4.7 Article

Improving salt tolerance in potato through overexpression of AtHKT1 gene

Journal

BMC PLANT BIOLOGY
Volume 19, Issue 1, Pages -

Publisher

BMC
DOI: 10.1186/s12870-019-1963-z

Keywords

AtHKT1 gene; Solanum tuberosum; K+; Na+ ratio; Photosynthetic rate; Stomatal conductance; Transpiration rate

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Funding

  1. Gansu Provincial Key Laboratory of Aridland Crop Science, Gansu Agricultural University [GSCS-2017-3]
  2. National Natural Science Foundation of China [31760407]
  3. China Agriculture Research System-Potato [CARS-09-P14]
  4. Biological Technology Fund of Gansu province of China [GNSW-2016-27]
  5. Special funds for discipline construction of Gansu Agricultural University [GSAU-XKJS-2018-161]

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Background Survival of plants in response to salinity stress is typically related to Na+ toxicity, but little is known about how heterologous high-affinity potassium transporter (HKT) may help alleviate salt-induced damages in potato (Solanum tuberosum L.). Results In this study, we used the Arabidopsis thaliana high-affinity potassium transporter gene (AtHKT1) to enhance the capacity of potato plants to tolerate salinity stress by decreasing Na+ content and improving K+/Na+ ratio in plant leaves, while maintaining osmotic balance. Seven AtHKT1 transformed potato lines (namely T1, T2, T3, T5, T11, T13 and T15) were compared with non-transgenic control plant at molecule and whole-plant levels. The lines T3 and T13 had the highest AtHKT1 expression with the tolerance index (an quantitative assessment) being 6.8 times that of the control. At 30 days under 100 and 150 mmol L- 1 NaCl stress treatments, the T3 and T13 lines had least reductions in net photosynthetic rate, stomatal conductance and transpiration rate among the seven lines, leading to the increased water use efficiency and decreased yield loss. Conclusions We conclude that the constitutive overexpression of AtHKT1 reduces Na+ accumulation in potato leaves and promotes the K+/Na+ homeostasis that minimizes osmotic imbalance, maintains photosynthesis and stomatal conductance, and increases plant productivity.

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