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Biomedical subjects

L Meagher

Publications and source records attributed to L Meagher.

14 recordsLinked to original sources

Regulation of a multigenic invasion programme by the transcription factor, AP-1: re-expression of a down-regulated gene, TSC-36, inhibits invasion.

The transcription factor AP-1 (activator protein-1) is required for transformation by many oncogenes, which function upstream of it in the growth factor-ras signal transduction pathway. Previously, we proposed that one role of AP-1 in transformation is to regulate the expression of a multigenic invasion programme. As a test of this proposal we sought to identify AP-1 regulated genes based upon their differential expression in 208F rat fibroblasts transformed by FBR-v-fos (FBR), and to determine if they functioned in the invasion programme. Subtracted cDNA libraries specific for up- or down-regulated genes in FBRs compared to 208Fs were constructed and analysed. Northern analysis revealed that the cDNAs in both libraries represented differentially expressed genes. Nucleic acid sequence analysis of randomly selected cDNA clones from each library coupled with searches of nucleic acid and amino acid sequence databases determined that many of the cDNAs represented proteins that function in various aspects of the invasion process. Functional analysis of one the down-regulated genes, TSC-36/follistatin-related protein (TSC-36/Frp), which has not previously been associated with invasion, demonstrated that its expression in FBRs inhibited in vitro invasion. These results support the proposal that AP-1 in transformed cells regulates a multigenic invasion programme.

Animals↗

The Interaction Forces between Silica and Plasma-Treated Polypropylene Surfaces in Aqueous Solutions

The interaction forces between silica and plasma-treated polypropylene surfaces in aqueous NaCl solutions have been measured using a scanning force microscope. The measured interaction forces are well described by DLVO theory at large and moderate separation distances. However, at short range (<5 nm) an additional repulsive force is measured, presumably due to solvation of the surfaces. This additional force was not present when the interaction forces were measured between untreated polypropylene and silica under identical conditions. The presence of C-OH groups on the surface of the polypropylene is proposed to account for this additional repulsive force. In addition, the surface potential and charges fitted to the data were much higher than in the untreated polypropylene case. As no ionizable groups are present on either polypropylene surface, the adsorption of bicarbonate ion from solution is proposed to account for the surface charge.

Journal Article↗

Measurement of mRNA for E-selectin, VCAM-1 and ICAM-1 by reverse transcription and the polymerase chain reaction.

Stimulation of cultured human umbilical vein endothelial cells by cytokines such as interleukin-1 and tumour necrosis factor induces de novo synthesis and expression of the adhesion molecules E-selectin, vascular cell adhesion molecule-1 (VCAM-1) and intercellular adhesion molecule-1 (ICAM-1). In general, alterations in cell surface expression of these molecules are known to be related to increased gene transcription and altered levels of mRNA. The extension of these observations to the study of inflammatory processes in different human organs necessitates the development of techniques for the quantification of mRNA in small tissue samples. Here we present a method for the quantification of mRNA for E-selectin, VCAM-1 and ICAM-1 using reverse transcription and the polymerase chain reaction (RT-PCR). For each molecule of interest a mutant RNA was synthesised consisting of the wild-type sequence deleted of 15-20 bases. The mutant and wild-type RNA sequences are recognised by the same primers, and can therefore be amplified competitively in the same tube by RT-PCR. As the mutant and wild-type RNAs compete for the primers, the amount of wild-type RNA can be determined by the size of the dominant product that results after addition of known quantities of mutant RNA. Using this detection and quantification method we have examined the dose dependency and time course of mRNA accumulation following TNF-alpha stimulation of HUVEC. Similar time-courses of E-selectin, ICAM-1 and VCAM-1 mRNA accumulation were observed by competitive RT-PCR as by laser densitometry of Northern blots. Finally we were able to show that the technique could measure changes in levels of mRNA for these three molecules in human skin biopsies taken at different times during the development of a delayed hypersensitivity response to tuberculin purified protein derivative. This technique should be useful for the study of adhesion molecule mRNA in small tissue culture samples and in biopsies.

