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Biomedical subjects

M Vaughan

Publications and source records attributed to M Vaughan.

At least 73 records · Page 4Linked to original sources

Different ARF domains are required for the activation of cholera toxin and phospholipase D.

ADP-ribosylation factors (ARFs), initially described as activators of cholera toxin ADP-ribosyltransferase activity, regulate intracellular vesicular membrane trafficking and stimulate a phospholipase D (PLD) isoform. ARF-like (ARL) proteins are structurally related to ARFs but do not activate cholera toxin and have relatively little effect on PLD. A new human ARL gene termed hARL1, which shares 57% amino acid identity with hARF1, was identified using a polymerase chain reaction-based cloning method. To determine whether different structural elements are responsible for the activation structural elements are responsible for the activation of the A subunit of cholera toxin and PLD, chimeric proteins were constructed by switching the amino-terminal 73 amino acids of ARF1 and ARL1. The recombinant rL73/F protein, in which the amino-terminal 73 amino acids of ARL1 replaced those of ARF1, activated the A subunit of cholera toxin, whereas the rF73/L protein, in which the NH2-terminal 73 amino acids of ARF1 replaced those of ARL1, was inactive. The two chimeric proteins had quite opposite effects on PLD activity. rF73/L activated PLD as effectively as rARF1, whereas rL73/F protein activated PLD only slightly. It appears that the amino-terminal region of ARF1 is not critical for its action as a GTP-dependent activator of cholera toxin, whereas it is necessary for activation of the putative effector enzyme, PLD.

ADP-Ribosylation Factor 1↗

Measurement and seasonal variations of black bear adipose lipoprotein lipase activity.

The black bear (Ursus americanus) provides a unique model for the study of adipose physiology because it exhibits seasonal periods of rapid weight gain and weight loss without marked changes in its metabolic rate. To better understand fat cycling in this model, we obtained plasma and gluteal adipose tissue from five captive adult bears at approximately 20-day intervals from October 1 1992 through March 31 1993. The study included a predenning and denning period for each animal. Sampling during the predenning period followed a 12-h fast. Bears were anorectic while denning. Adipose LPL activities and plasma insulin concentrations were determined for each time point. Predenning LPL activities (4.83 +/- 0.64 mumol/h/g) were significantly greater than those seen during the denning period (1.82 +/- 0.65, p < 0.001). A biphasic pattern of fasting LPL activity was seen in four of the five bears during the predenning period. Fasting insulin concentrations showed no such pattern of variation during the study period (mean = 25.1 +/- 1.36 pmol/l; range 1.1-6.0). We found no evidence of a linear relationship between LPL activity and insulin levels (p = 0.139). Neither LPL activity nor insulin concentrations were related to changes in weight (p = 0.257 and p = 0.7104, respectively). We conclude that LPL activity can be measured in black bear adipose tissue and that fall (predenning) activities are significantly higher than those seen during the winter (denning period). Furthermore, the seasonal regulation of LPL involves some factor(s) in addition to insulin.

Adipose Tissue↗

A marrow harvest procedure under local anesthesia.

This report details a bone marrow harvest procedure performed outside the hospital setting under local anesthesia, thereby avoiding many of the risks associated with the traditional surgical procedure. In approximately 30 minutes, 450 milliliters of marrow can be collected from eight bone punctures, containing a median of 4.18 x 10(9) cells and 33 x 10(6) progenitor cells as defined by CD34 expression. Reinfusion of a median 1.2 x 10(6) CD34+ cells/kg in 10 breast cancer and lung cancer patients after dose-intensive chemotherapy resulted in the recovery of granulocytes > 100/mm3 by day 14 and platelets > 20,000 by day 21. Without progenitor cell support, such recoveries could take 30 and 40 days, respectively. Collection of marrow using this protocol does not compromise the engraftment capability of the progenitor cells, seldom necessitates blood product support, is safer for the patient, and reduces the cost of harvesting by 75% compared to inpatient or day surgery procedures.

Anesthesia, Local↗

Activation of rat brain phospholipase D by ADP-ribosylation factors 1,5, and 6: separation of ADP-ribosylation factor-dependent and oleate-dependent enzymes.

