The key pathways for drought tolerance in Cerasus humilis were unveiled through transcriptome analysis

Author:

Lang Shaoyu12ORCID,Dong Buming12,Liu Xin12,Gu Yongmei12,Kim Kukhon123,Xie Qingjun4,Wang Zhibo24,Song Xingshun12ORCID

Affiliation:

1. Key Laboratory of Saline‐alkali Vegetation Ecology Restoration (Northeast Forestry University) Ministry of Education Harbin China

2. College of Life Science, Northeast Forestry University Harbin China

3. Branch of Biotechnology, State Academy of Sciences, Pyongyang, the Democratic People's Republic of Korea

4. State Key Laboratory of Tree Genetics and Breeding Northeast Forestry University Harbin China

Abstract

AbstractDrought stress exerts a significant impact on the growth, development, and yield of fruit trees. Cerasus humilis is an endemic drought‐resistant fruit tree in northern China. To elucidate the underlying mechanism of drought resistance in C. humilis, comprehensive physiological measurements and transcriptome analysis were conducted on the leaves of C. humilis subjected to 15‐ or 22‐days of drought stress. We identified multiple GO terms and KEGG pathways associated with the drought stress response by performing GO and KEGG analysis on DEGs. Furthermore, through the prediction of transcription factors (TFs) and analysis of their expression levels, we observed differential expression patterns among most members of stress‐responsive TF families as the duration of drought stress increased. WGCNA analysis was performed on the transcriptome to identify gene cluster modules that exhibited a strong correlation with the durations of drought. Subsequently, these modules underwent GO and KEGG enrichment analyses. The study revealed that the TF‐mediated lignin biosynthesis pathway, along with the plant hormone signal transduction pathway, played a prominent role in responding to drought stress of C. humilis. Gene profiling analysis, qRT‐PCR, and determination of phytohormone and lignin contents further supported this hypothesis. The hierarchical gene regulatory network was finally constructed based on DEGs from the aforementioned key enriched pathways to predict the gene regulatory mechanisms in response to stress for C. humilis. The findings from this study provide valuable insights into how C. humilis copes with drought stress while analyzing crucial gene pathways associated with its resistance from a TF perspective. This research is significant for the genetic breeding of economic forests.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Heilongjiang Province

Publisher

Wiley

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