Base Sequence↗

Evidence that the 16 kDa proteolipid (subunit c) of the vacuolar H(+)-ATPase and ductin from gap junctions are the same polypeptide in Drosophila and Manduca: molecular cloning of the Vha16k gene from Drosophila.

The 16 kDa proteolipid (subunit c) of the eukaryotic vacuolar H(+)-ATPase (V-ATPase) is closely related to the ductin polypeptide that forms the connexon channel of gap junctions in the crustacean Nephrops norvegicus. Here we show that the major protein component of Manduca sexta gap junction preparations is a 16 kDa polypeptide whose N-terminal sequence is homologous to ductin and is identical to the deduced sequence of a previously cloned cDNA from Manduca (Dow et al., Gene, 122, 355-360, 1992). We also show that a Drosophila melanogaster cDNA, highly homologous to the Manduca cDNA, can rescue Saccharomyces cerevisiae, defective in V-ATPase function, in which the corresponding yeast gene, VMA3, has been inactivated. Evidence is presented for a single genetic locus (Vha16) in Drosophila, which in adults at least contains a single transcriptional unit. Taken together, the data suggest that in Drosophila and Manduca, the same polypeptide is both the proteolipid subunit c component of the V-ATPase and the ductin component of gap junctions. The intron/exon structure of the Drosophila Vha16 is identical to that of a human Vha16 gene, and is consistent with an ancient duplication of an 8 kDa domain. A pilot study for gene inactivation shows that transposable P-elements can be easily inserted into the Drosophila ductin Vha16 gene. Although without phenotypic consequences, these can serve as a starting point for generation of null alleles.

Amino Acid Sequence↗

Apoptosis in human eosinophils. Programmed cell death in the eosinophil leads to phagocytosis by macrophages and is modulated by IL-5.

Eosinophils are believed to injure tissues in a variety of allergic disease by virtue of their highly histotoxic contents and metabolites. They are readily observed in tissues during the allergic response yet the mechanisms governing the duration of tissue residence and route of removal remain obscure. We have previously reported in vitro and in vivo evidence that neutrophils undergo apoptosis (programmed cell death) and are recognized and ingested as intact cells by macrophages. We report that eosinophils, purified from the peripheral blood of asymptomatic healthy atopics, undergo apoptosis in vitro. After 72 to 96 h in culture, 57.0 +/- 6.2% (mean +/- SE) of the eosinophil population showed characteristic morphologic changes of apoptosis. Electrophoresis of the DNA from these cells demonstrated the typical "ladder" pattern of internucleosomal DNA cleavage, the hallmark of apoptosis-associated endonuclease activation. The rate of eosinophil apoptosis, slower than that reported for neutrophils, was delayed (by 80 +/- 6 h) in the presence of recombinant human IL-5, a cytokine previously reported to prolong eosinophil life in vitro but not known to modulate apoptosis. Aged, apoptotic eosinophils, but not fresh or aged preapoptotic eosinophils, were recognized and ingested as intact cells by macrophages. Apoptosis and ingestion by macrophages may represent a mechanism whereby the tissue longevity and removal of eosinophils is controlled.

Cell Death↗

Connexins and the vacuolar proteolipid-like 16-kDa protein are not directly associated with each other but may be components of similar or the same gap junctional complexes.

Gap junction preparations made from mouse liver plasma membranes by alkali extraction contain variable proportions of connexins (Cx32 and Cx26) and the 16-kDa protein which is closely related or may be identical to the 16-kDa proteolipid (subunit c) of the vacuolar H(+)-ATPase and the mediatophore complex. The absence of a stoichiometric relationship suggests that connexins and the 16-kDa protein are not subunits of the same channel complex, but analysis of alkali preparations by isopycnic centrifugation shows both types of protein are in membrane structures of the same buoyant density. Electron microscopic analysis of alkali preparations shows a homogeneous population of gap junctions of uniform morphology and width, suggesting the proteins are in the same or similar structures. The structures containing connexins and the 16-kDa protein can be separated by treatment of the plasma membranes with Triton X-100. After such treatment, the connexins remain associated with dense cellular or extracellular material and the gap junctional structures, after further extraction with N-lauroyl sarcosine and urea, contain only the 16-kDa protein. These detergent-extracted gap junctions are thinner (14.1 nm) than those in alkali preparations (18.4 nm).

