Review Article Open Access

Beyond Survival: The Unique Salt Secretion and Ion Homeostasis Mechanisms in Limonium bicolor Under Salt Stress

Linyang Wang1, Pin Chen1 and Shuge Tian1
  • 1 College of Traditional Chinese Medicine, Xinjiang Medical University, China

Abstract

Soil salinization poses a significant threat to global agriculture. Limonium bicolor, a recretohalophyte, has evolved a unique and efficient salt tolerance mechanism centered on epidermal salt glands for secreting excess salts. This review systematically synthesizes the multilevel salt tolerance strategies in Limonium bicolor, covering the structural basis of its multicellular salt glands, the molecular regulatory networks governing their development including core transcription factors (e.g., WD40, bHLH, MYB) and signaling pathways (e.g., cytokinin, MAPK cascades, Ca²⁺, NO) and the precise ion transport mechanisms for salt secretion. Furthermore, it elaborates on the supportive physiological adaptations, such as osmotic regulation and antioxidant defense, alongside the reprogramming of photosynthesis and secondary metabolism. The identification of key genes with potential for enhancing salt tolerance in other species underscores the translational value of this model halophyte. This integrated overview highlights the synergistic operation of structural, molecular, regulatory, and physiological layers, providing insights for future research and the breeding of salt-tolerant crops to utilize saline lands.

American Journal of Biochemistry and Biotechnology
Volume 22 No. 3, 2026, 38-1

DOI: https://doi.org/10.3844/ajbbsp.2026.22.03.038

Submitted On: 3 October 2025 Published On: 8 September 2026

How to Cite: Wang, L., Chen, P. & Tian, S. (2026). Beyond Survival: The Unique Salt Secretion and Ion Homeostasis Mechanisms in Limonium bicolor Under Salt Stress. American Journal of Biochemistry and Biotechnology, 22(3), 38-1. https://doi.org/10.3844/ajbbsp.2026.22.03.038

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Keywords

  • L. bicolor
  • Salt Gland
  • Salt Tolerance
  • Recretohalophyte
  • Physiological Adaptations