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J Coburn

Publications and source records attributed to J Coburn.

At least 37 records · Page 2Linked to original sources

Diverse Lyme disease spirochetes bind integrin alpha IIb beta 3 on human platelets.

Lyme disease is a chronic, multisystemic infection caused by Borrelia burgdorferi sensu lato. An infectious strain of B. burgdorferi was previously shown to bind to human platelets via the integrin alpha IIb beta 3. In this study, a diverse group of Lyme disease spirochetes was tested for platelet- and alpha IIb beta 3-binding activity. This collection included representatives of each of the three species that cause Lyme disease, B. burgdorferi (sensu stricto), B. garinii, and B. afzelii. Strains were characterized for infectivity in mouse models or were low-passage isolates from human patients. Each of the 11 infectious strains bound to platelets immobilized in microtiter wells and in suspension. Binding to platelets in suspension was specifically inhibited by a blocking anti-alpha IIb beta 3 antibody, and representatives of each species bound to purified alpha IIb beta 3. The strains that did not bind alpha IIb beta 3 or platelets were all noninfectious. No obvious relationship was observed between binding to platelets and expression of the bacterial outer surface protein OspA, OspB, or OspC, as assessed by immunoblotting. These results demonstrate that integrin alpha IIb beta 3-binding activity is widespread among the Borrelia species that cause Lyme disease and are consistent with a role for alpha IIb beta 3 binding in the transmission and/or pathogenesis of Lyme disease.

Antigens, Bacterial↗

Integrin alpha IIb beta 3 mediates binding of the Lyme disease agent Borrelia burgdorferi to human platelets.

Lyme disease is a chronic, multisystemic infection caused by the tick-borne spirochete Borrelia burgdorferi. Attachment of the spirochete to host cells via specific receptors is likely to be important in the establishment of infection. B. burgdorferi have previously been shown to bind to a variety of mammalian cells in vitro. Here we demonstrate that binding of B. burgdorferi to human platelets is mediated by the integrin alpha IIb beta 3 (glycoprotein IIb-IIIa), a critical receptor in thrombosis and hemostasis. Functional expression of this receptor requires platelet activation, and binding of the spirochete was observed only to activated platelets. Binding was inhibited by a synthetic Arg-Gly-Asp peptide that blocks ligand interaction with many integrins and by a synthetic peptide based on the gamma chain of fibrinogen that blocks binding to alpha IIb beta 3. In addition, attachment of the spirochete to platelets was inhibited by monoclonal antibodies directed against alpha IIb beta 3 that are known to block ligand-receptor interaction. No inhibition was seen with control peptides or with antibodies directed against other platelet receptors. B. burgdorferi bound efficiently to purified alpha IIb beta 3 but did not bind to platelets deficient in this integrin. Efficient platelet binding was displayed by a cloned, infectious B. burgdorferi strain, whereas a cloned noninfectious strain did not bind to platelets. Binding to integrins may be important for the ability of B. burgdorferi to establish infection in the diverse tissues affected by Lyme disease.

Amino Acid Sequence↗

The eukaryotic host factor that activates exoenzyme S of Pseudomonas aeruginosa is a member of the 14-3-3 protein family.

Exoenzyme S (ExoS), which has been implicated as a virulence factor of Pseudomonas aeruginosa, catalyzes transfer of the ADP-ribose moiety of NAD+ to many eukaryotic cellular proteins. Its preferred substrates include Ras and several other 21- to 25-kDa GTP-binding proteins. ExoS absolutely requires a ubiquitous eukaryotic protein factor, termed FAS (factor activating ExoS), for enzymatic activity. Here we describe the cloning and expression of a gene encoding FAS from a bovine brain cDNA library and demonstrate that purified recombinant FAS produced in Escherichia coli activates ExoS in a defined cell-free system. The deduced amino acid sequence of FAS shows that the protein (245 residues, calculated molecular mass 27,743 Da) belongs to a highly conserved, widely distributed eukaryotic protein family, collectively designated as 14-3-3 proteins. Various functions have been reported for members of the 14-3-3 family, including phospholipase A2 activity and regulation of tyrosine hydroxylase, tryptophan hydroxylase, and, possibly, protein kinase C activities. Identification of FAS as a 14-3-3 protein establishes an additional function for this family of proteins--the activation of an exogenous ADP-ribosyltransferase. Elucidation of the precise role of FAS in activating ExoS will contribute to understanding the molecular mechanisms by which P. aeruginosa causes disease.

