Literature DB >> 6271213

Biphasic effect of orthophosphate on the (Na, K)-pump of human red cells.

R W Mercer, P B Dunham.   

Abstract

Orthophosphate (Pi) can both stimulate and inhibit the (Na, K)-pump in red cells. At concentrations below 0.5 mmol/l cells, Pi stimulated the pump, but at higher concentrations Pi was inhibitory. The stimulation was demonstrated in intact cells by preincubation with inosine (which leads to a reduction in cellular Pi concentration), and then by incubating cells in media with various Pi concentrations (which relieved the inhibition caused by inosine). In inosine-treated cells there was an inverse relationship between the hematocrit during measurement of the fluxes and inhibition of the (Na, K)-pump; this was also a reflection of cellular Pi, which was lower in inosine-treated cels at low hematocrit. The stimulation of the (Na, K)-pump by Pi below 0.5 mmol/l cells was an indirect effect, due to synthesis of ATP by membrane-bound glycolytic enzymes, which required the appropriate substrates (in addition to Pi). This was shown by studies on inside-out vesicles made from red cell membranes. In the absence of the other substrates, Pi was inhibitory to Na transport in the vesicles. Above 0.5 mmol/l cells Pi was inhibitory to Na transport, both in inside-out vesicles and in intact cells. The mechanism of inhibition, probably a direct effect on the (Na, K)-pump, was not determined, though product inhibition seemed likely. The dependence on Pi of abnormal modes of Na transport by the pump (uncoupled Na efflux and Na/Na exchange) at low Pi concentrations was less than the dependence of normal Na/K exchange. This was attributed to a requirement by the abnormal modes of a lower rate of synthesis of ATP or a lower ATP concentration.

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Year:  1981        PMID: 6271213     DOI: 10.1016/0005-2736(81)90124-3

Source DB:  PubMed          Journal:  Biochim Biophys Acta        ISSN: 0006-3002


  1 in total

1.  The alpha 1 Na(+)-K+ pump of the Dahl salt-sensitive rat exhibits altered Na+ modulation of K+ transport in red blood cells.

Authors:  M Canessa; J R Romero; N Ruiz-Opazo; V L Herrera
Journal:  J Membr Biol       Date:  1993-06       Impact factor: 1.843

  1 in total

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