Two major forms of phospholipase D (PLD) activity, solubilized from rat brain membranes with Triton X-100, were separated by HPLC on a heparin-5PW column with buffer containing octyl glucoside. One form was completely dependent on sodium oleate for activity. The other, which was dramatically activated by the addition of ADP-ribosylation factor (ARF) 1 and guanine 5' [gamma-thio]triphosphate, required the presence of phosphatidylinositol 4,5-bisphosphate in the phosphatidylcholine substrate for demonstration of activity, as described by others. Oleate-dependent activity was unaffected by guanine 5' [gamma-thio]triphosphate, or phosphatidylinositol 4,5-bisphosphate. Both sodium oleate-and ARF-dependent activities catalyzed transphosphatidylation, thus identifying them as PLDs. ARF-dependent PLD was activated by recombinant ARF5 (class II) and ARF6 (class III), as well as ARF1 (class I). Myristoylated recombinant ARFs were more effective than their nonmyristoylated counterparts. ARFs were originally identified as activators of cholera toxin ADP-ribosyltransferase activity. The effects of recombinant ARF proteins from the three classes on cholera toxin activity (assayed under conditions identical to those used to assay PLD activity) did not, however, correlate with those on PLD, consistent with the notion that different aspects of ARF structure are involved in the two functions.

ADP-Ribosylation Factor 1↗

Characterization of class II and class III ADP-ribosylation factor genes and proteins in Drosophila melanogaster.

ADP-ribosylation factors (ARFs) are ubiquitous approximately 20-kDa guanine nucleotide-binding proteins that enhance the ADP-ribosyltransferase activity of cholera toxin and are involved in intracellular vesicular transport. Based on size, phylogenetic analysis, amino acid identity, and gene structure, mammalian ARFs fall into three classes (class I, ARF1, -2, and -3; class II, ARF4 and -5; class III, ARF6). A class I ARF had been identified in Drosophila melanogaster. To search for ARFs of other classes in Drosophila, polymerase chain reaction-based techniques were used, resulting in cloning of Drosophila ARF (dARF) II and dARF III with deduced amino acid sequences similar to those of class II and class III mammalian ARFs, respectively. The three Drosophila ARF genes map to different chromosomes and the coding regions have different splicing sites. dARF II mRNA, like ARF I mRNA, is fairly uniformly distributed throughout adult flies, whereas dARF III mRNA is significantly more abundant in heads than in legs or bodies. Recombinant dARF II and dARF III have biochemical and immunological properties similar to those of human ARF5 (hARF5) and hARF6, respectively. These observations are consistent with the conclusion that the three classes of ARFs are present in non-mammalian as well as mammalian species.

ADP-Ribosylation Factor 1↗

Characterization of a glucose-repressible ADP-ribosylation factor 3 (ARF3) from Saccharomyces cerevisiae.

ADP-ribosylation factors (ARFs) are highly conserved approximately 20-kDa guanine nucleotide-binding proteins that enhance the ADP-ribosyltransferase activity of cholera toxin, and are believed to participate in vesicular transport in both exocytic and endocytic pathways. Based on size, phylogenetic analysis, amino acid sequence, and gene structure, mammalian ARFs fall into three classes (class I, ARFs 1, 2, 3; class II, ARFs 4, 5; class III, ARF6). Two ARF genes (yARF1, yARF2) are known in Saccharomyces cerevisiae and believed to participate in vesicular trafficking in the Golgi system; the double deletion mutant is not viable. A third yeast ARF (yARF3) cDNA has been cloned by polymerase chain reaction-based procedures. It contains an open reading frame of 549 bases encoding a protein of 183 amino acids, with a deduced amino acid sequence more identical (60%) to that of the class III mammalian ARF than to those of the other two classes (52-56%). The yARF3 protein, however, reacted poorly with antibodies against any of the three classes of mammalian ARFs. In the presence of GTP, recombinant yARF3 protein stimulated cholera toxin-catalyzed auto-ADP-ribosylation. yARF3 gene transcription, similar to that of yARF2, was repressed by glucose. As yARF3 was not essential for cell viability and was not required for endoplasmic reticulum to Golgi protein transport, it may provide an opportunity to define an ARF function in another kind of vesicular trafficking.

