PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
September 30, 2025PLANT PHYSIOLOGY4 citations

HyperTRIBE mapping of the RNA m6A demethylase ALKBH9 binding sites in bamboo reveals its role in plant defense

View Full Paper
HWHuihui WangHWHuiyuan WangYJYue Jia

Key Points

  • PheALKBH9 enhances rice susceptibility to blast disease by reducing m6A modification.
  • HyperTRIBE was used to identify PheALKBH9 target RNAs in rice and bamboo, unveiling its molecular interactions.
  • Overexpression of PheALKBH9 correlated with altered protein expression and poly(A) tail lengths.
  • PheALKBH9 binds to key plant immunity factors, indicating its crucial role in plant disease resistance.

Abstract

Abstract RNA demethylation plays an important role in diverse biological processes. Intriguingly, RNA demethylation has not been reported in bamboo, which is known for its rapid growth. PheALKBH9, an m6A demethylase in bamboo, was stably transformed into rice and increased its susceptibility to rice blast disease. Heterologous expression of PheALKBH9 reduced the overall m6A modification levels in rice. Using HyperTRIBE (Targets of RNA-binding proteins Identified By Editing), we identified evolutionarily conserved PheALKBH9 target RNAs in both rice and Moso bamboo. Overexpression of PheALKBH9 led to higher protein expression and shorter poly(A) tails. Notably, PheALKBH9 directly bound to CCR4-associated factor1 (CAF1G) and Poly(A)-binding genes (PABPC1 and PABPC2), potentially modulating poly(A) tail lengths. In addition, PheALKBH9 also bound to and removed m6A modifications from Perox4, JAZ7 and METS2, key players in plant immunity, suggesting that PheALKBH9 plays a role in plant disease resistance. In summary, our study unveils a previously unknown role of PheALKBH9-mediated m6A demethylation in response to blast disease and provides insights into its mechanisms in monocotyledonous plants.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Wang et al. (2025) studied this question.

synapsesocial.com/papers/68dc262a8a7d58c25ebb3620https://doi.org/10.1093/plphys/kiaf457
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1MoMkk1 and MoAtg1 dichotomously regulating autophagy and pathogenicity through MoAtg9 phosphorylation in Magnaporthe oryzae2024 · 9 citations
  2. 2OsALKBH9 ‐mediated m6A demethylation regulates tapetal PCD and pollen exine accumulation in rice2024 · 45 citations
  3. 3Dynamic m6A mRNA methylation reveals the involvement of AcALKBH10 in ripening‐related quality regulation in kiwifruit2024 · 25 citations
  4. 4The m 6 A reader SlYTH2 negatively regulates tomato fruit aroma by impeding the translation process2024 · 64 citations
  5. 5A Novel Rice PR10 Protein, RSOsPR10, Specifically Induced in Roots by Biotic and Abiotic Stresses, Possibly via the Jasmonic Acid Signaling Pathway2004 · 211 citations