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Biomedical subjects

Linda J Krebs

Publications and source records attributed to Linda J Krebs.

5 recordsLinked to original sources

HRPT2 mutational analysis of typical sporadic parathyroid adenomas.

CONTEXT: Mutations of HRPT2 are frequent in sporadic parathyroid carcinomas and central to their pathogenesis. However, the potential diagnostic utility of HRPT2 mutation status to distinguish between parathyroid carcinoma and adenoma hinges on the frequency of HRPT2 mutations in benign adenomas. Even a low rate of HRPT2 mutation in adenomas would greatly alter diagnostic specificity, because adenomas are far more prevalent than carcinomas. The issue remains open because of the limited number of typical adenomas, not subjected to additional selection criteria, examined in previous studies. OBJECTIVE/DESIGN/PATIENTS: To determine the frequency of HRPT2 somatic mutations in a substantial series of typical, sporadic parathyroid adenomas, we directly sequenced coding and flanking splice junctional regions of all HRPT2 exons in solitary adenomas from 60 patients. RESULTS/CONCLUSIONS: No intragenic HRPT2 mutations were detected, strengthening the degree of specificity of HRPT2 mutation as a feature of sporadic parathyroid carcinoma as opposed to sporadic adenomas. Our observations encourage additional study of the diagnostic potential of HRPT2 in parathyroid neoplasia and support the view that HRPT2 inactivation is not an important participant in the pathogenesis of typical parathyroid adenomas.

Adenoma↗

Calcimimetics and hyperparathyroidism.

The calcium-sensing receptor (CaSR) is a key regulator of parathyroid hormone (PTH) secretion and parathyroid proliferation. This review discusses the role of the CaSR in hyperparathyroidism (HPT), and the exploitation of the CaSR as a therapeutic target for the treatment of HPT. Calcimimetics act as CaSR agonists or allosteric activators and thereby potentiate the effects of extracellular Ca2+ on parathyroid cell function. Results from clinical trials using calcimimetics to treat primary and secondary HPT, as well as primary HPT from parathyroid carcinoma, suggest that calcimimetic compounds could provide an effective alternative or additional therapeutic approach for various forms of HPT.

Aniline Compounds↗

A conjugate of doxorubicin and an analog of Luteinizing Hormone-Releasing Hormone shows increased efficacy against oral and laryngeal cancers.

A doxorubicin and [D-Lys(6)]Luteinizing Hormone-Releasing Hormone (LH-RH) conjugate, AN-152, was designed to target LH-RH receptor positive cells. AN-152 is more potent against a specific group of cancers than doxorubicin and has less peripheral toxicity. This therapy is potentially efficacious against many other types of malignancies. Here, AN-152 was tested on oral (KB) and laryngeal (HEp-2) carcinoma cells. LH-RH receptor presence was demonstrated by displacement binding assays. Cells were treated with 10 nM EGF or left untreated, then exposed to 0-10 microM AN-152. Cytotoxicity was assessed by MTT assay to determine ED(50) values. AN-152 association with the cells was monitored using two-photon laser scanning microscopy. AN-152 was more potent than doxorubicin in both KB and HEp-2 cell lines (P<0.05). Up-regulation of LH-RH receptors by epidermal growth factor (EGF) increased the entry and potency of AN-152 in KB cells, but not in HEp-2 cells. This novel approach may be effective against a variety of cancers.

Antineoplastic Combined Chemotherapy Protocols↗

Molecular pathogenesis of primary hyperparathyroidism.

