Haplotype-Resolution Transcriptome Analysis Reveals Important Responsive Gene Modules and Allele-Specific Expression Contributions under Continuous Salt and Drought in Camellia sinensis

Genes (Basel). 2023 Jul 8;14(7):1417. doi: 10.3390/genes14071417.

Abstract

The tea plant, Camellia sinensis (L.) O. Kuntze, is one of the most important beverage crops with significant economic and cultural value. Global climate change and population growth have led to increased salt and drought stress, negatively affecting tea yield and quality. The response mechanism of tea plants to these stresses remains poorly understood due to the lack of reference genome-based transcriptional descriptions. This study presents a high-quality genome-based transcriptome dynamic analysis of C. sinensis' response to salt and drought stress. A total of 2244 upregulated and 2164 downregulated genes were identified under salt and drought stress compared to the control sample. Most of the differentially expression genes (DEGs) were found to involve divergent regulation processes at different time points under stress. Some shared up- and downregulated DEGs related to secondary metabolic and photosynthetic processes, respectively. Weighted gene co-expression network analysis (WGCNA) revealed six co-expression modules significantly positively correlated with C. sinensis' response to salt or drought stress. The MEpurple module indicated crosstalk between the two stresses related to ubiquitination and the phenylpropanoid metabolic regulation process. We identified 1969 salt-responsive and 1887 drought-responsive allele-specific expression (ASE) genes in C. sinensis. Further comparison between these ASE genes and tea plant heterosis-related genes suggests that heterosis likely contributes to the adversity and stress resistance of C. sinensis. This work offers new insight into the underlying mechanisms of C. sinensis' response to salt and drought stress and supports the improved breeding of tea plants with enhanced salt and drought tolerance.

Keywords: Camellia sinensis; allele-specific expression; co-expression network; salt and drought stress; transcriptome.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Alleles
  • Camellia sinensis* / metabolism
  • Droughts
  • Gene Expression Profiling
  • Gene Regulatory Networks
  • Haplotypes
  • Plant Breeding
  • Sodium Chloride / metabolism
  • Stress, Physiological / genetics
  • Tea

Substances

  • Sodium Chloride
  • Tea

Grants and funding

This research was funded by fellowship of China National Postdoctoral Program for Innovative Talents (BX20220349) and the fellowship of China Postdoctoral Science Foundation (2021M703555).