| Literature DB >> 27398240 |
Faïçal Brini1, Khaled Masmoudi1.
Abstract
Adaptation of plants to salt stress requires cellular ion homeostasis involving net intracellular Na(+) and Cl(-) uptake and subsequent vacuolar compartmentalization without toxic ion accumulation in the cytosol. Sodium ions can enter the cell through several low- and high-affinity K(+) carriers. Some members of the HKT family function as sodium transporter and contribute to Na(+) removal from the ascending xylem sap and recirculation from the leaves to the roots via the phloem vasculature. Na(+) sequestration into the vacuole depends on expression and activity of Na(+)/H(+) antiporter that is driven by electrochemical gradient of protons generated by the vacuolar H(+)-ATPase and the H(+)-pyrophosphatase. Sodium extrusion at the root-soil interface is presumed to be of critical importance for the salt tolerance. Thus, a very rapid efflux of Na(+) from roots must occur to control net rates of influx. The Na(+)/H(+) antiporter SOS1 localized to the plasma membrane is the only Na(+) efflux protein from plants characterized so far. In this paper, we analyze available data related to ion transporters and plant abiotic stress responses in order to enhance our understanding about how salinity and other abiotic stresses affect the most fundamental processes of cellular function which have a substantial impact on plant growth development.Entities:
Year: 2012 PMID: 27398240 PMCID: PMC4907263 DOI: 10.5402/2012/927436
Source DB: PubMed Journal: ISRN Mol Biol ISSN: 2090-7907
Figure 1The main transport systems identified so far at the plasma membrane.
Plant ion transporters involved in salt tolerance identified by functional analysis.
| Name | Source species | Gene product | Function | Identification method | Harbourg species | Reference |
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| Sodium influx | ||||||
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| Na+ transporter | Na+/K+ homeostasis | Mutation |
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| Na+/K+ transporter | K+/Na+ homeostasis | Overexpression | Wheat | [ |
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| Sodium efflux | ||||||
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| Plasma membrane Na+/H+ antiporter | Na+ detoxification | Mutation |
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| Plasma membrane Na+/H+ antiporter | Na+ detoxification | Mutation |
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| Sodium compartmentation | ||||||
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| Vacuolar Na+/H+ antiporter | Na+ vacuolar sequestration | Overexpression |
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| Cabbage, tomato | [ | |||||
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| Vacuolar Na+/H+ antiporter | Na+ vacuolar sequestration | Overexpression |
| [ |
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| Vacuolar H+-PPase | H+ transport, vacuolar acidification | Overexpression |
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| Vacuolar H+-PPase | H+ transport, vacuolar acidification | Overexpression |
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| Regulatory genes | ||||||
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| Serine/threonine Protein kinase | SOS1 regulator | Mutation |
| [ |
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| Ca++ binding protein | Ca++ sensor/SOS2 activator | Mutation |
| [ |