This article will primarily focus on the molecular pathogenesis of common, sporadic (nonfamilial) parathyroid adenomas; two genes currently have established roles in the development of these tumors. The cyclin D1/PRAD1 gene was identified as a clonally activated oncogene in parathyroid adenomas and has subsequently been established as a major contributor to human neoplasia. Overexpression of cyclin D1, a key regulator of the cell cycle, has been implicated in the pathogenesis of 20-40% of sporadic parathyroid adenomas. That such cyclin D1 overexpression indeed constitutes a stimulus to excessive parathyroid cell proliferation has been confirmed experimentally by the development of a transgenic mouse model with parathyroid-targeted overexpression of cyclin D1. Parathyroid hormone (PTH)-cyclin D1 transgenic mice develop parathyroid hypercellularity, biochemical hyperparathyroidism, and a shifted in vivo parathyroid-calcium setpoint; these mice constitute an animal model of human hyperparathyroidism in which aspects of tumorigenesis, parathyroid secretory setpoint control, and the pathophysiology of the chronic hyperparathyroid state can be further investigated. The MEN1 tumor suppressor is the only other gene to date with an established role in the pathogenesis of sporadic parathyroid adenomatosis. Specific clonal alterations involving somatic mutation and/or deletion of both MEN1 alleles have been demonstrated in about 15-20% of sporadic parathyroid adenomas. Allelic losses on 11q occur in roughly twice this number of adenomas, raising the still-unresolved possibility that an additional tumor suppressor gene on 11q may be the functional target of many of these acquired deletions. A mouse model of MEN1 deficiency causes a phenotype that includes parathyroid hypercellularity albeit unaccompanied by biochemical hyperparathyroidism, and additional mouse models in which menin deficiency is targeted to the parathyroids will likely provide additional important insights. The MEN1 gene product menin may have a role in transcriptional regulation involving JunD; several other menin-interacting proteins have also been identified. The in vivo mechanism of menin's actions, with special attention to its role as a parathyroid oncosuppressor, will be important to establish, as will the potential interrelationships between these pathways and those involving cyclin D1. A number of genes, put forth as candidate tumor suppressors based on their genomic locations, roles in familial disease, and/or other relevant biological functions, have been examined for pathogenetic mutations in sporadic parathyroid tumors with negative results; these include the calcium-sensing receptor protein (CaR), vitamin-D receptor (VDR), and RET. However, the CaR, which when partially or markedly deficient because of germline mutation can cause familial hypocalciuric hypercalcemia or neonatal severe hyperparathyroidism, must still be considered as having a potentially important secondary role in the manifestations of sporadic parathyroid tumors. Future goals include identifying additional parathyroid oncogenes and tumor suppressor genes; exploiting tools of complex trait genetics to ascertain whether development of "sporadic" hyperparathyroidism might be influenced by predisposing polymorphic alleles in the population; obtaining molecular insights into the relationship between proliferative and hormone regulatory abnormalities of hyperparathyroidism; and obtaining molecular insights into the observed association of parathyroid neoplasia with exposure to ionizing irradiation and with the postmenopausal state.

Adenoma↗

Bombesin and epidermal growth factor potentiate the effect of cytotoxic LH-RH analog AN-152 in vitro.

The conjugation of doxorubicin with [D-Lys6] Luteinizing Hormone-Releasing Hormone (LH-RH), yields AN-152, a cytotoxic analog that can be targeted to tumor cells expressing LH-RH receptors. This conjugate is more potent against LH-RH receptor positive cancer cells and has less peripheral toxicity than free doxorubicin. The proliferation of MCF-7 human breast cancer cells in vitro is inhibited by AN-152 and this effect can be augmented by the up-regulation of LH-RH receptor expression through stimulation of tyrosine phosphorylation with epidermal growth factor (EGF). Bombesin and gastrin releasing peptide increase tyrosine phosphorylation and can act synergistically with EGF, as well as independently. The aim of this study was to demonstrate that bombesin enhances cytotoxic sensitivity of MCF-7 cells to AN-152 and that a significantly higher efficacy of the drug can be achieved in cells exposed to both bombesin and EGF. The cells were pretreated with bombesin and/or EGF, and then exposed to 0-10 micro M AN-152 for 96 h for determination of cytotoxicity. In addition, cells pretreated with bombesin and/or EGF were exposed for 1 h to 0.6 micro M AN-152 labeled with a two-photon fluorophore (AN-152:C625) for fluorescent imaging of drug entry. Bombesin as well as EGF increased the uptake and cytotoxicity of AN-152 in MCF-7 cells. The exposure of the cells to both EGF and bombesin produces a synergistic effect and results in increased cellular entry and cytotoxicity of AN-152. These results suggest that the activation of LH-RH receptors by compounds that increase tyrosine phosphorylation could further improve the response to targeted chemotherapy with AN-152.

Antineoplastic Agents↗