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April 1, 2026PLANT PHYSIOLOGY0 citations

Melatonin enhances salt tolerance by inducing StMYB55 to improve flavonoid accumulation in potato

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XDXuanming DongCSChenxin SuiKWKaifa Wang

Key Points

  • To investigate how melatonin enhances salt tolerance in potato by regulating flavonoid accumulation through specific transcription factors.
  • Experimented with melatonin concentration effects on potato under salt stress.
  • Conducted transcription-metabolite association analysis to identify key transcription factors.
  • Overexpressed StMYB55 in transgenic potato plants to assess salt tolerance and flavonoid production.
  • 10 µM melatonin effectively alleviated salt stress in potatoes.
  • Overexpressing StMYB55 led to increased flavonoid accumulation and improved salt tolerance.
  • StMYB55 transcriptionally regulates StF3H, StFLS, and StUGT78D2, enhancing flavonoid biosynthesis.

Abstract

Abstract Salinity poses a major global threat to agriculture, severely damaging crop production and productivity. Potato (Solanum tuberosum L.) is an important food crop for ensuring food security and, as a moderately salt-sensitive crop, is extremely stressed by salinity. Melatonin (MT) is involved in various abiotic stress responses in plants. However, the detailed regulatory mechanisms by which melatonin contributes to salt stress tolerance in potatoes remain unclear. Here, we determined that an appropriate MT concentration of 10 µM significantly alleviates salt stress damage in potatoes. Transcription–metabolite association analysis identified the core transcription factor genes StMYB55 and StWRKY28, which exhibit both salt- and MT-responsive expression. Overexpressing StMYB55 enhanced salt tolerance in transgenic potato plants by increasing flavonoid accumulation. Importantly, StMYB55 promoted StF3H, StFLS, and StUGT78D2 transcription, while StWRKY28 directly enhanced StCHI expression. Additionally, StMYB55 interacted with StWRKY28 to promote StWRKY28-regulated StCHI expression and flavonoid biosynthesis in potato. Our findings reveal that the MT-mediated StMYB55-StWRKY28 transcriptional complex module regulates flavonoid accumulation, thereby improving salt stress tolerance in potatoes. These results shed light on the molecular mechanism of potato response to salinity stress, providing the basis for the genetic breeding of a melatonin-enriched salt-resistant potato variety.

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Cite This Study

Dong et al. (2026) studied this question.

synapsesocial.com/papers/69cd7a615652765b073a7671https://doi.org/10.1093/plphys/kiag168
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