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Biomedical subjects

D E Hughes

Publications and source records attributed to D E Hughes.

At least 19 recordsLinked to original sources

Alendronate mechanism of action: geranylgeraniol, an intermediate in the mevalonate pathway, prevents inhibition of osteoclast formation, bone resorption, and kinase activation in vitro.

Nitrogen-containing bisphosphonates were shown to cause macrophage apoptosis by inhibiting enzymes in the biosynthetic pathway leading from mevalonate to cholesterol. This study suggests that, in osteoclasts, geranylgeranyl diphosphate, the substrate for prenylation of most GTP binding proteins, is likely to be the crucial intermediate affected by these bisphosphonates. We report that murine osteoclast formation in culture is inhibited by both lovastatin, an inhibitor of hydroxymethylglutaryl CoA reductase, and alendronate. Lovastatin effects are blocked fully by mevalonate and less effectively by geranylgeraniol whereas alendronate effects are blocked partially by mevalonate and more effectively by geranylgeraniol. Alendronate inhibition of bone resorption in mouse calvaria also is blocked by mevalonate whereas clodronate inhibition is not. Furthermore, rabbit osteoclast formation and activity also are inhibited by lovastatin and alendronate. The lovastatin effects are prevented by mevalonate or geranylgeraniol, and alendronate effects are prevented by geranylgeraniol. Farnesol and squalene are without effect. Signaling studies show that lovastatin and alendronate activate in purified osteoclasts a 34-kDa kinase. Lovastatin-mediated activation is blocked by mevalonate and geranylgeraniol whereas alendronate activation is blocked by geranylgeraniol. Together, these findings support the hypothesis that alendronate, acting directly on osteoclasts, inhibits a rate-limiting step in the cholesterol biosynthesis pathway, essential for osteoclast function. This inhibition is prevented by exogenous geranylgeraniol, probably required for prenylation of GTP binding proteins that control cytoskeletal reorganization, vesicular fusion, and apoptosis, processes involved in osteoclast activation and survival.

Alendronate

Recent advances in bone biology provide insight into the pathogenesis of bone diseases.

Bone is modeled during embryonic development by endochondral and membranous ossification and is continuously remodeled thereafter under the influence of local and systemic factors to provide structural support and assist in calcium homeostasis. Recent studies of knockout and transgenic mice have increased understanding of the regulation of bone modeling during development and of remodeling of mature bone and have shed new light on the pathogenesis of a number of bone disorders. For example, fibroblast growth factor receptor-3, parathyroid hormone-related protein, and tartrate-resistant acid phosphatase affect the function of chondrocytes during endochondral ossification (the latter two by regulating their life spans and thus growth plate thickness and bone length). Some ubiquitously expressed genes seem unexpectedly to have unique functions that are largely confined to bone cells: M-CSF, C-Fos, PU.1, and NF-kappaB are required for osteoclast formation, whereas c-Src and Mitf (microphthalmia transcription factor) are required for osteoclast activity after the cells have formed. Knockout of these genes results in osteopetrosis, a disorder characterized by persistence in marrow cavities of unresorbed osteocartilaginous matrix and, as in some affected humans, by increased mortality. Some proteins seem to act as negative regulators of bone cell function, for example osteoprotegerin (a soluble TNF receptor) in osteoclasts; osteocalcin, bone sialoprotein, and 5-lipoxygenase in osteoblasts. Regulation of osteoclast life span may be an important mechanism by which estrogen and bisphosphonates prevent bone loss in conditions characterized by increased bone resorption, such as postmenopausal osteoporosis. The unique requirement of bone cells for certain gene products raises the possibility that these cells may have specific responses to inhibitory or stimulatory agents, and that signaling molecules in these response pathways could be specific targets for novel therapies to treat or prevent common bone diseases.

Animals

Nitrogen-containing bisphosphonates inhibit the mevalonate pathway and prevent post-translational prenylation of GTP-binding proteins, including Ras.

