Endothelial progenitors: a new Tower of Babel?
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Biomedical subjects
Publications and source records attributed to Michael Marber.
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The manipulation of chaperone levels has been shown to inhibit aggregation and/or rescue cell death in Saccharomyces cerevisiae, Caenorhabditis elegans, Drosophila melanogaster and cell culture models of Huntington's disease (HD) and other polyglutamine (polyQ) disorders. We show here that a progressive decrease in Hdj1, Hdj2, Hsp70, alphaSGT and betaSGT brain levels likely contributes to disease pathogenesis in the R6/2 mouse model of HD. Despite a predominantly extranuclear location, Hdj1, Hdj2, Hsc70, alphaSGT and betaSGT were found to co-localize with nuclear but not with extranuclear aggregates. Quantification of Hdj1 and alphaSGT mRNA levels showed that these do not change and therefore the decrease in protein levels may be a consequence of their sequestration to aggregates, or an increase in protein turnover, possibly as a consequence of their relocation to the nucleus. We have used genetic and pharmacological approaches to assess the therapeutic potential of chaperone manipulation. Ubiquitous overexpression of Hsp70 in the R6/2 mouse (as a result of crossing to Hsp70 transgenics) delays aggregate formation by 1 week, has no effect on the detergent solubility of aggregates and does not alter the course of the neurological phenotype. We used an organotypic slice culture assay to show that pharmacological induction of the heat shock response might be a more useful approach. Radicicol and geldanamycin could both maintain chaperone induction for at least 3 weeks and alter the detergent soluble properties of polyQ aggregates over this time course.
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Coronary artery ligation is the standard technique to induce regional myocardial infarction in small animal models. However, opening the chest and incising the pericardium independently influence post-MI remodelling. Our purpose was to develop and characterize a novel closed chest model of regional myocardial infarction (MI) in the rabbit of increased clinical relevance. Coronary angiography was performed percutaneously in New Zealand White Rabbits (NZW) using pre-formed catheters. A 0.36 mm thrombogenic coil was positioned in the circumflex artery to induce closed chest MI. Of rabbits undergoing coil deployment 40 % survived until day 100. Rabbits were classified as small MI (n = 5), moderate MI (n = 6) and large MI (n = 6) < 15 %, 15 - 30 %, > 30 % of LV myocardial volume respectively) or sham controls (n=11). Transthoracic echocardiographic images were obtained 0, 3, 5, 7, 14, 28, 60, 100 days post procedure. At day 100, LVEDP was measured before and after plasma substitute infusion. Hearts were subsequently excised and chamber stiffness (Kc) was derived from the passive pressure-volume relationship. Cardiac weight, dimensions and MI as a percentage of LV volume (MI%) were also recorded. Differences in percentage fractional shortening (%FS) were apparent from day 14. %FS was reduced in rabbits with large and moderate MI compared to controls (day 100, p < 0.005 and p < 0.05, respectively). LVEDP was increased in large and moderate MI compared to small MI and controls (26 mmHg +/- 6 and 21 mmHg +/- 5 vs. 9 mmHg +/- 1 and 7 mmHg +/- 3 p < 0.005); these differences were maintained during plasma substitute infusion. Kc in large MI was significantly less than moderate MI, small MI or control (all p < 0.05). Direct morphometric measurements distinguished between all groups.This study provides the first description of post-infarction remodelling after coronary artery occlusion where the pericardium remains intact in a small animal model. We believe it may provide a more physiologically and clinically relevant in vivo assay system of left ventricular dysfunction after myocardial infarction.