[Study on the specificity of anti poly I-poly C antibodies in several mouse strains].
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Biomedical subjects
Publications and source records attributed to G Camus.
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In this study we have investigated the intracellular routing of two major components of the postsynaptic membrane in Torpedo electrocytes, the nicotinic acetylcholine receptor and the extrinsic 43 kDa protein rapsyn, and of a protein from the non-innervated membrane, the Na+,K+ ATPase. We isolated subpopulations of post-Golgi vesicles (PGVs) enriched either in AChR or in Na+,K+ ATPase. Rapsyn was associated to AChR-containing PGVs suggesting that both AChR and rapsyn are targeted to intracellular organelles in the secretory pathway before delivery to the postsynaptic membrane. In vitro assays further show that rapsyn-containing PVGs do bind more efficiently to microtubules compared to Na+,K+ ATPase-enriched PVGs. These data provide evidence in favor of the contribution of the secretory pathway to the delivery of synaptic components.
In an attempt to assess the possible oxidative stress associated with the transient exercise-induced activation of polymorphonuclear neutrophils (PMN), we compared the effects of eccentric and concentric exercises (downhill run: DR and uphill walk: UW, respectively) of equal duration (35 min) and similar energy cost (60% VO2max) on plasma levels of ascorbic acid ([AA]) and blood concentration of reduced ([GSH]) and oxidized ([GSSG]) glutathione. Eight healthy male subjects took part in this study. Plasma concentration of myeloperoxidase ([MPO]) was used as a specific marker of PMN activation. While there were no significant changes in [MPO] and [AA] in UW experiments, [MPO] increased (+80%) and [AA] decreased significantly during DR tests (P < 0.01 and P < 0.05, respectively). A significant negative relationship was observed between [AA] and [MPO] in DR experiments only (r = -0.49; P < 0.01). Mean (+/- SEM) basal GSH and GSSG concentrations, calculated by pooling the values measured before both tests, were 0.54 +/- 0.02 and 0.12 +/- 0.007 mM, respectively. The blood concentration of these compounds remained practically unchanged in both exercise tests. These results confirm the role played by the eccentric component of muscle contraction in transient exercise-induced PMN activation and suggest that this activation was partly involved in the decrease in [AA] observed in DR experiments. The oxidant stress associated with the exercise protocol used in this study was insufficient to alter blood levels of reduced and oxidized glutathione.
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The reactions of antibodies directed against the two double-stranded synthetic polyribonucleotide complexes poly(A).poly(U) or poly(I). poly(C) with three polynucleotide structures associating equimolar amounts of adenylic and uridylic acids were studied by immunodiffusion, quantitative precipitation and readioimmunoassay. The three sequence isomers of the same base composition but different nucleotide distribution were: the double helical complex poly(A).poly(U) containing two homopolymeric strands; the copolynucleotide poly(A-U) composed of a strictly repeating riboadenylic acid and ribouridylic acid sequence in both strands; and the copolymer poly(A,U) where the two strands contain both residues but in a random distribution. The three antigens reacted with anti-poly(A).poly(U) and antipoly(I).poly(C) antisera but not to the same extent. The random copolymer poly(A,U) reacted poorly with sera of both specificity. In contrast the reactivity of the alternating copolnucleotide poly(A-U) was widely different according to the specificity of the sera used. Whereas it was recognized by the anti-poly(A).poly(U) antibodies almost to the same extent than the homologous complex, its activity was much lower with anti-poly(I).poly(C) antisera. In addition, the relative efficiency of poly(A-U) was approximately 50 times lower than that of poly(A).poly(U) when tested with anti-poly(I).poly(C) antibody, thereby indicating recognition of different antigenic determinants in both duplexes. Antibodies directed against defined conformational determinants are therefore able to distinguish between three polynucleotide structures of the same base composition but different sequence.