Harnessing polyploidy for climate-resilient crops: Lessons from the evolutionary model, allotetraploid cotton
成果类型:
Article
署名作者:
Wang, Maojun; Wang, Ruipeng; Hu, Guanjing; Zhang, Xianlong; Wendel, Jonathan F.
署名单位:
Huazhong Agricultural University; Hubei Hongshan Laboratory; Iowa State University; Chinese Academy of Agricultural Sciences; Institute of Cotton Research, CAAS; Chinese Academy of Agricultural Sciences; Guangdong Laboratory for Lingnan Modern Agriculture; Agriculture Genomes Institute at Shenzhen, CAAS
刊物名称:
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA
ISSN/ISSBN:
0027-8424; 1091-6490
DOI:
10.1073/pnas.2522073123
发表日期:
2026-06-02
页码:
e2522073123
关键词:
Gossypium
evolutionary systems biology
allopolyploidy
genotype to phenotype
stress biology
EXPRESSION LEVEL DOMINANCE
transcription factor
TEMPERATURE STRESS
MALE-STERILITY
divergence
selection
time
BIAS
摘要:
Escalating pressures of global climate change necessitate developing agricultural systems and crop varieties with enhanced resilience. Polyploidy, the state of possessing multiple complete sets of chromosomes arising from whole genome duplication (WGD), is a major evolutionary force in plants, often conferring novel genetic and regulatory capacities that facilitate adaptation. Allotetraploid cotton (Gossypium spp.), which formed through the merger of distinct A and D subgenomes approximately 1 to 1.6 Mya, is an exemplary model for elucidating polyploid genome evolution and molecular mechanisms underlying stress adaptation. Whereas combining divergent genomes introduces genetic novelty and hybrid vigor, long-term adaptive success and enhanced resilience rely on complex regulatory reprogramming subsequent to the merger event. In cotton, and by extension other polyploids, this reprogramming involves dynamic structural genomic rearrangements, functional diversification of duplicated genes, and pervasive alterations in epigenetic landscapes. These processes reshape transcriptional networks, leading to homoeologous expression bias and novel regulatory interactions. These polyploidy-specific phenomena underpin differential subgenome contributions to key developmental processes and adaptive responses to major abiotic stresses including drought, salinity, and extreme temperature. A comprehensive understanding of these interconnected genetic and epigenetic control mechanisms, the resulting landscape of subgenome coordination or independence, and associated physiological consequences, are essential for designing effective strategies to breed climate-resilient crops. Here, we synthesize current insights from cotton, emphasizing their broader significance for harnessing polyploidy as a tool for future crop improvement amid global environmental change.
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