14-3-3 Proteins↗

Pseudomonas aeruginosa exoenzyme S requires a eukaryotic protein for ADP-ribosyltransferase activity.

Pseudomonas aeruginosa exoenzyme S ADP-ribosylates several GTP-binding proteins of apparent Mr = 23,000-25,000. Exoenzyme S absolutely requires a soluble eukaryotic protein, which we have named FAS (Factor Activating exoenzyme S), in order to ADP-ribosylate all substrates. The rate of ADP-ribosylation of all exoenzyme S substrates increases linearly with time and with the FAS concentration. FAS is wide-spread in eukaryotes but appears to be absent from prokaryotes. We have estimated the molecular mass of the protein to be approximately 29,000 daltons and its pI to be 4.3-4.5. Several bacterial toxins share this sort of requirement for the presence of a eukaryotic protein for enzymic activity. In particular, FAS resembles ADP-ribosylation factor, a 21,000-dalton GTP-binding protein which performs an analogous function for cholera toxin. However, we can find no evidence that FAS binds GTP. In the presence of FAS, exoenzyme S ADP-ribosylates several proteins in lysates of P. aeruginosa. The requirement for a eukaryotic protein for enzymic activity, which is common to several bacterial toxins, may be a device to identify the eukaryotic environment and to ensure that the enzymes cannot function within and harm the toxin-producing bacteria.

ADP Ribose Transferases↗

ADP-ribosylation of p21ras and related proteins by Pseudomonas aeruginosa exoenzyme S.

Pseudomonas aeruginosa exoenzyme S ADP-ribosylates p21ras and several related proteins. ADP-ribosylation of p21ras does not alter interactions with guanine nucleotides. The ras-related GTP-binding proteins, including Rab3, Rab4, Ral, Rap1A, and Rap2, are also substrates; given these results, we propose a model for the role of exoenzyme S in pathogenesis.

ADP Ribose Transferases↗

Several GTP-binding proteins, including p21c-H-ras, are preferred substrates of Pseudomonas aeruginosa exoenzyme S.

Pseudomonas aeruginosa exoenzyme S has appeared to be relatively indiscriminate in its choice of substrates, but in fact it ADP-ribosylates only a small subset of cellular proteins and exhibits a marked preference for several different membrane-associated proteins of apparent Mr = 23,000-25,000, at least some of which appear to bind GTP. One of these is the p21 product of the proto-oncogene c-H-ras, which can be labeled to completion. ADP-ribosylation does not alter the interaction of p21c-H-ras with guanyl nucleotides, but does cause a shift in electrophoretic mobility that implies a large conformational change. Exoenzyme S modifies all of its substrates at arginine residues.

ADP Ribose Transferases↗

Bulimic and non-bulimic college females' perceptions of family adaptability and family cohesion.

Bulimia appears to be increasing among young women of middle to upper socioeconomic status. Although the aetiology of bulimia syndrome is not fully understood, family functioning patterns are thought to contribute to development of the disorder. The purpose of this study was to investigate the relationship between self-reported bulimic behaviour in female college students and their perceptions of family adaptation and family cohesion levels. A sample of 308 subjects from three social sororities at the University of Missouri-Columbia completed a demographic questionnaire, the Bulimic Test (BULIT) and the Family Cohesion and Adaptability Evaluation Scale (FACES III). Twenty subjects were found to be bulimic, 21 incipient, and 267 non-bulimic. Analysis of data using the chi-square test resulted in a statistically significant relationship between self-reported bulimia and perceptions of family cohesion. No significant relationship was found between self-reported bulimia and family adaptation. Implications for nursing practice are discussed.