ADP-Ribosylation Factors↗

Isolation of recombinant ADP-ribosylation factor 6, an approximately 20-kDa guanine nucleotide-binding protein, in an activated GTP-bound state.

ADP-ribosylation factors (ARFs) are approximately 20-kDa guanine nucleotide-binding proteins, which, like other members of the ras superfamily, are activated by exchanging bound GDP for GTP and inactivated through hydrolysis of the gamma-phosphate of bound GTP to form GDP in a highly regulated cycle. ARF 6, a class III ARF, was expressed in Escherichia coli with its amino terminus fused to maltose-binding protein. Following release from maltose-binding protein, recombinant ARF 6 (rARF 6) exhibited maximal activity with or without GTP. Such constitutive activation was due to the predominance of ARF-GTP over ARF-GDP, as demonstrated by nucleotide analysis. rARF 6 expressed in E. coli without amino-terminal extension was bound primarily to GDP and exhibited typical GTP-dependent activity. After release from maltose-binding protein, rARF 6-GTP was stable; only a fraction of the nucleotide was removed using EDTA, whereas urea denaturation restored complete GTP dependence. [alpha-32P]GTP bound to rARF 6 was in part protected from hydrolysis by alkaline phosphatase and resulted in the formation of [alpha-32P]GTP, -GDP, and -GMP, whereas unbound nucleotide was completely hydrolyzed to guanosine. Thus, amino-terminal extension of rARF 6, by maltose-binding protein, promoted the formation of a constitutively activated GTP-bound species. By analysis of this species, we confirmed that rARF 6 lacks the intrinsic ability to hydrolyze bound GTP and speculate that maltose-binding protein may inhibit hydrolysis by extrinsic factors.

ADP-Ribosylation Factors↗

Identification of a brefeldin A-insensitive guanine nucleotide-exchange protein for ADP-ribosylation factor in bovine brain.

ADP-ribosylation factors (ARFs) are approximately 20-kDa guanine nucleotide-binding proteins that participate in vesicular transport in the Golgi and other intracellular compartments and stimulate cholera toxin ADP-ribosyltransferase activity. ARFs are active in the GTP-bound form; hydrolysis of bound GTP to GDP, possibly with the assistance of a GTP hydrolysis (GTPase)-activating protein results in inactivation. Exchange of GDP for GTP and reactivation were shown by other workers to be enhanced by Golgi membranes in a brefeldin A-sensitive reaction, leading to the proposal that the guanine nucleotide-exchange protein (GEP) was a target of brefeldin A. In the studies reported here, a soluble GEP was partially purified from bovine brain. Exchange of nucleotide on ARFs 1 and 3, based on increased ARF activity in a toxin assay and stimulation of binding of guanosine 5'-[gamma-[35S]thio]triphosphate, was dependent on phospholipids, with phosphatidylserine being more effective than cardiolipin. GEP appeared to increase the rate of nucleotide exchange but did not affect the affinity of ARF for GTP. Whereas the crude GEP had a size of approximately 700 kDa, the partially purified GEP behaved on Ultrogel AcA 54 as a protein of 60 kDa. With purification, the GEP activity became insensitive to brefeldin A, consistent with the conclusion that, in contrast to earlier inferences, the exchange protein is not itself the target of brefeldin A.

ADP-Ribosylation Factors↗

Effect of ADP-ribosylation factor amino-terminal deletions on its GTP-dependent stimulation of cholera toxin activity.

It has been proposed that the amino-terminal domain of ADP-ribosylation factor (ARF) is critical for its stimulation of cholera toxin ADP-ribosyltransferase activity. In this study, recombinant ARF1 (rARF1), r delta 13ARF1 (recombinant ARF1 lacking the first 13 amino acids) and rPKA14ARF1 (recombinant ARF1 in which the first 14 amino acids were replaced by the first 7 amino acids of the cAMP-dependent protein kinase catalytic subunit) were used to assess the effect of the amino terminus on the ability of ARF to enhance ADP-ribosylation of agmatine by the cholera toxin A subunit. The GTP-dependent ARF activities of r delta 13ARF1 and rPKA14ARF1 were similar to that of rARF1, whereas the GTP requirement for half-maximal activation of cholera toxin A, was somewhat higher for rARF1 than it was for r delta 13ARF1 and rPKA14ARF1. These results are consistent with the view that the amino terminus of ARF1 is not critical for its action as a GTP-dependent activator of cholera toxin.

