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Biomedical subjects

M R Clark

Publications and source records attributed to M R Clark.

At least 19 recordsLinked to original sources

Human pre-B and B cell membrane mu-chains are noncovalently associated with a disulfide-linked complex containing a product of the B29 gene.

B cell activation after Ag binding to membrane Ig (mIg) is mediated by a complex series of events that involves proximal activation of a tyrosine kinase and phospholipase C. Until recently it was unclear how mIgM and mIgD, with their limited cytoplasmic domains (three amino acids on each H chain), were able to couple to these secondary signal transducers. Studies of murine B cells conducted in several laboratories, including our own, suggest that products of the mb-1 (IgM-alpha or IgD-alpha) and B29 (Ig-beta, Ig-gamma) genes occur as disulfide-linked alpha/beta and alpha/gamma heterodimers that are noncovalently associated with mIgM and mIgD. Although studies utilizing Daudi and Raji cell lines indicate that human mIgM is also associated with a dimer containing the mb-1 gene product, the other molecules associated with the human receptor have not been identified. In this report we characterize the phosphoproteins that are noncovalently associated with mIgM on human tonsillar B cells and human pre-B cell lines. mIgM is noncovalently associated with a disulfide-linked heterodimer composed of variably glycosylated forms of two core proteins with apparent molecular mass of 26.5 and 27 kDa. Western blotting analysis reveals that the lower m.w. component of each of the mIgM-associated heterodimers and its 27-kDa deglycosylated core protein are reactive with antibodies against the murine B29 gene product. Thus, a product of the B29 gene is a component of the AgR complex in human and murine B cells, occurring as a disulfide linked dimer with product(s) of the mb-1 gene. Interestingly, mb-1 and B29 gene products expressed on human cells are much more heterogenously N-glycosylated than their murine B cell counterparts.

Aluminum

The B cell antigen receptor complex: association of Ig-alpha and Ig-beta with distinct cytoplasmic effectors.

The B cell antigen receptor complex is a hetero-oligomeric structure composed of antigen binding, membrane immunoglobulin, and transducer-transporter substructures. The transducer-transporter substructure is composed of disulfide-linked dimers of immunoglobulin (Ig)-alpha and Ig-beta/gamma subunits that are products of the mb-1(alpha) and B29 (beta/gamma) genes. Although the receptor complex associates with Src family kinases that are activated after receptor ligation, the site of interaction of these and other cytoplasmic effector molecules with receptor subunits is unknown. The cytoplasmic tails of Ig-alpha and Ig-beta chains were found to associate with distinct sets of effector molecules. The Ig-alpha chain cytoplasmic domain bound to the Src family kinases Lyn and Fyn, phosphatidylinositol-3 kinase (PI-3 kinase), and an unidentified 38-kilodalton phosphoprotein; the cytoplasmic tail of Ig-beta bound PI-3 kinase and unidentified 40- and 42-kilodalton phosphoproteins. Binding activity was found to occur within a 26-amino acid sequence of Ig-alpha and Ig-beta that contains a motif [(Asp or Glu)-(any amino acid)7-(Asp or Glu)-Tyr-(any amino acid)3-Leu-(any amino acid)7-Tyr-(any amino acid)2-(Leu or Ile)] previously implicated in signal transduction via other receptors including the Fc epsilon receptor I and the T cell antigen receptor. These findings indicate that the subunits act independently to activate distinct second messenger pathways.

Amino Acid Sequence

Improved isolation of normal human reticulocytes via exploitation of chloride-dependent potassium transport.

Studies on normal human reticulocytes have been limited by a lack of methods for effective reticulocyte enrichment. This study shows a convenient new approach for selective enrichment of reticulocytes from normal blood samples. We have developed a modified arabinogalactan density gradient that contains high potassium levels, approximating the internal cation composition of red blood cells (RBC). The low-density populations from this gradient are enriched in reticulocytes, and the highly selected lowest density fraction shows a much higher reticulocyte enrichment than that obtained with high sodium chloride arabinogalactan density gradients, or other previously reported density gradient methods. We found that this improved isolation is caused by suppression of potassium loss and reticulocyte dehydration via chloride (KCI) cotransport. When the low-density fraction of RBC from a high-potassium gradient was subsequently incubated in high sodium chloride medium and reseparated on a sodium chloride density gradient, the reticulocytes dehydrated and were recovered in high-density fractions. The highest-density fractions from this secondary gradient yield 95% to 99% reticulocytes. We anticipate that this method will benefit investigators who require reticulocyte enriched populations for a wide variety of applications.

