PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
May 15, 2026Plants0 citationsOpen Access

Comprehensive Evaluation of Bacterial Blight Resistance and Gene Distribution in Common Wild Rice (Oryza rufipogon) from Hainan Province, China

View Full Paper
XXXiaorong XiaoXYXiaowei YanMHMengting Huang

Key Points

  • This research aims to evaluate the resistance of common wild rice against bacterial blight and analyze the distribution of resistance genes.
  • Evaluated resistance in 1511 wild rice accessions against three Xanthomonas oryzae strains.
  • Analyzed distribution of ten major resistance genes using genotyping techniques.
  • Conducted phenotypic evaluations to identify resistance patterns against the strains.
  • 35 accessions (2.32%) showed resistance to all Xoo strains tested.
  • 378 accessions (25.02%) demonstrated resistance to two strains.
  • Specific gene combinations (Xa1 + Xa10 + Xa23 + Xa4 + Xa7) provided the strongest resistance.

Abstract

Bacterial blight (BB), caused by Xanthomonas oryzae pv. Oryzae (Xoo), is one of the most devastating diseases in rice worldwide. Common wild rice (Oryza rufipogon Griff.) inhabiting the high-temperature and high-humidity environments of Hainan Island has evolved strong disease resistance through natural selection, representing a valuable genetic reservoir for resistance breeding. However, large-scale characterization of resistance phenotypes, resistance genes, and their combinations remains limited. In this study, we evaluated BB resistance in 1511 Hainan common wild rice accessions against three Xoo strains (HNX004, PXO99A, and Z173) and analyzed the distribution of ten major known resistance genes (Xa1, Xa3, Xa4, xa5, Xa7, Xa10, xa13, Xa21, Xa23, and Xa27). Phenotypic evaluation revealed distinct strain-specific resistance patterns. Broad-spectrum resistance analysis (defined as moderate resistance or higher) revealed that 35 accessions (2.32%) were resistant to all strains, and 378 accessions (25.02%) showed resistance to two strains. Genotyping of known resistance genes revealed that, except for one accession, which lacked all tested genes but showed resistance to strain PXO99A, all other accessions carried every tested gene except Xa21 and xa13. Interestingly, different Xoo strains exhibited distinct requirements for resistance genes, revealing a clear strain-specific resistance pattern. Notably, the number of resistance genes did not correlate with resistance level. Instead, specific complementary combinations, particularly Xa1 + Xa10 + Xa23 + Xa4 + Xa7, conferred the strongest broad-spectrum resistance. Our results demonstrate that gene quality and specific complementary combinations are more important than the absolute number of resistance genes. The identified resistant accessions and favorable gene combinations provide valuable resources for rice breeding programs.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Xiao et al. (2026) studied this question.

synapsesocial.com/papers/6a06b928e7dec685947abbd1https://doi.org/10.3390/plants15101492
Ask AI
Helpful
Bookmark
Share
View Full Paper