A flow-through tissue homogenizer.
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Biomedical subjects
Publications and source records attributed to R Rodnight.
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1. Microsomes from guinea-pig brain grey matter were incubated with [(32)P]ATP at 3mm concentration and the phosphate bound to the acid-washed, lipid-free residue was determined. 2. The binding process was Mg(2+)-dependent and resulted in the transfer of about 1-2 mmumoles of phosphate/mg. of protein/min. Under the conditions used univalent cations (Na(+),K(+) and Li(+)) inhibited the binding. 3. An unspecified proportion of this bound phosphate could be recovered in protein-derived phosphorylserine. The yield of labelled phosphorylserine was also decreased by univalent cations. 4. The bound phosphate formed with 3mm-MgATP was stable; addition of Na(+) or K(+) ions to the already labelled preparation had no effect on the bound phosphate level. 5. Bound phosphate was also formed when a solubilized fraction of the microsomes was incubated with ATP; univalent cations also inhibited this process. 6. p-Chloromercuribenzoate reduced the binding by about 25%; the inhibition was restored by cysteine.
1. Microsomes prepared from guinea-pig and ox brain were incubated for periods of a few seconds with low concentrations of Mg-[(32)P]ATP, the reaction was stopped with trichloroacetic acid and determinations were made of the phosphate bound to the acid-washed, and in some cases solvent-extracted, residue. 2. At 20 mum-ATP, at 37 degrees and in the presence of Na(+) ions, 30-50 mumumoles of phosphate/mg. of microsomal protein were bound by the preparation within 1 sec. of starting the reaction; little further change in level occurred until hydrolysis of ATP exceeded 50%, when the bound phosphate began to decline fairly rapidly to the zero-time value. 3. At 20mum-ATP without Na(+) ions present or in the presence of K(+) ions, the level of bound phosphate increased gradually and did not decline as ATP hydrolysis approached completion. 4. Potassium ions either inhibited the formation of Na(+)-dependent bound phosphate or, when added during the course of the reaction, rapidly reduced its level. 5. At 200 mum-ATP the bound phosphate formed in the presence of Na(+) ions appeared to consist of a mixture of the unstable Na(+)-dependent type and the stable type requiring only Mg(2+) ions for its formation. 6. Non-radioactive ATP added during the course of the reaction at 20 mum-ATP with Na(+)ions present rapidly discharged virtually all the bound (32)P counts; at 200 mum-ATP only a proportion of the label was similarly discharged. The Na(+)-dependent bound phosphate is therefore turning over, in contrast with that formed in the absence of Na(+)ions, which proved more stable. 7. The Na(+)-dependent bound phosphate was not in the form of ATP; experiments with [(14)C]ATP instead of [(32)P]ATP showed a small and invariable binding of ATP by the preparation unaffected by Na(+) ions or time of incubation. 8. Under the usual conditions employed in this work ouabain stimulated formation of Na(+)-dependent bound phosphate when Na(+) ions were suboptimum and inhibited it when optimum Na(+) ions were present. 9. The Na(+)-dependent binding reaction under present conditions did not involve incorporation into phosphorylserine groups. 10. The relation of the findings to the (Na(+),K(+))-ATPase of the preparation, and to observations in brain slices appearing to implicate phosphorylserine groups in cation transport, is discussed.
1. Ox-brain microsomes were incubated with [gamma-(32)P]ATP under various conditions. After the reaction, which was stopped with trichloroacetic acid, a small amount of phosphate remained bound to the washed precipitate. 2. Properties of the bound phosphate were studied by treatment with buffers and solvents. 3. The Na(+)-dependent increment in bound phosphate, predominant at low ATP concentration and features of which suggest involvement in the concomitant adenosine-triphosphatase activity, was rapidly released in both circumstances. 4. In aqueous media the labile phosphate was released entirely as inorganic phosphate at faster rates with increasing alkalinity. 5. In acidified chloroform-alcohol mixtures the released phosphate appeared both as inorganic phosphate and different single (32)P-labelled organic phosphates, which were tentatively identified as the relevant mono-alkyl phosphates, presumably derived by acid-catalysed alcoholysis of a labelled microsomal component, or components. 6. The labile phosphate corresponded to the P exchangeable with non-radioactive ATP added during the enzyme reaction. 7. The possible molecular nature of the labile fraction of the bound phosphate is discussed.
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We investigated the involvement of protein kinase C (PKC) in the in vitro invasiveness of the A-172, U-87 and U-373 human glioma cell lines, as well as the role of ornithine decarboxylase (ODC) and/or extracellular-signal-regulated kinase (ERK) in the actions of PKC. Thus, cells were treated under serum-free conditions with the PKC activator phorbol 12-myristate 13-acetate (PMA), or with the PKC inhibitors bisindolylmaleimide I (GF 109203X) or calphostin C in the absence or presence of the ODC inhibitor D,L-alpha-difluoromethylornithine (DFMO), and/or the mitogen-activated protein kinase/extracellular-signal-regulated kinase inhibitor 2'-amino-3'-methoxyflavone (PD 098059). Subsequently, cells were assessed for membrane-type 1 matrix metalloproteinase (MT1-MMP) mRNA contents, 72-kD latent, and 59/62-kD activated matrix metalloproteinase 2 (MMP-2) in conditioned media, as well as invasiveness. For these purposes, we used Northern blot analysis, gelatine zymography, and an in vitro filter invasion assay, respectively. Data were related to those found with untreated cells. PKC activity was 2- to 3-fold stimulated by PMA (100 nM for 30 min), and about 2-fold inhibited by calphostin C (40 nM for 2 h) or GF 109203X (5 microM for 20 min). This was accompanied by a similar increase or decrease, respectively, in MT1-MMP mRNA expression, 59/62-kD MMP-2 activity, and in vitro invasion. Inhibition of ODC activity (about 2-fold by 24 h DFMO 5 mM), ERK activation (almost completely by 20 min PD 098059 50 microM), or both these enzymes simultaneously led to a reduction by about half in levels of MT1-MMP mRNA, 59/62-kD MMP-2 activity, and invasion in untreated as well as PMA-stimulated cells. The use of these compounds did not significantly alter the inhibitory effects of GF 109203X or calphostin C. Modulation of PKC and/or ERK activity resulted in corresponding changes in ERK and/or ODC activities, but interference with ODC affected neither ERK nor PKC. Our data suggest a regulatory role for PKC, in co-operation with ERK and ODC, in glioma cell invasion, by modulation of MT1-MMP mRNA expression and MMP-2 activation.
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