Biological Transport

Therapy with monoclonal antibodies. An in vivo model for the assessment of therapeutic potential.

A set of rat-human and rat-rat chimeric mAb has been created, all possessing V regions identical in their specificity for the mouse CD8 Ag. In vitro all antibodies were able to block cell-mediated lysis but varied greatly in their capacity to utilize rabbit complement. We examined the ability of these chimeric antibodies to deplete in vivo and established a clear hierarchy. Of the human IgG subclasses, only IgG1, 2, and 3 could fix complement in vitro, yet all (IgG1-4) were remarkably potent at depleting CD8+ PBL in vivo. In contrast, human IgA2 and IgE were ineffective at clearing CD8+ PBL. The vector system used to create these antibodies together with the small doses of antibodies required to deplete in vivo make this a simple and rapid system for testing the effects of different antibody isotypes and mutants. We have shown that a mutant of human IgG1, which is incapable of fixing complement, depletes perfectly well in vivo, whereas an aglycosyl IgG1 mutant is rendered inactive. Our model provides a unique opportunity to study effector functions and motifs that are used by mAb in vivo and will help in the design of improved antibodies for human therapy.

Animals

Prehemolytic effects of hydrogen peroxide and t-butylhydroperoxide on selected red cell properties.

To provide further understanding of how oxidative damage affects red cell membrane function, the effects of low levels of two different types of oxidants on selected red cell properties have been studied. Hydrogen peroxide (H2O2), an example of a water soluble oxidant, and t-butylhydroperoxide (tBHP), a hydrophobic hydroperoxide, were compared with respect to their effects on membrane permeability, membrane mechanical properties and binding of autologous serum antibodies to the cell surface. Whereas H2O2 treatment resulted in a dose-dependent increase in membrane permeability to potassium that was evident after one hour of oxidant exposure, cells treated with tBHP at doses up to 5 mumol/ml cells showed no immediate change in cation permeability. H2O2 also caused a marked decrease in membrane deformability, whereas tBHP-treated cells showed minimal loss of deformability. However, tBHP treatment did result in a dose-dependent increase in the susceptibility of the membrane to fragmentation under high shear stress. With exclusion of treated samples that bound excess rabbit anti-spectrin antibody, indicating exposure of intracellular components, neither agent promoted the binding of autologous serum antibody in amounts comparable to that found in vivo on high density or some pathologic red cells. Taken together, the results suggest that tBHP and H2O2 cause damage to human red cells by distinct oxidative mechanisms which do not lead directly to substantive generation of binding sites for autologous serum antibodies.

Carbon Dioxide

Transfected NA1 and NA2 forms of human neutrophil Fc receptor III exhibit antigenic and structural heterogeneity.

Human neutrophils express two polymorphic forms (NA1 and NA2) of Fc receptor III (FcRIII), which differ structurally and antigenically. We recently isolated FcRIII cDNAs from NA1NA1 and NA2NA2 homozygotes and determined that they differ only at five nucleotides, predicting four amino acid substitutions. To determine whether the cDNAs that we isolated actually encode proteins that differ structurally and that react appropriately with anti-NA1 and anti-NA2 antibodies, we transfected Chinese hamster ovary (CHO) cells with constructs containing either the NA1 FcRIII cDNA or the NA2 FcRIII cDNA. The receptors on transfected CHO cells were then compared with the receptors on normal human neutrophils from an NA1NA2 heterozygote. After immunoprecipitation and treatment with N-glycanase, receptors isolated from surface-labeled CHO cells transfected with the NA1 FcRIII cDNA had an apparent molecular mass of 29 Kd after sodium dodecyl sulfate-polyacrylamide gel electrophoresis (SDS-PAGE), while the receptors isolated from CHO cells transfected with the NA2 FcRIII cDNA had an apparent molecular mass of 33 Kd. Identical 29-Kd and 33-Kd bands were observed when receptors isolated from surface-labeled neutrophils of an NA1NA2 heterozygote were treated similarly. Using a cell-free rabbit reticulocyte lysate system, we translated NA1 FcRIII and NA2 FcRIII RNAs in vitro and also found differences in the apparent molecular masses of the two forms of the receptor. Finally, reactivity of transfected CHO cells with anti-NA monoclonal and alloantibodies confirmed that the cDNAs we isolated actually encode the NA1 and NA2 forms of neutrophil FcRIII.