Animals↗

Structure of a 16 kDa integral membrane protein that has identity to the putative proton channel of the vacuolar H(+)-ATPase.

A 16 kDa protein has been isolated in a homogeneous form as the major component of a paracrystalline paired membrane structure closely resembling the gap junction. The primary structure of this protein from arthropod and vertebrate species has been determined by protein and cDNA sequencing. The amino acid sequences are highly conserved and virtually identical to the amino acid sequence of the proteolipid subunit of the vacuolar H(+)-ATPases. The disposition of the protein in the membrane has been studied using proteases and the N,N'-dicyclohexylcarbodiimide reactive site identified. These data, together with secondary structure predictions, suggest that the 16 kDa protein is for the most part buried in the membrane, arranged in a bundle of four hydrophobic alpha-helices. Using computer graphics, a model has been constructed based on this arrangement and on the electron microscopic images of the paracrystalline arrays.

Amino Acid Sequence↗

The neutrophil.

In 'beneficial inflammation', which is the major component of our innate immune system, it is possible to predict an 'ideal' sequence of cellular events: neutrophil migration would be rapid; time of contact with endothelial cells minimized; matrix degradation localized, with specific turn-on and turn-off of degradation mechanisms; neutrophil secretion and disintegration would be kept to a minimum during bacterial killing; and finally, rapid cessation of neutrophil migration and rapid removal of intact senescent cells would occur. Any doubts that the cellular events of the early stages of acute inflammation normally involve highly sophisticated cellular interactions, presumably designed to minimize tissue perturbation, should be dispelled by two elegant recent studies of neutrophil-endothelial interaction. Clearly, defects in the control of these processes could tip the balance towards cell injury or excessive matrix degradation and initiate amplification mechanisms leading to persistent inflammation and disease. The further identification of molecular mechanisms of these events should permit specific intervention in neutrophil-mediated disease. However, it is important to remember, firstly, that the neutrophil is just a part of the highly redundant inflammatory process and the removal of one 'strand' does not mean that the whole 'web' breaks down, and secondly, that impairment of neutrophil mechanisms may critically impair our anti-bacterial defences. Therefore, continued attempts should be made to define how cells and mediators interact in concert, to determine the fine specificity of molecular mechanisms and, in parallel, to identify 'time windows' in diseases, during which these mechanisms are more critical to the processes damaging the host than they are essential to its defences.

Acute-Phase Reaction↗

Molecular structure of the gap junctional channel.

The proteins in various gap junctional preparations from rodent liver have been analysed by two-dimensional peptide mapping and immunoblotting. Only the protein of relative molecular mass (Mr) 16,000 (16K) is found in all gap junctional isolates, and it is unrelated to the 27K protein. The absence of the 27K protein and any of its fragments from trypsin-treated preparations suggests that this protein does not directly contribute to gap junctional structure. Peptide mapping and immunoblotting of the 16K proteins isolated from various tissues and species and of the arthropod 18K protein present in gap junctional preparations from Nephrops norvegicus show that these proteins constitute a family of related junctional proteins. A site-specific antiserum raised against the N-terminal octapeptide of the 16K protein from mouse liver cross-reacts with all 16K and 18K forms of the junctional protein so far tested, suggesting that this particular antigenic determinant is highly conserved. Immuno-localization studies show that the N-terminus is most likely located on the cytoplasmic aspect of the junction and is available to Pronase digestion.

Animals↗