gene appears to be widely expressed, but little is known concerning the regulation of its expression in any site. We studied the regulation of PTHRP gene expression in a human carcinoid cell line (NCI-H727) which has neuroendocrine features and also produces calcitonin, calcitonin gene-related peptide, and chromogranin-A. We found that the synthetic glucocorticoid triamcinolone produced time- and dose-dependent decreases in steady state PTHRP and calcitonin mRNA levels in NCI-H727 cells. This effect was blocked by the competitive glucocorticoid inhibitor RU-486. Messenger RNA stability and transcription run-off experiments revealed that triamcinolone decreased PTHRP and calcitonin expression by repressing the transcription rates of both genes.

Calcitonin

The parathyroid hormone-related protein associated with malignancy is secreted by neuroendocrine tumors.

We have demonstrated the production of the PTH-related protein (PTHrP) associated with hypercalcemia of malignancy by human neuroendocrine cell lines that also produce calcitonin gene products and chromogranin A. PTHrP was demonstrable in the cells by immunocytochemistry and immunoassay and Northern analysis of the cells revealed the presence of multiple mRNAs for PTHrP. The cell lines also secreted PTHrP in a regulated fashion, with the most potent secretagogue being phorbol. Thus, PTHrP is secreted by neuroendocrine cells and it may have neuroectodermal lineage. The coexpression of calcitonin gene products and chromogranin A, also neuroendocrine, with PTHRP may influence its secretion and ultimate biological effects in vivo.

Colforsin