Bisphosphonates are currently the most important class of antiresorptive drugs used for the treatment of metabolic bone diseases. Although the molecular targets of bisphosphonates have not been identified, these compounds inhibit bone resorption by mechanisms that can lead to osteoclast apoptosis. Bisphosphonates also induce apoptosis in mouse J774 macrophages in vitro, probably by the same mechanisms that lead to osteoclast apoptosis. We have found that, in J774 macrophages, nitrogen-containing bisphosphonates (such as alendronate, ibandronate, and risedronate) inhibit post-translational modification (prenylation) of proteins, including the GTP-binding protein Ras, with farnesyl or geranylgeranyl isoprenoid groups. Clodronate did not inhibit protein prenylation. Mevastatin, an inhibitor of 3-hydroxy-3-methylglutatyl (HMG)-CoA reductase and hence the biosynthetic pathway required for the production of farnesyl pyrophosphate and geranylgeranyl pyrophosphate, also caused apoptosis in J774 macrophages and murine osteoclasts in vitro. Furthermore, alendronate-induced apoptosis, like mevastatin-induced apoptosis, could be suppressed in J774 cells by the addition of farnesyl pyrophosphate or geranylgeranyl pyrophosphate, while the effect of alendronate on osteoclast number and bone resorption in murine calvariae in vitro could be overcome by the addition of mevalonic acid. These observations suggest that nitrogen-containing bisphosphonate drugs cause apoptosis following inhibition of post-translational prenylation of proteins such as Ras. It is likely that these potent antiresorptive bisphosphonates also inhibit bone resorption by preventing protein prenylation in osteoclasts and that enzymes of the mevalonate pathway or prenyl protein transferases are the molecular targets of the nitrogen-containing bisphosphonates. Furthermore, the data support the view that clodronate acts by a different mechanism.

Alendronate

Automated microanalysis using magnetic beads with commercial capillary electrophoretic instrumentation.

The potential of a new microanalytical method using magnetic beads (MBs) and commercial capillary electrophoresis (CE) instrumentation for performing enzymatic and inhibition assays, as well as for analysis of biological molecules such as antigens, substrates, etc., has been explored. A small quantity of magnetic beads containing immobilized biomolecules was injected into a neutral hydrophilic-coated fused-silica capillary. The short plug (2-3 mm) of beads was held fixed by a magnet placed in the cartridge of the CE system, without the use of frits. The beads could be replaced after each run, eliminating the need to regenerate the solid support. Two protocols were used for analysis: sequential injection (SI) and SI followed by isotachophoretic (ITP) focusing. Alkaline phosphatase (AP) and HIV-protease were used to demonstrate the SI procedure for enzymatic and inhibition assays. The second protocol, SI/ITP, was employed to quantitate an antigen (mouse mAB) using antibodies (sheep IgG towards mouse AB) immobilized on the beads. The MB-CE method, requiring only femtomole (fmol) quantities of material, can potentially be employed in diagnostic and forensic assays, kinetic studies and searching for inhibitors, ligands, receptors, etc.

Alkaline Phosphatase

pH-dependent isoform transitions of a monoclonal antibody monitored by micellar electrokinetic capillary chromatography.

Within the pH range 2-12, the monoclonal chimeric antibody BR96 can be separated into one to five isoforms by micellar electrokinetic capillary chromatography (MECC). The distribution of the immunoglobulin between these isoforms is pH dependent and apparently reversible. Some of the changes in the electrophoretic profile are represented by alterations in the immunoglobulin secondary structure. MECC and CD data demonstrate that, in other cases, differences in electrophoretic mobilities of the intact and acid-stressed antibody molecules were not due to differences in the ionization of the protein functional groups or changes in secondary structure, but rather resulted from differences in the exposure of the molecule's structural elements to the solvent. The results indicate that the interaction of the isoforms with sodium dodecyl sulfate micelles plays a crucial role in MECC isoform separations. The formation of analyte-micelle complexes was postulated to make electrophoretic mobilities, especially of large protein molecules, susceptible to subtle conformational changes that are not detectable by other methods.

Antibodies, Monoclonal

Map positions of 47 Arabidopsis sequences with sequence similarity to disease resistance genes.

