Synergistic interplay of redox homeostasis and polysaccharide synthesis promotes cotton fiber elongation

PLANT JOURNAL(2024)

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摘要
Cell polarity is the foundation of cell development and tissue morphogenesis. The investigation of polarized growth provides opportunities to gain profound insights into morphogenesis and tissue functionality in organisms. Currently, there are still many mysteries surrounding the mechanisms that regulate polarized cell growth. Cotton fiber cells serve as an excellent model for studying polarized growth, and provide important clues for unraveling the molecular mechanisms, signaling pathways, and regulatory networks of polarized growth. In this study, we characterized two functional genes, GhMDHAR1AT/DT and GhDHAR2AT/DT with predominant expression during fiber elongation. Loss of function of both genes contributed to a significant increase in fiber length. Transcriptomic data revealed up-regulated expression of antioxidant genes in CRISPR mutant lines, along with delayed expression of secondary wall-related genes and temporally prolonged expression of primary wall-related genes. Experimental evidence demonstrated that the increase in GSH content and glutathione peroxidase (GPX) enzyme activity led to enhanced total antioxidant capacity (T-AOC), resulting in reduced H2O2 levels, which contributed to the extension of fiber elongation stage in CRISPR mutant lines. Moreover, the increased polysaccharide synthesis in CRISPR mutant lines was found to provide an abundant supply of raw materials for fiber cell wall elongation, suggesting that synergistic interplay between redox homeostasis and polysaccharide synthesis in fiber cells may facilitate cell wall remodeling and fiber elongation. This study provides valuable insights for deciphering the mechanisms of cell polarized growth and improving cotton fiber quality. This study validated that the loss of function of GhMDHAR1AT/DT and GhDHAR2AT/DT genes resulted in an enhanced total antioxidant capacity (T-AOC) and increased polysaccharide synthesis in the fibers, ultimately leading to a significant increase in fiber length. This research contributes to a better understanding of polar cell growth and fiber development, providing a theoretical foundation for the genetic improvement of cotton fiber quality.image
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关键词
MDHAR,DHAR,ascorbic acid,redox homeostasis,polysaccharide synthesis,polarized growth,cotton fiber
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