Biomedical subjects
M E Finbow
Publications and source records attributed to M E Finbow.
Isolation and characterisation of arthropod gap junctions.
Gap junctions have been isolated from the hepatopancreas of the crustacean arthropod, Nephrops norvegicus (Norway lobster). SDS-PAGE of these preparations shows two major protein bands, mol. wt. 18 000 (18 K) and mol. wt. 28 000 (28 K). The 18-K and 28-K proteins are interconvertible, cannot be distinguished by two dimensional tryptic and chymotryptic peptide mapping, and therefore appear to be different (most likely monomeric and dimeric) forms of the same protein. The protein can also aggregate to higher multimeric forms mol. wt. 38 000 (presumed trimer), and mol. wt. 52 000 (presumed tetramer). The buoyant density of the isolated gap junctions in continuous potassium iodide gradients is 1.260 g/cm. The junctions are progressively solubilized in increasing SDS concentrations, mostly between 0.1% and 0.2% SDS, and this is accompanied by the release of the 18-K and 28-K forms of the junctional protein. The Nephrops hepatopancreas 18-K junctional protein has antigenic determinants in common with the vertebrate 16-K junctional protein as shown by cross-reactivity with two different affinity purified antibody preparations. However, no detectable similarity can be seen between the major I-labelled tryptic and chymotrytpic peptides of the Nephrops hepatopancreas 18-K protein and the mouse liver 16-K protein.
Analysis of vertebrate gap junction protein.
A new method for the purification of gap junctions is described which depends on the extraction of cell monolayers or tissue homogenates with Triton X-100. The major band on SDS-polyacrylamide gel electrophoresis (PAGE) of junctional preparations from a variety of vertebrate sources has an apparent mol. wt. of 16,000 (16 K). Further evidence for the junctional origin of the 16 K protein is provided by the results of four different experimental approaches. (i) The junctions form a sharp band in potassium iodide density gradients at 1.195 g/cm3 and the 16 K protein is the only detectable band in fractions of this bouyant density. (ii) The junctions are progressively solubilised by increasing concentrations of SDS (in the range 0.1-0.5%) and the dissolution of the junctional structure, observed by electron microscopy, parallels the release of the 16 K protein. (iii) Glutaraldehyde fixation of intact junctions cross-links the 16 K protein. (iv) The recoverable amount of the 16 K protein correlates with known changes in gap junctional area in the regenerating weanling rat liver after partial hepatectomy and in V79 cell cultures exposed to 4beta-phorbol 12-myristate 13-acetate.
The gap junctional channel.
Two distinct forms of intercellular communication have been found in animal tissues, one using the familiar, trans-membrane, extracellular route and the other using an entirely intracellular route. The intracellular route depends on specialized, permeable (gap) junctions which form at areas of contact between adjacent cells. The junctions contain aqueous channels which directly link the cytoplasms of the coupled cells. Small ions and molecules pass through these channels and move freely between all cells in coupled populations. The structural protein which forms the gap junctional channel has been isolated and characterized. It has an apparent M.Wt. of 16,000 and readily forms multimeric structures. In the membrane, six protein subunits surround the central aqueous pore. Addition of retinoic acid to cells appears to close the junctional channels. This effect of retinoic acid on the junctional pathway of intercellular communication may explain some of its biological activities.
Permeability of junctions between animal cells. Intercellular exchange of various metabolites and a vitamin-derived cofactor.
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Metabolic interactions between animal cells through permeable intercellular junctions.
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Glutamine amido transferase in yeast: changes in activity during the cell cycle.
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Postulate for the molecular mechanism of the vacuolar H(+)-ATPase (hypothesis).
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