Map positions have been determined for 42 non-redundant Arabidopsis expressed sequence tags (ESTs) showing similarity to disease resistance genes (R-ESTs), and for three Pto-like sequences that were amplified with degenerate primers. Employing a PCR-based strategy, yeast artificial chromosome (YAC) clones containing the EST sequences were identified. Since many YACs have been mapped, the locations of the R-ESTs could be inferred from the map positions of the YACs. R-EST clones that exhibited ambiguous map positions were mapped as either cleavable amplifiable polymorphic sequence (CAPS) or restriction fragment length polymorphism (RFLP) markers using F8 (Ler x Col-0) recombinant inbred (RI) lines. In all cases but two, the R-ESTs and Pto-like sequences mapped to single, unique locations. One R-EST and one Pto-like sequence each mapped to two locations. Thus, a total of 47 loci were identified in this study. Several R-ESTs occur in clusters suggesting that they may have arisen via gene duplication events. Interestingly, several R-ESTs map to regions containing genetically defined disease resistance genes. Thus, this collection of mapped R-ESTs may expedite the isolation of disease resistance genes. As the cDNA sequencing projects have identified an estimated 63% of Arabidopsis genes, a very large number of R-ESTs (approximately 95), and by inference disease resistance genes of the leucine-rich repeat-class probably occur in the Arabidopsis genome.

Arabidopsis

Capillary electrophoretic examination of underivatized oligosaccharide mixtures released from immunoglobulin G antibodies and CTLA4Ig fusion protein.

A procedure is presented for the separation of underivatized oligosaccharides by capillary electrophoresis (CE) with a phytic acid-borate buffer system. The presence of the phytic acid ion-pairing agent greatly increases resolution between oligosaccharides in the complex mixtures studied, which was demonstrated by the separation of oligosaccharides originating from various immunoglobulin G antibodies and CTLA4Ig, a biologic fusion protein. The conditions also resolve neutral oligosaccharides, usually a major CE limitation. High-performance anion-exchange chromatography with pulsed amperometric detection, a standard technique for oligosaccharide and sugar analysis, is used as a reference method to analyze some of the complex oligosaccharide mixtures.

Abatacept

Liquid chromatographic and capillary electrophoretic examination of intact and degraded fusion protein CTLA4Ig and kinetics of conformational transition.

Methods have been developed for the CE and HPLC analysis of CTLA4Ig, an immunoglobulin fusion protein. Two different LC approaches, size-exclusion (SEC) and "mixed-mode" ion-exchange (ABx), were developed along with a CE method that uses a micellar electrokinetic chromatographic buffer consisting of borate ions, sodium dodecyl sulfate and acetonitrile. These assays measure the presence of several CTLA4Ig-related species, and the observed changes resulting from multiple modes of degradation. In an attempt to identify possible degradation products, collections were taken from the ABx and SEC liquid chromatographic systems and further analyzed by matrix-assisted laser desorption time-of-flight (MALDI TOF) mass spectrometry. Multiple species were detected covering a wide molecular mass range. In addition, the CE method was used to study conformational kinetics between two forms of CTLA4Ig and to estimate the activation energy of the conformer-conformer transition. Pseudo-first-order reaction kinetics were demonstrated for CTLA4Ig samples stressed with papain, H2O2, and sodium dodecyl sulfate/heat.

Abatacept

Analysis of human articular chondrocyte CD44 isoform expression and function in health and disease.

Interactions between articular chondrocytes and components of the extracellular matrix are of potential importance in the normal function of cartilage and in the pathophysiology of arthritis. Little is known of the basis of these interactions, but cell adhesive molecules such as CD44 are likely to be involved. Immunohistology using six well-characterized anti-CD44 monoclonal antibodies demonstrated standard CD44 isoform (CD44H) expression by all chondrocytes in normal and osteoarthrotic (OA) cartilage but absence of the CD44E variant. Polymerase chain reaction (PCR) of reverse transcribed mRNA from monolayer cultures of normal and OA chondrocytes using primer sequences which span the region containing variably spliced exons produced a predominant band representing the standard form of CD44, which lacks the variable exons 6-15 (v1-v10). No product was seen at the expected size of the epithelial variant of CD44 (CD44v8-10). Use of exon-specific primers, however, showed expression of variant exons resulting in multiple minor isoforms. Standard CD44 was also shown to be the predominantly expressed isoform identified by immunoprecipitation, but human articular chondrocytes did not adhere to hyaluronan in vitro. Chondrocyte CD44 may function as an adhesion receptor for other matrix molecules such as fibronectin or collagen.