Amidohydrolases

Reshaping a therapeutic CD4 antibody.

An immunosuppressive rat antibody (Campath-9) against human CD4 has been reshaped for use in the management of autoimmunity and the prevention of graft rejection. Two different forms of the reshaped antibody were produced that derive their heavy chain variable region framework sequences from the human myeloma proteins KOL or NEW. When compared to a chimeric form of the CD4 antibody, the avidity of the KOL-based reshaped antibody was only slightly reduced, whereas that of the NEW-based reshaped antibody was very poor. The successful reshaping to the KOL-based framework was by a procedure involving the grafting of human framework sequences onto the cloned rodent variable region by in vitro mutagenesis.

Amino Acid Sequence

Comparison of serum anti-band 3 and anti-Gal antibody binding to density-separated human red blood cells.

This study examines the quantitative relationship between two natural serum antibodies, anti-band 3 and anti-alpha-galactosyl (anti-Gal), in their capacity to bind to human red blood cell (RBC) populations separated on density gradients. The question was approached in two ways. First, we determined the extent of rebinding of affinity-purified human serum antibodies to RBCs that had been stripped of in situ antibody. Second, we eluted the in situ bound antibody at low pH from density-separated RBCs and determined the proportion of total eluted antibody that bound specifically to erythrocyte band 3 or to a Gal-alpha-(1,3)-Gal structure. Our results show that high-density human RBCs bind increased amounts of both antibodies. Anti-Gal rebinding was specific, because it was saturable and occurred in the presence of serum IgG depleted of anti-Gal. Binding assays using control natural autoantibodies directed against antigens not found on the RBC surface showed that high-density RBCs also bind increased amounts of these antibodies as compared with low-density RBCs. However, the extent of this binding is substantially lower than that of anti-band 3 and anti-Gal. Binding studies using the lectins Bandeiraea Simplicifolia (alpha-galactosyl specific) and Arachis Hypogaea (peanut agglutinin, beta-galactosyl specific) indicated that only the alpha-galactosyl sites are exposed on high density RBCs, and not the beta-galactosyl structure characteristic of T antigen. Antibody that is eluted at low pH from high density RBCs contains a 5.0% to 18.0% component that binds to band 3 protein, and a 9.1% to 39.0% component that recognizes the alpha-galactosyl structure. Together, the two antibodies appear to constitute an average of 35% (range 17.2% to 57.4%) of the in situ bound antibody from high-density human RBCs.

Anion Exchange Protein 1, Erythrocyte

A single amino acid distinguishes the high-responder from the low-responder form of Fc receptor II on human monocytes.

The low-affinity Fc receptor on human peripheral blood monocytes (Fc gamma RIIA) is polymorphic with respect to its ability to bind murine IgG1. The two allelic forms of the receptor, high responder (HR) and low responder (LR), yield characteristic patterns after isoelectric focusing and react differently with the anti-Fc gamma RII monoclonal antibody (mAb), 41H16. We recently cloned cDNA encoding the extracellular domains of Fc gamma RIIA on monocytes from one HR and two LR donors, and found that they differed at only a single base. The cDNA isolated from the HR donor had a G at position 519 and would be expected to encode an aginine at residue 133 in the mature protein, while the cDNA isolated from both LR donors had an A at position 519 and would be expected to encode a histidine at the same residue. To determine whether this single amino acid substitution actually accounts for the functional polymorphism involving Fc gamma RIIA, we transfected COS cells with full-length HR and LR Fc gamma RIIA cDNA, and examined them for their ability to react with anti-Fc gamma RIIA mAb and to bind red blood cells (RBC) coated with either murine IgG2b or murine IgG1. Whereas COS cells transfected with either the HR cDNA or the LR cDNA reacted with the anti-Fc gamma RII mAb, IV.3, and bound murine IgG2b-coated RBC, only COS cells transfected with the HR cDNA formed rosettes with murine IgG1-coated RBC and reacted strongly with mAb 41H16. A total of nine LR donors were identified, and all were homozygous for the A substitution at position 519. We conclude that at an A at position 519 in the cDNA encoding Fc gamma RIIA is the primary molecular basis for the LR form of the receptor, and that the amino acid at residue 133 determines whether Fc gamma RIIA efficiently binds murine IgG1.