Adaptation, Psychological↗

ADP-ribosylation of membrane proteins by bacterial toxins in the presence of NAD glycohydrolase.

The ADP-ribosylation of membrane G proteins is difficult to achieve in tissues that are rich in membrane-bound NAD glycohydrolase (NAD+ glycohydrolase, EC 3.2.2.5). For many animal species this problem can be surmounted by inhibiting NAD hydrolysis with a combination of the anti-tuberculous drug, isonicotinic acid hydrazide, and the NAD analog, 3-acetylpyridine adenine dinucleotide, which act synergistically. In their presence, the ADP-ribosylation of cholera and pertussis toxin substrates reach plateau levels even with only 10 microM NAD. Although 3-acetylpyridine adenine dinucleotide acts as a weak substrate for the toxins, it is simple to estimate its contribution to the ADP-ribosylation and thus to determine the total amount of ADP-ribosylation substrate present in a tissue sample. NAD glycohydrolases that are insensitive to isonicotinic acid hydrazide are also less sensitive to 3-acetylpyridine adenine dinucleotide, but may be inactivated by dithiothreitol. Isonicotinic acid hydrazide adenine dinucleotide, the product of an exchange reaction catalysed by NAD glycohydrolase, runs with NAD in most thin-layer chromatographic systems. It can be separated from NAD, and quantitated, if the chromatographic solvent contains benzaldehyde. Isonicotinic acid hydrazide itself inhibits NAD glycohydrolase. It need not first be converted into isonicotinic acid hydrazide adenine dinucleotide.

Adenosine Diphosphate Ribose↗

ADP-ribosylation by cholera toxin: functional analysis of a cellular system that stimulates the enzymic activity of cholera toxin fragment A1.

We have clarified relationships between cholera toxin, cholera toxin substrates, a membrane protein S that is required for toxin activity, and a soluble protein CF that is needed for the function of S. The toxin has little intrinsic ability to catalyze ADP-ribosylations unless it encounters the active form of the S protein, which is S liganded to GTP or to a GTP analogue. In the presence of CF, S.GTP forms readily, though reversibly, but a more permanent active species, S-guanosine 5'-O-(3-thiotriphosphate) (S.GTP gamma S), forms over a period of 10-15 min at 37 degrees C. Both guanosine 5'-O-(2-thiodiphosphate) and GTP block this quasi-permanent activation. Some S.GTP gamma S forms in membranes that are exposed to CF alone and then to GTP gamma S, with a wash in between, and it is possible that CF facilitates a G nucleotide exchange. S.GTP gamma S dissolved by nonionic detergents persists in solution and can be used to support the ADP-ribosylation of nucleotide-free substrates. In this circumstance, added guanyl nucleotides have no further effect. This active form of S is unstable, especially when heated, but the thermal inactivation above 45 degrees C is decreased by GTP gamma S. Active S is required equally for the ADP-ribosylation of all of cholera toxin's protein substrates, regardless of whether they bind GTP or not. We suggest that active S interacts directly with the enzymic A1 fragment of cholera toxin and not with any toxin substrate.(ABSTRACT TRUNCATED AT 250 WORDS)

Adenosine Diphosphate Ribose↗

Biological effects of aluminum on normal dogs: studies on the isolated perfused bone.