Adult

Estrogen promotes apoptosis of murine osteoclasts mediated by TGF-beta.

Postmenopausal osteoporosis, the most common bone disease in the developed world, is associated with estrogen deficiency. This deficiency induces increased generation and activity of osteoclasts, which perforate bone trabeculae, thus reducing their strength and increasing fracture risk. Estrogen replacement prevents these effects, indicating that estrogen negatively regulates osteoclast formation and function, but how it does this is unclear. Because functional osteoclast life span and thus the amount of bone that osteoclasts resorb could also be enhanced following estrogen deficiency, and since sex steroids regulate apoptosis in other target tissues, we investigated whether estrogen may affect osteoclast function by promoting apoptosis. 17 beta-Estradiol promoted apoptosis of murine osteoclasts in vitro and in vivo by two- to threefold. Tamoxifen, which has estrogenic effects on bone resorption, and transforming growth factor-beta 1 (TGF-beta), whose production by osteoblasts is increased by estrogen, had similar effects in vitro. Anti-TGF-beta antibody inhibited TGF-beta-, estrogen- and tamoxifen-induced osteoclast apoptosis, indicating that TGF-beta might mediate this effect. These findings suggest that estrogen may prevent excessive bone loss before and after the menopause by limiting osteoclast life span through promotion of apoptosis. The development of analogues to promote this mechanism specifically could be a useful and novel therapeutic approach to prevent postmenopausal osteoporosis.

Animals

Monitoring of IgG antibody thermal stability by micellar electrokinetic capillary chromatography and matrix-assisted laser desorption/ionization mass spectrometry.

Monitoring the stability of immunoglobulin G (IgG) type antibodies is a crucial analytical issue spanning a wide variety of immunological/biotechnological studies, which includes the analysis of conjugated IgG's for drug delivery. Capillary electrophoresis (CE) has proven valuable for the analysis of proteins and has the potential to separate and detect native antibody components. An ideal complement to CE, which is capable of providing the desired detection specificity to provide species identification information, is matrix-assisted laser desorption/ionization mass spectrometry (MALDI-MS). Utilizing these two techniques we have developed an antibody examination procedure and monitored the degradation of an internalizing chimeric (human/mouse) monoclonal antibody (BR96). Electropherograms of the antibody after up to 166 h of thermal stress are presented; MALDI mass spectra of the stressed antibody were acquired at the same time points. At 166 h, the percentage of ionization carried by the intact antibody molecular ions M+, M2+, etc., had clearly decreased, while that due to additional ion species had significantly increased. Ions corresponding in mass to loss of one light chain, loss of an Fab arm to yield an Fab/c type fragment, and formation of separated heavy-chain and light-chain moieties were observed. Several of these fragments result from simple disulfide linkage disruption. In addition, species less in mass than common antibody subunits were also observed, demonstrating peptide as well as disulfide bond cleavage. The observation that a small number of well-defined species were formed during the study suggests that the cleavage induced by thermal stress is very site-specific within the IgG.

Animals

Conformational diversity and conformational transitions of a monoclonal antibody monitored by circular dichroism and capillary electrophoresis.

Four major isoforms of the BR96 antibody were separated by micellar electrokinetic capillary chromatography. Heat-induced reversible isoform interconversions were observed at 70 degrees C, and after extended incubation at 80 degrees C, all species irreversibly transformed into a new single peak. In the presence of sodium dodecyl sulfate (1.0 mg/mL), the isoform transformations occurred at lower temperatures without altering the separation pattern. Size exclusion chromatography analysis detected no aggregation at temperatures below 80 degrees C. Parallel circular dichroism measurements indicated significant conformational changes at 70-80 degrees C. The parallelism between isoform transformations and secondary structure changes allows consideration of CE-separated isoforms of BR96 antibody as conformers, an equilibrium between which can be shifted by different physicochemical factors such as elevated temperatures and amphiphilic surfactants.

Antibodies, Monoclonal

Bisphosphonates promote apoptosis in murine osteoclasts in vitro and in vivo.

