Literature DB >> 9593580

Inorganic pyrophosphate-phosphohydrolytic activity associated with rat osseous plate alkaline phosphatase.

L A Rezende1, P Ciancaglini, J M Pizauro, F A Leone.   

Abstract

Purified membrane-bound alkaline phosphatase from rat osseous plate hydrolyzed pyrophosphate in the presence of magnesium ions, with a specific activity of 92.7 U/mg. Optimal apparent pH for pyrophosphatase activity was 8.0 and it remained unchanged on increasing the pyrophosphate concentration. In the absence of magnesium ions the enzyme had a Km = 88 microM and V = 36.7 U/mg for pyrophosphate and no inhibition by excess substrate was observed. Pyrophosphatase activity was rapidly destroyed at temperatures above 40 degrees C, but magnesium ions apparently protected the enzyme against denaturation. Sodium metavanadate (Ki = 1.0 mM) was a competitive inhibitor of pyrophosphatase activity, while levamisole (Ki = 8.2 mM) and theophylline (Ki = 7.4 mM) were uncompetitive inhibitors. Magnesium ions (K0.5 = 1.7 microM) stimulated pyrophosphatase activity, while cobalt (Ki = 48.5 microM) and zinc (Ki = 22.0 microM) ions were non-competitive inhibitors. Manganese and calcium ions had no effect on pyrophosphatase activity. The Mw of the pyrophosphatase protein was 130 kDa by gel filtration, but a value of 65 kDa was obtained by dissociative gel electrophoresis, suggesting that it was a dimer of apparently identical subunits. These results suggested that pyrophosphatase activity stems from the membrane-bound osseous plate alkaline phosphatase and not from a different protein.

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Year:  1998        PMID: 9593580

Source DB:  PubMed          Journal:  Cell Mol Biol (Noisy-le-grand)        ISSN: 0145-5680            Impact factor:   1.770


  10 in total

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Review 3.  The two sides of a lipid-protein story.

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5.  Proteoliposomes with the ability to transport Ca(2+) into the vesicles and hydrolyze phosphosubstrates on their surface.

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Authors:  Ana Maria S Simão; Manisha C Yadav; Sonoko Narisawa; Mayte Bolean; Joao Martins Pizauro; Marc F Hoylaerts; Pietro Ciancaglini; José Luis Millán
Journal:  J Biol Chem       Date:  2010-01-04       Impact factor: 5.157

10.  Kinetic analysis of substrate utilization by native and TNAP-, NPP1-, or PHOSPHO1-deficient matrix vesicles.

Authors:  Pietro Ciancaglini; Manisha C Yadav; Ana Maria Sper Simão; Sonoko Narisawa; João Martins Pizauro; Colin Farquharson; Marc F Hoylaerts; José Luis Millán
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  10 in total

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