Although it is well known that aluminum (Al) plays a role in the development of osteomalacia in patients with chronic renal failure, the mechanisms are not fully understood. Since the osteoblasts are the cells responsible for the formation of osteoid tissue, which is greatly affected in patients with Al-induced osteomalacia, it is possible that Al could affect the number of osteoblasts or interfere with their function. To further characterize this potential mechanism, we performed studies in isolated perfused tibiae from normal and Al-treated dogs. In this system, when PTH is added to the perfusate, cAMP, a major marker of osteoblasts, is released. The dogs were divided into two groups: control, and Al-treated (0.75 mg/kg, iv, 5 days a week for 3 months). Thereafter, the dogs were killed, and the tibiae were perfused in vitro. PTH-(1-34) (3-4 ng/ml) and 3-isobutyl-1-methylxanthine (an inhibitor of phosphodiesterase) were added to the perfusate. Basal cAMP secretion was the same in both groups of dogs. After PTH was added to the perfusate, cAMP increased to a peak of 188.2 +/- 30.6 pmol/min in the normal dogs vs. 113 +/- 8.15 in Al-treated dogs (P less than 0.05). Cumulative cAMP secretion over a 30-min period was 766 +/- 127.9 pmol in the normal dogs vs. 455.6 +/- 38.2 pmol in the experimental animals (P less than 0.05). The histological appearance of bone biopsies taken before and after Al administration are consistent with a suppressive effect of the cation on osteoblast function. In particular, the number of osteoblasts had decreased 8-fold (P less than 0.01) under the influence of Al, and tetracycline-based measurements of mineralization kinetics show that osteoblast-mediated calcification was dysfunctional (P less than 0.01-0.025). On the other hand, the histological features of the post Al treatment biopsies suggest that at some time during its administration, the cation stimulates osteoblastic activity. For example, new (woven) bone formation was present in two dogs, and in another, lamellar bone, deposited under the influence of Al, covered the entire trabecular surface. Moreover, Al-associated osteoid was deposited independent of prior resorptive activity, indicating that the cation promotes bone formation in the absence of prior resorption. In keeping with its trophic effect on matrix deposition, Al also led to extensive marrow fibrosis in five dogs, indicating that Al also stimulates the activity of fibroblasts, cells closely related to osteoblasts.(ABSTRACT TRUNCATED AT 400 WORDS)

Aluminum↗

Visual evoked potentials and long latency event-related potentials in chronic renal failure.

We studied auditory event-related potentials elicited in a target detection paradigm (P300) and pattern shift visual evoked potentials (PVEPs) in 22 patients with chronic renal failure and no clinical evidence of cognitive or visual impairment. Thirteen patients were maintained on chronic hemodialysis, and 9 patients were receiving a low-protein diet. Thirty-three percent of patients receiving the low-protein diet and 58% of the dialysis patients had abnormal P300 latencies. Most patients tested had abnormal PVEP. Four hemodialysis patients had elevated serum parathyroid hormone (PTH) levels, and 9 had normal or slightly elevated values. P300 and PVEP latencies were abnormal in both groups. These observations indicate that elevated PTH levels are not solely responsible for the abnormalities in all patients. P300 and PVEP may be valuable in evaluating neuronal dysfunction in the patient with chronic renal failure.

Adult↗

The differential effects of GABA-transaminase inactivation in the chick retina and brain.

The inactivation of gamma-aminobutyrate (GABA)-transaminase by the highly specific and potent neurotoxin gabaculine leads to different neurochemical consequences in the chick brain as opposed to the chick retina. In the brain, GABA levels continually climb, reaching approximately eightfold increases over control values after 24 h. The elevation in GABA levels leads to a time-dependent and coincident fall in glutamate decarboxylase and cysteine-sulfinate decarboxylase activities, to approximately 50% of control values. On the other hand, in the retina GABA levels only increase to a plateau level two- to threefold that of control after inactivation of GABA-transaminase. Furthermore, although the glutamate decarboxylase activity decreases to about 50% of control values, cysteinesulfinate decarboxylase activity is not affected. These studies show that the processing of GABA in the retina differs from that in the brain, and that cysteinesulfinate and glutamate decarboxylase activity probably reside in different enzyme molecules in the retina, although they may reside in the same enzyme in the brain.

4-Aminobutyrate Transaminase↗