Biotechnology Bulletin ›› 2025, Vol. 41 ›› Issue (2): 202-209.doi: 10.13560/j.cnki.biotech.bull.1985.2024-0632

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Differential Expression Analysis of Genes Related to NaCl Stress Response in Lycium barbarum 'Ningqi 1'

LI Jing-jing(), HU Jin-hong, LIANG Wang-li, MA Yu-rong, LIANG Wen-yu, WANG Ling-xia()   

  1. School of Life Sciences, Ningxia University, Yinchuan 750021
  • Received:2024-07-03 Online:2025-02-26 Published:2025-02-28
  • Contact: WANG Ling-xia E-mail:l1210701444@163.com;lxwang@nxu.edu.cn

Abstract:

Objective To explore the differential expression patterns of signal transduction pathways-related genes in Lycium barbarum Ningqi 1 under salt stress, and to lay a foundation for a deep understanding of the molecular mechanisms of L. barbarum 'Ningqi 1' tolerance to salinity. Method Transcriptome sequencing technique was used to analyze the signal transduction pathways-related differentially expressed genes in the leaves of L.barbarum Ningqi 1 under different concentrations of NaCl stress, and the changes in enzyme activities related to these pathways were also examined. Result 1) A total of 14 genes related to three signal transduction pathways were differentially expressed in the leaves of L.barbarum Ningqi 1 after 7 d of treatment with 0, 100, 200 and 300 mmol/L NaCl stress. 2) The relative expression of CIPK6 showed a downward trend, while that of MAPKK2 was in an upward trend. The relative expressions of MAPKKK18 and MAPK3 initially increased and then decreased with NaCl concentration increased. The RT-qPCR results were basically consistent with those obtained from RNA-seq. 3) As the NaCl concentration increasing, the enzyme activities of CIPK6, MAPKK2 and MAPKKK18 initially rose and then unchanged. The enzyme activities of MAPK3 and PLD were significantly higher compared to the control group. The content of calmodulin increased with the rising NaCl concentration. Conclusion L.barbarum Ningqi 1 may respond to NaCl stress by inducing phosphatidylinositol, MAPK cascade and differential expression of Ca2+dependent SOS signal transduction-related genes, and thus improve its tolerance to salt.

Key words: Lycium barbarum 'Ningqi 1', NaCl stress, signal transduction, differential expression of genes