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Arino J, et al.  (2010) Alkali metal cation transport and homeostasis in yeasts. Microbiol Mol Biol Rev 74(1):95-120

Abstract: Summary: The maintenance of appropriate intracellular concentrations of alkali metal cations, principally K(+) and Na(+), is of utmost importance for living cells, since they determine cell volume, intracellular pH, and potential across the plasma membrane, among other important cellular parameters. Yeasts have developed a number of strategies to adapt to large variations in the concentrations of these cations in the environment, basically by controlling transport processes. Plasma membrane high-affinity K(+) transporters allow intracellular accumulation of this cation even when it is scarce in the environment. Exposure to high concentrations of Na(+) can be tolerated due to the existence of an Na(+), K(+)-ATPase and an Na(+), K(+)/H(+)-antiporter, which contribute to the potassium balance as well. Cations can also be sequestered through various antiporters into intracellular organelles, such as the vacuole. Although some uncertainties still persist, the nature of the major structural components responsible for alkali metal cation fluxes across yeast membranes has been defined within the last 20 years. In contrast, the regulatory components and their interactions are, in many cases, still unclear. Conserved signaling pathways (e.g., calcineurin and HOG) are known to participate in the regulation of influx and efflux processes at the plasma membrane level, even though the molecular details are obscure. Similarly, very little is known about the regulation of organellar transport and homeostasis of alkali metal cations. The aim of this review is to provide a comprehensive and up-to-date vision of the mechanisms responsible for alkali metal cation transport and their regulation in the model yeast Saccharomyces cerevisiae and to establish, when possible, comparisons with other yeasts and higher plants.

Status: Published Type: Journal Article PubMed ID: 20197501

Topics addressed in this paper

Number of different genes curated to this paper: 40

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Topics Genes linked to topics (#1 - 10 )
ARL1 CMP2 CNA1 CNB1 ENA1 ENA2 ENA5 ENA6 GAT1 GLN3
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Topics Genes linked to topics (#11 - 20 )
HAL1 HAL5 HOG1 KHA1 MDM38 NHA1 NHX1 NRG1 PHO84 PHO89
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Topics Genes linked to topics (#21 - 30 )
PMA1 PPZ1 PPZ2 PTK2 REF2 RIM101 SAP155 SAP185 SAT4 SIS2
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  • To go to the Locus page for a gene, click on the gene name.

Topics Genes linked to topics (#31 - 40 )
SIT4 SKO1 SKY1 SNF1 TOK1 TRK1 TRK2 VNX1 YCK1 YCK2
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