Literature DB >> 1255128

Effects of halides and bicarbonate on chloride transport in human red blood cells.

M Dalmark.   

Abstract

Chloride self-exchange was determined by measuring the rate of 36Cl efflux from human red blood cells at pH 7.2 (0 degrees C) in the presence of fluoride, bromide, iodide, and bicarbonate. The chloride concentration was varied between 10--400 mM and the concentration of other halides and bicarbonate between 10--300 mM. Chloride equilibrium flux showed saturation kinetics. The half-saturation constant increased and the maximum flux decreased in the presence of halides and bicarbonate: the inhibition kinetics were both competitive and noncompetitive. The competitive and the noncompetitive effects increased proportionately in the sequence: fluoride less than bromide less than iodide. The inhibitory action of bicarbonate was predominantly competitive. The noncompetitive effect of chloride (chloride self-inhibition) on chloride transport was less dominant at high inhibitor concentrations. Similarly, the noncompetitive action of the inhibitors was less dominant at high chloride concentrations. The results can be described by a carrier model with two anion binding sites: a transport site, and a second site which modifies the maximum transport rate. Binding to both types of sites increases proportionately in the sequence: fluoride less than chloride less than bromide less than iodide.

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Year:  1976        PMID: 1255128      PMCID: PMC2214965          DOI: 10.1085/jgp.67.2.223

Source DB:  PubMed          Journal:  J Gen Physiol        ISSN: 0022-1295            Impact factor:   4.086


  6 in total

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6.  Characteristics of chloride transport in human red blood cells.

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Journal:  J Gen Physiol       Date:  1973-02       Impact factor: 4.086

  6 in total
  54 in total

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6.  A chloride-bicarbonate exchanging anion carrier in vascular smooth muscle of the rabbit.

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Authors:  J L Cousin; R Motais
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8.  An investigation of chloride-bicarbonate exchange in the sheep cardiac Purkinje fibre.

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10.  Cytosolic pH regulation in osteoblasts. Regulation of anion exchange by intracellular pH and Ca2+ ions.

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