Adult

Cellular localization of ovarian prostaglandin endoperoxide synthase during pseudopregnancy in the rat.

The specific cellular localization of prostaglandin endoperoxide (PGH) synthase, the enzyme responsible for initiating the conversion of arachidonic acid to prostaglandins, was studied throughout pseudopregnancy in the rat. Pseudopregnancy was induced by administration of eCG (20 IU) to immature, 27-day-old rats followed by hCG injection (10 IU) on Day 29. Animals were necropsied on Days 1 (Day 1 = 1 day post hCG), 5, 9, and 13 of pseudopregnancy. Ovaries were removed and processed for cellular identification of PGH synthase by immunohistochemistry. Immunoreactive PGH synthase was distributed throughout the CL at each of the 4 different days of pseudopregnancy, with the majority of the luteal cells exhibiting varying degrees of staining. The connective tissue centrum of the CL, however, lacked PGH synthase immunoreactivity. Quantitative assessment of the immunostaining distribution was accomplished with a computer-based image analysis program (Kontron IBAS). Results are expressed as the percentage of a digitized luteal area that contained intense immunoreactivity between Day 1 (0.6 +/- 0.2% immunoreactive area) and Day 5 (16.8 +/- 2.7%) of pseudopregnancy. The area of luteal immunostaining was similar on Day 5 and Day 9 (16.8 +/- 2.7% and 14.7 +/- 2.0%, respectively) followed by a decrease (p less than 0.05) in immunoreactivity on Day 13 (9.1 +/- 2.2%). The region of the CL adjacent to the germinal epithelium had an increase (p less than 0.01) in PG synthase staining distribution compared to the region of the CL adjacent to the ovarian medulla on all days of pseudopregnancy except Day 1. These findings demonstrate that PGH synthase is present in the rat CL throughout pseudopregnancy.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Intrabursal administration of protein kinase or proteinase inhibitors: effects on ovulation in the rat.

OBJECTIVE: To test the hypothesis that inhibition of protein kinase (PK) activity or proteolysis inhibits ovulation. DESIGN: Rats were injected intrabursally with protein kinase (H9 or staurosporin) or proteinase (alpha 2-macroglobulin) inhibitors and oocyte release was evaluated. SETTING: Clinical Research Laboratory, Center for Reproductive Medicine, University of Kentucky Medical Center. PARTICIPANTS: Immature rats stimulated with pregnant mare serum gonadotropin. INTERVENTIONS: Staurosporin (1 or 10 microM), H9 (1 mM), alpha 2-macroglobulin (835 microIU of activity); or vehicle was injected into the right ovarian bursa. The left ovarian bursa remained intact. Animals immediately received human chorionic gonadotropin (hCG). MAIN OUTCOME MEASURES: Analysis of oocyte release and ovarian morphology. RESULTS: Oocyte release from the inhibitor-treated side decreased for the H9 group (8.1 +/- 1.9 fewer oocytes released, P less than 0.001) and the 10 microM staurosporin group (5.5 +/- 0.6, P less than 0.001). No change in oocyte release was observed in the 1 microM staurosporin, alpha 2-macroglobulin, or vehicle injected groups. Histologic examination of vehicle treated ovaries demonstrated numerous developing corpora lutea (CL; 20.5 +/- 2.1 CL/ovary) and a lack of preovulatory follicles. In contrast, ovaries treated with PK inhibitors contained unruptured preovulatory follicles coincident with fewer forming CL (11.5 +/- 3.5 CL/ovary). CONCLUSIONS: Inhibition of PK activity in vivo suppresses ovulation, demonstrating that protein phosphorylation plays an important intermediary role in the ovulatory process.