ADP-Ribosylation Factor 1↗

Alternative splicing of the guanine nucleotide-binding regulatory protein Go alpha generates four distinct mRNAs.

Go alpha a guanine nucleotide-binding (G) protein abundant in brain and other neural tissues, has been implicated in ion channel regulation. Concerted efforts in several laboratories have revealed multiple Go alpha mRNAs and protein isoforms in different contexts. Go alpha is a single copy gene in mammalian species, although the structure, number and tissue localization of Go alpha mRNAs reported by investigators are inconsistent. To define the cell-specific expression of alternatively spliced variants of Go alpha mRNA, we employed several strategies, including Northern hybridizations with sequences-specific oligonucleotides, selective digestions of Go alpha mRNA using RNase H, and adaptations of the polymerase chain reaction. Four distinct alternatively spliced variants were identified, a 5.7-kb Go alpha 2 mRNA and three Go alpha 1 mRNAs with different 3' UTRs. The UTRs of the three Go alpha 1s are composed of different combinations of what have been referred to as UTR-A and UTR-B. The sequences of the spliced segments are well conserved among mammalian species, suggesting a functional role for these alternatively spliced 3' UTRs in post-transcriptional and/or tissue-specific regulation of Go alpha expression. The position of the intron-exon splice boundary at nucleotide 31 following T of the TGA stop codon is conserved in the Gi alpha 2 and Gi alpha 3 genes, consistent with the notion that similar alternative splicing of 3' UTRs occurs in products of these related genes.

Alternative Splicing↗

ADP-ribosylation factors: a family of approximately 20-kDa guanine nucleotide-binding proteins that activate cholera toxin.

ADP-ribosylation factors (ARFs) comprise a family of approximately 20 kDa guanine nucleotide-binding proteins that were discovered as one of several cofactors required in cholera toxin-catalyzed ADP-ribosylation of Gs alpha, the guanine nucleotide-binding protein responsible for stimulation of adenylyl cyclase, and was subsequently found to enhance all cholera toxin-catalyzed reactions and to directly interact with, and activate the toxin. ARF is dependent on GTP or its analogues for activity, binds GTP with high affinity in the presence of dimyristoylphosphatidylcholine/cholate and contains consensus sequences for GTP-binding and hydrolysis. Six mammalian family members have been identified which have been classified into three groups (Class I, II, and III) based on size, deduced amino acid sequence identity, phylogenetic analysis and gene structure. ARFs are ubiquitous among eukaryotes, with a deduced amino acid sequence that is highly conserved across diverse species. They have recently been shown to associate with phospholipid and Golgi membranes in a GTP-dependent manner and are involved in regulating vesicular transport.

ADP-Ribosylation Factors↗

Healing and curing: issues in the social history and anthropology of medicine in Africa.

Metaphors of disease, illness and healing, though they operate in different ways in different cultures and historical periods, appear to have a remarkably common currency. This fact presents both problems and opportunities for the medical anthropologist and historian, and raises important issues of interpretation for both disciplines. The problem of defining the field of analysis in this wide-ranging world of health and sickness has led to a variety of solutions. Some have begun with a biological definition of illness; others have started with a cultural definition. No one definition will be appropriate for all purposes and a plurality of approaches is to be welcomed. However, there is a tendency evident in the literature on medicine and healing in Africa which may lead to the drawing of misleading comparisons between African healing practices and scientific medicine. Whilst the former are described in all their cultural complexity, the latter is often described by reference, not to practice, but to this system's theory of itself. Since elements of both the theory and the practices of scientific medicine now form part of many African healing practices, this tendency may obscure the dynamic reality of the world of healing and curing in contemporary Africa.

