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C Brunel

Publications and source records attributed to C Brunel.

At least 73 records · Page 4Linked to original sources

Two-dimensional analysis of proteins associated with heterogenous nuclear RNA in various animal cell lines.

The protein complement of heterogenous nuclear RNA . protein particles from human HeLA, mouse L and Chinese hamster (CHO) cells has been analysed by two-dimensional gel electrophoresis using the two techniques described by O'Farrell [J. Biol. Chem. (1975) 250, 4007--4021 and Cell (1977) 12, 1133--1142]. Over a hundred individual spots habe been reproducibly detected both L-[35S]methionine. Large similarities, especially in the 25 000--40 000 Mr cluster of basic protein, were found among these three mammalian species. As far as phosphoproteins are concerned, it was observed that the bands already described by one-dimensional gels [Eur. J. Biochem. (1978) 86, 301--310] with Mr values of 28 000, 30 000, 37 000 and 52 000 are resolved into about 15 individual spots, suggesting a corresponding number of distinct states of phosphorylation. It was also clearly demonstrated that phosphoproteins are unrelated to the major basic protein species. Particles of different size classes were analysed with respect to their content of individual proteins, both non-phosphorylated and phosphorylated. The most salient feature observed was that phosphoproteins become progressively more abundant with particles of increasing size. This raises the possibility that at least some of these phosphoproteins might belong to a nuclear structure to which hnRNA is normally bound.

Animals↗

Bovine kidney alkaline phosphatase. Purification, subunit structure, and metalloenzyme properties.

Kidney alkaline phosphatase was purified to homogeneity. It is a glycoprotein of about 172,000 molecular weight. Analyses of the subunit structure by sedimentation equilibrium in 6 M guanidine hydrochloride and by gel electrophoresis in sodium dodecyl sulfate indicate that the alkaline phosphatase is a dimer comprising two very similar or identical subunits of about 87,000 molecular weight. The native enzyme contains 4.5 +/- 0.2 g atoms of zinc per mol of protein. Reconstitution experiments from the apophosphatase show that binding of 4 Zn2+ per mol of dimer is essential for full activity. The kinetic data of Zn2+ binding to the apoprotein require at least a two-step mechanism, in which one of the steps corresponds to a conformational change within the enzyme. This paper also presents data concerning amino acid composition, sugar content, enzyme stability, absorbance index, and sedimentation velocity.

Alkaline Phosphatase↗

Bovine kidney alkaline phosphatase. Catalytic properties, subunit interactions in the catalytic process, and mechanism of Mg2+ stimulation.

Kidney alkaline phosphatase is an enzyme which requires two types of metals for maximal activity: zinc, which is essential, and magnesium, which is stimulatory. The main features of the Mg2+ stimulation have been analyzed. The stimulation is pH-dependent and is observed mainly between pH 7.5 and 10.5. Mg2+ binding to native alkaline phosphatase is characterized by a dissociation constant of 50 muM at pH 8.5,25 degrees. Binding of Zn2+ is an athermic process. Both the rate constants of association, ka, and of dissociation, kd, have low values. Typical values are 7 M(-1) at pH 8.0, 25 degrees, for ka and 4.10(-4) S(-1) at pH 8.0, 25 degrees, for kd. The on and off processes have high activation energies of 29 kcal mol (-1). Mg2+ can be replaced at its specific site by Mn2+, Co2+, Ni2+, and Zn2+. Zinc binding to the Mg2+ site inhibits the native alkaline phosphatase. Mn2+, Co2+, and Ni2+ also bind to the Mg2+ site with a stimulatory effect which is nearly identic-al with that of Mg2+, Mn2+ is the stimulatory cation which binds most tightly to the Mg2+ site; the dissociation constant of the Mn2+ kidney phosphatase complex is 2 muM at pH 8.5. The stoichiometry of Mn2+ binding has been found to be 1 eq of Mn2+ per mol of dimeric kidney phosphatase. The native enzyme displays absolute half-site reactivity for Mn2+ binding. Mg2+ binding site and the substrate binding sites are distinct sites. The Mg2+ stimulation corresponds to an allosteric effect. Mg2+ binding to its specific sites does not affect substrate recognition, it selectively affects Vmax values. Quenching of the phosphoenzyme formed under steady state conditions with [32P]AMP as a substrate as well as stopped flow analysis of the catalyzed hydrolysis of 2,4-dinitrophenyl phosphate or p-nitrophenyl phosphate have shown that the two active sites of the native and of the Mg2+-stimulated enzyme are not equivalent. Stopped flow analysis indicated that one of the two active sites was phosphorylated very rapidly whereas the other one was phosphorylated much more slowly at pH 4.2. Half of the sites were shown to be reactive at pH 8.0. Quenching experiments have shown that only one of the two sites is phosphorylated at any instant; this result was confirmed by the stopped flow observation of a burst of only 1 mol of nitrophenol per mol of dimeric phosphatase in the pre-steady state hydrolysis of p-nitrophenyl phosphate. The half-of-the-sites reactivity observed for the native and for the Mg2+-stimulated enzyme indicates that the same type of complex, the monophosphorylated complex, accumulates under steady state conditions with both types of enzymes. Mg2+ binding to the native enzyme at pH 8.0 increases considerably the dephosphorylation rate of this monophosphorylated intermediate. A possible mechanism of Mg2+ stimulation is discussed.

Alkaline Phosphatase↗

Multiplicite de la phosphatase alcaline cerebrale de differentes especes.

The alkaline phosphatase of beef, horse, pig and sheep brain have been purified. In each case, the alkaline phosphatase activity can be separated into two or three components by DEAE-cellulose chromatography and by electrophoresis. Although the properties of these enzyme fractions are very similar, there are sufficient differences to identify each species.Furthermore two of the three components separated in sheep brain differ in their Michaelis constants using beta-glycerophosphate as substrate, whereas the two pig brain components are not different in this respect. This supports the view of two alkaline phosphatase isoenzymes in sheep brain.

Journal Article↗

DNA topoisomerase I: customs officer at the border between DNA and RNA worlds?

DNA topoisomerase I is required for the normal development of multicellular organisms, probably because it plays a role in controlling gene activity, in addition to its function in relieving tortional stress during DNA replication and transcription. The discovery of DNA topoisomerase I as a specific kinase that phosphorylates serine-arginine rich (SR) splicing factors may provide new insights into their precise function in regulating gene expression. It is clear that the splicing factors phosphorylated by DNA topoisomerase I can modulate gene expression by changing the splicing pattern of structural genes. Studies of the splicing mechanism suggest that the phosphorylation of serine residues of SR proteins contribute to their activity. As this phosphorylation can be accomplished by several kinases, it remains to be determined whether phosphorylation by DNA topoisomerase I protein kinase is the limiting step in regulating this process. The availability of specific inhibitors of DNA topoisomerase I, structurally related to the alkaloid camptothecin, have made it possible to address this question experimentally. These inhibitors, which hold great promise as antineoplastic drugs, lead to specific inhibition of SR protein phosphorylation in cultured cells. This observation will hopefully lead to improved understanding of the mechanism by which these drugs act at cellular level.

Animals↗