Bisphosphonates inhibit bone resorption and are therapeutically effective in diseases of increased bone turnover, such as Paget's disease and hypercalcemia of malignancy. The mechanisms by which they act remain unclear. Proposed mechanisms include inhibition of osteoclast formation from precursors and inhibitory or toxic effect on mature osteoclasts. We have developed a new in vitro model to study osteoclast survival and in this paper present in vitro and in vivo evidence that may explain both the observed reduction in osteoclast numbers and in bone resorption by mature osteoclasts, namely that bisphosphonates induce programmed cell death (apoptosis). Three bisphosphonates (risedronate, pamidronate, and clodronate) caused a 4- to 24-fold increase in the proportion of osteoclasts showing the characteristic morphology of apoptosis in vitro. This observation was confirmed in vivo in normal mice, in mice with increased bone resorption, and in nude mice with osteolytic cancer metastases, with similar-fold increases to those observed in vitro. Of the three compounds, risedronate, the most potent inhibitor of bone resorption in vivo, was the strongest inducer of osteoclast apoptosis in vitro. Osteoclast apoptosis may therefore be a major mechanism whereby bisphosphonates reduce osteoclast numbers and activity, and induction of apoptosis could be a therapeutic goal for new antiosteoclast drugs.

Animals

Capillary electrophoretic examination of underivatized O-linked and N-linked oligosaccharide mixtures and immunoglobulin G antibody-released oligosaccharide libraries.

A procedure for the analysis of mixtures of underivatized, cleaved O-linked and N-linked oligosaccharides by capillary electrophoresis has been developed. The species of interest are separated by two borate-based buffer systems with an uncoated capillary. The procedure is applied to hydrazinolysis-released oligosaccharides from mouse, rat, sheep and human IgG protein samples which are examined within 6 minutes. Selectivity with respect to sample variation is demonstrated by analysis of thermally stressed samples.

Animals

CD44 expression in human bone: a novel marker of osteocytic differentiation.

CD44 is a transmembrane glycoprotein with cell-cell and cell-matrix adhesion functions that is expressed by a wide variety of cell types and has a number of known biologic functions. Because of its ability to bind matrix macromolecules, such as fibronectin, collagen, and hyaluronate, we investigated the possibility that it is expressed by the cells of bone, the matrix receptors of which are largely unknown. Immunohistochemical study of a variety of sources of human bone was carried out using a panel of six well-characterized anti-CD44 monoclonal antibodies. Osteocytes strongly expressed CD44, whereas osteoblasts and lining cells were negative. Osteoclasts and periosteal cells also expressed CD44, although not as strongly as osteocytes. These patterns of staining were observed with all six antibodies. These results demonstrate that acquisition of CD44 immunoreactivity is a sensitive marker of osteocytic differentiation and raise the possibility that CD44 acts as a cell matrix receptor in bone.

Bone Diseases

Integrin expression in squamous neoplasia of the cervix.

Epithelial cell-basement membrane interactions are important in maintaining tissue architecture and function, and the anatomical and functional relationships between epithelial cells and their basement membranes are clearly altered in malignancy. These interactions are thought to be largely mediated by the integrins, a family of heterodimeric transmembrane glycoproteins, each consisting of an alpha and a beta chain. Epithelial integrins mainly belong to the beta 1 (VLA) subfamily, which forms receptors for matrix macromolecules such as fibronectin, laminin, and collagen. There is evidence that integrin expression changes in some epithelial malignancies, possibly in relation to invasive potential. Integrin expression in cervical neoplasia was studied by immunohistochemical examination of prospectively collected colposcopic biopsies. Well-characterized monoclonal antibodies against beta 1-4, alpha 1-6, and alpha V integrins were used to examine normal, koilocytic, and dysplastic cervical squamous epithelium, and invasive squamous carcinoma. beta 1, beta 4, alpha 2, alpha 3, alpha 6, and alpha V were expressed by the basal layer of normal cervical squamous epithelium and by dysplastic cells in CIN (cervical intraepithelial neoplasia) 1 and 2, with none being lost and no new chains acquired. In CIN3, these integrins were either expressed throughout the ectocervical epithelium or restricted to the basal layer. In the latter cases, integrin expression was retained to a greater degree by dysplastic squamous epithelium within endocervical glands. These patterns could not be correlated with age or smear history in the cases examined. Patterns of integrin expression in neoplastic cervical epithelium therefore differ from those of normal cervical epithelium.(ABSTRACT TRUNCATED AT 250 WORDS)

Adolescent