Africa↗

Richter's hernia of the splenic flexure: computed tomography appearances.

A case of a clinically occult Richter's hernia of the splenic flexure, through an anterior abdominal wall defect, is described. In view of the initial absence of bowel obstruction with a partial or Richter's hernia, and in the absence of physical findings, the importance of computed tomography (CT) in demonstrating abdominal wall lesions is highlighted.

Aged↗

The contribution of hospitals to a local economy: a case study in Iowa and Illinois.

This study assessed the importance of the hospital sector to a regional economy by examining the estimated effects of direct and indirect hospital spending on the income and employment of a metropolitan region in Iowa and Illinois. The evaluation included the role of hospital services as a regional "export." In addition, the stabilizing impact of hospital spending during business cycles was examined. Results of the study indicated that the hospitals played a vital role in the economic stability and growth of the local community.

Community-Institutional Relations↗

Characterization of recombinant and endogenous ADP-ribosylation factors synthesized in Sf9 insect cells.

ADP-ribosylation factors (ARFs) are a family of highly conserved, 20-kDa guanine nucleotide-binding proteins that participate in protein trafficking and enhance cholera toxin-catalyzed ADP-ribosylation. ARF 2 from bovine retinal cDNA was expressed in Sf9 insect cells using recombinant baculovirus and compared to the major insect cell ARF (Sf9 ARF) and to recombinant ARF 2 expressed in Escherichia coli (E. coli rARF 2). The 150000g supernatant and particulate fractions of freeze-thawed, recombinant ARF 2 baculovirus-infected cells contained immunoreactive proteins of 20 and 21 kDa at significantly higher levels than were found in uninfected cells. Infected Sf9 cells incorporated [3H]myristate only into the 20-kDa protein. Sf9 cell recombinant ARF 2 (Sf9 rARF 2) and Sf9 ARF were separated by isoelectric focusing or ion-exchange chromatography and identified by microsequencing of HPLC-purified tryptic peptides. Sf9 ARF displayed considerable sequence identity to mammalian class I ARFs. Both Sf9 ARF and Sf9 rARF 2 stimulated in a GTP-dependent manner cholera toxin-catalyzed ADP-ribosylation. The Ka for GTP of Sf9 ARF was, however, significantly lower than that of Sf9 rARF 2 or E. coli rARF 2. Myristoylation did not significantly affect the ability of ARF 2 to enhance cholera toxin-catalyzed ADP-ribosylation or the Ka for GTP. Despite the sequence identities and the fact that both were synthesized in insect cells, the endogenous Sf9 ARF was functionally different from Sf9 rARF 2.

ADP-Ribosylation Factors↗

Molecular characterization of a conserved, guanine nucleotide-dependent ADP-ribosylation factor in Drosophila melanogaster.

ADP-Ribosylation factors (ARFs) are ubiquitous approximately 20-kDa guanine nucleotide-binding proteins that stimulate cholera toxin-catalyzed ADP-ribosylation in vitro. Because the functional role(s) of ARF in mammalian systems is (are) elusive, we looked for ARF in Drosophila melanogaster, and report the partial purification and molecular cloning of an ARF from Drosophila. We cloned the Drosophila ARF 1 gene without library screening by a combination of 5 polymerase chain reactions (PCRs), yielding a 546-base open reading frame encoding 182 amino acids, which are > 93% identical to those of mammalian class I ARFs. This ARF gene maps to 79F3-6 in the proximal region of the left arm of Drosophila chromosome 3. The Drosophila ARF1 gene structure, including placement of introns, is highly conserved relative to mammalian class 1 ARF genes. A single ARF mRNA species of 1.8 kb was abundant in all Drosophila body segments. Recombinant Drosophila ARF 1 synthesized in Escherichia coli had biochemical and immunochemical activities similar to those of mammalian ARF. The similarities of sequence and biochemical properties between Drosophila and mammalian ARFs contrast with their differences from Drosophila arl (ARF-like protein), which does not stimulate cholera toxin-catalyzed ADP-ribosylation, and is only approximately 52-56% identical in amino acid sequence to mammalian ARFs.

ADP-Ribosylation Factor 1↗