Alkaloids

Specificity of autologous antibody binding to phenylhydrazine-treated human erythrocytes: implications for models of red blood cell aging.

A fundamental difficulty in the study of red cell senescence has been that of isolating a population of cells that have been aged in vivo. It has been proposed that the induction of Heinz body formation through the use of oxidizing agents, including phenylhydrazine, can provide a model for elucidating mechanisms of normal red cell aging. In an effort to evaluate the applicability of this model, we examined the nature of autologous antibody binding to phenylhydrazine-treated cells. Using both radioisotopic and immunofluorescent probes, we confirmed the previous observation of increased immunoglobulin G (IgG) binding to phenylhydrazine-treated cells. However, further analysis of the cell population indicated that the majority of the IgG bound to cells that had suffered severe membrane lesions, allowing access to intracellular consituents. Elution and analysis of the bound autologous IgG confirmed that it showed specificity for some of these intracellular constituents as well as for the surface epitopes available on intact cells. We conclude that phenylhydrazine treatment is a problematic model for study of red blood cell aging mechanisms, because the binding of autologous IgG appears to be limited to a small population of severely damaged cells.

Antibodies

Permeability characteristics of deoxygenated sickle cells.

This study investigated the effect of acute deoxygenation on membrane permeability characteristics of sickle cells. Measured fluxes of Na+ and K+ in ouabain-inhibited cells, of chloride and sulfate exchange in 4,4'-diisothiocyanostilbene-2,2'-disulfonate (DIDS)-inhibited and untreated cells, and of erythritol, mannitol, and arabinose in cytochalasin B-inhibited cells indicated that a deoxygenation-induced permeability change occurred in sickle cells only for cations and chloride. Monovalent cation permeabilities increased five-fold, and chloride influx into DIDS treated cells was enhanced nearly threefold on sickle cell deoxygenation. In contrast, no detectable increase in permeability to the other solutes was found. To gain perspective on these findings, similar measurements were performed in normal cells treated with diamide, an agent shown by others to induce a coupled increase in membrane permeability and phospholipid translocation, reminiscent of deoxygenation-induced changes in sickle cells. Although the increase in cation permeability was no greater than that in sickled cells, treatment with 2 mmol/L diamide also produced a twofold increase in the first order rate constants for sulfate exchange and mannitol efflux, indicating a relatively nonselective permeability increase that permitted flux of larger solutes than in the case of deoxygenated sickle cells. These results suggest that the deoxygenation of sickle cells induces a permeability increase that is relatively insensitive to charge, but is restrictive with respect to solute size.

4,4'-Diisothiocyanostilbene-2,2'-Disulfonic Acid

Excess of red cell membrane proteins in hereditary high-phosphatidylcholine hemolytic anemia.

Previous descriptions of hereditary high-phosphatidylcholine hemolytic anemia (HPCHA) have highlighted the association of increased erythrocyte membrane phosphatidylcholine with abnormal membrane cation permeability. We studied the function and composition of erythrocyte membranes from three individuals with HPCHA to characterize further the membrane abnormalities in this disorder. Despite significant macrocytosis, HPCHA red cells were dehydrated and showed an increased surface area to volume ratio compared to normal red cells. The passive efflux of K+ from HPCHA erythrocytes was increased fourfold at 37 degrees C. Total membrane phospholipid was increased 7-42%, largely due to excess phosphatidylcholine, which made up 35.8-37.2% of total phospholipid. Membrane cholesterol:phospholipid ratios were in the normal range. It appears that the excess phosphatidylcholine was not acquired during circulation, since plasma lipids were normal and all subpopulations of density-separated HPCHA erythrocytes were similarly abnormal. The ratio of total protein to phospholipid in white ghosts was increased, indicating that membrane protein was increased to an even greater extent than membrane lipids. No abnormal membrane proteins were identified by Coomassie or periodic acid Schiff (PAS) staining. Quantitation of the major membrane proteins indicated that the total protein excess in HPCHA membranes was due to a proportional increase in all major proteins. We conclude that HPCHA erythrocytes have excess membrane proteins and hypothesize that the changes in lipid composition and cation permeability are secondary to underlying protein abnormalities, which remain to be defined.

Adult