PubMed Health⌕ Search

Biomedical subjects

L Brophy

Publications and source records attributed to L Brophy.

10 recordsLinked to original sources

Region II of the Haemophilus influenzae type be capsulation locus is involved in serotype-specific polysaccharide synthesis.

The central (serotype-specific) Region II of the Haemophilus influenzae Type b capsulation locus cap is 8.3 kb long and contains a cluster of four genes. We show that these genes, designated orf1 to orf4, are involved in the biosynthetic steps required for the formation of the Type b capsular polysaccharide and that orf1 probably encodes a CDP-ribitolpyrophosphorylase. We present evidence that growth of polysaccharide chains takes place through the alternating addition of single sugar nucleotides.

Amino Acid Sequence↗

Direct suppression of phagocytosis by amphipathic polymeric surfactants.

Recent studies have demonstrated that phagocytosis of colloidal particles by the mononuclear phagocytes of the liver and spleen can be controlled by either coating or stabilizing particulate carriers with the amphipathic polymeric surfactants, F108 and T908. These surfactants consist of copolymers of polypropylene oxide (PPO) and polyethylene oxide (PEO) and, when adsorbed to particulate surfaces, significantly decrease sequestration of particulates by the mononuclear phagocytes (MPS) of the liver. To evaluate these observations further, murine peritoneal macrophages were incubated for varying periods with surfactant-coated and noncoated polystyrene particles (PSPs). Phagocytosis was monitored using gamma counting and quantitative fluorescence microscopy. The data show that phagocytosis is decreased when PSPs are coated with F108 and T908. In addition, suppression of phagocytic activity was observed when cells were pretreated with the surfactant and then challenged with noncoated particles. The data confirm previous observations that polymeric surfactants consisting of PEO and PPO protect particulate carriers from rapid uptake by the MPS of the liver. Further, F108 and T908 suppress phagocytosis directly without affecting the integrity, viability, or functional state of the cell.

Animals↗

Leukotriene B4 modulates phospholipid methylation and chemotaxis in human polymorphonuclear leukocytes.

Formation of phosphatidylcholine from phosphatidylethanolamine via the S-adenosylmethionine (AdoMet) pathway has been shown to be required for signal transduction of receptor-ligand interactions in a variety of cells. These interactions result in the remodeling of phospholipid pools and phospholipase activation. To extend these observations and to explore the role of the phosphatidylcholine synthesis pathway in transduction of the leukotriene B4 (LTB4) receptor-ligand response, we examined phospholipid methylation in human polymorphonuclear leukocytes (PMN) following stimulation by LTB4, a potent chemotactic agent that is a metabolite of arachidonic acid. At early time points (approximately 3-10 min), formation of methylated phospholipids was enhanced following LTB4 stimulation. The LTB4 analogs 6-trans LTB4 as well as LTB4 epimers induced less methylation compared with LTB4, and the potencies of these analogs in inducing methylation correlated with their diminished ability to induce chemotaxis. Furthermore, the ability of these agonists to induce methylation also correlated with the binding affinity of these agents to the LTB4 receptors on these cells. Synthesis of phosphatidylcholine by the choline transferase pathway was not affected by LTB4. Inhibition of the AdoMet reaction with 3- deazaadenosine, L-homocysteine homolactone, or erythro-9-[2-hydroxy-3-nonyl] adenine (EHNA) abrogated LTB4-induced phospholipid methylation and the chemotactic response. The potencies of these inhibitors in blocking phospholipid methylation also correlated with their ability to abrogate the LTB4-induced chemotactic response. These data suggest that phospholipid methylation and phospholipase activation play an important role in transduction of the LTB4 receptor-ligand interaction in PMN, which results in chemotaxis.

Chemotaxis, Leukocyte↗

A phospholipase A2-activating protein (PLAP) stimulates human neutrophil aggregation and release of lysosomal enzymes, superoxide, and eicosanoids.

We have recently isolated a human phospholipase A2-activating protein (PLAP) that shares antigenic and biochemical similarities with melittin, a well characterized bee venom phospholipase-stimulatory peptide. To explore the potential mechanisms of action of PLAP that extend beyond its effects on eicosanoid synthesis, we examined its effects on the release of human neutrophil lysosomal enzymes and superoxide, and on RBC hemolysis. These results were compared to the effects of melittin, which has been reported to induce enzyme release and hemolysis. We also examined the effects of PLAP on neutrophil aggregation and chemotaxis. PLAP induced neutrophils to release beta-glucuronidase and metalloproteinase enzyme activities as well as produce superoxide ion in both a dose- and time-dependent manner. Eicosanoid synthesis inhibitors did not abrogate these responses. PLAP induced release of arachidonic acid metabolites, but this response could be abrogated by eicosanoid synthesis inhibitors. PLAP also induced neutrophil aggregation and chemokinesis, but not chemotaxis. Concentrations of PLAP that induced these responses did not induce cellular toxicity as determined by light and electron microscopy, lactic dehydrogenase release, trypan blue dye exclusion, and RBC hemolysis. In contrast, prolonged incubation with higher concentrations of PLAP induced cell death that was similar to that observed with melittin. These findings suggest that the mechanisms of action of PLAP extend beyond the eicosanoid synthetic pathway, and that disordered regulation of PLAP may be responsible, at least in part, for chronic immune and inflammatory states.

Animals↗

Why not a pet?

Explore the source record for details and available documents.

Aged↗

Role of bradykinin in inflammatory arthritis: identification and functional analysis of bradykinin receptors on human synovial fibroblasts.

Receptor type and function of bradykinin (BK) receptors on human synovial fibroblasts (HSF) was determined. Scatchard analysis of [3H]BK saturation binding to intact synovial cells revealed a single binding site, with a Kd of 3.8 +/- 0.6 nM. HSF express approximately 50,000 BK sites/cell. Specificity of [3H]BK binding was confirmed by the ability of several BK peptide agonists and antagonists to inhibit binding in a dose dependent manner. The rank order of potency for agonist inhibition of [3H]BK and the inability of selective antagonists of the B1-type to displace binding suggest that the BK receptor on HSF is a B2 subtype receptor. The addition of BK to HSF caused a time and concentration dependent increase in PGE2 production. This BK induced PGE2 production was blocked by specific B2 type BK antagonists and not by B1 antagonists. The results of this study identify B2 type BK receptors on synovial fibroblasts and suggest that BK may be a primary mediator in inflammatory arthritis.

Arthritis, Rheumatoid↗

Recent advances in the management of biotherapy-related side effects: fatigue.

Limited information about fatigue patterns in patients with cancer exists in the biotherapy literature. When fatigue is mentioned, it is usually to state whether or not it was a dose-limiting side effect. No further data are provided on how fatigue was measured; which patterns were noted and when; and which relationships were found between fatigue and demographic characteristics, type of biologic response modifier, route of administration, or cumulative dose. Thus, there is little available in the biotherapy literature to guide nursing practice in managing this side effect. Theory that guides practice, however, often emanates from the personal experiences of the patients and from the clinical observations and intuitive hunches of the nurses and physicians participating in clinical trials. These individuals have been most generous in sharing their insights and unpublished data with the authors. This paper presents a comprehensive view of current knowledge on fatigue to guide present nursing practice with patients receiving biotherapy and to provide direction for future nursing and clinical trial research.

Fatigue↗