DHX9 SUMOylation is required for the suppression of R-loop-associated genome instability

RNA helicase DHX9 is essential for genome stability by resolving aberrant R-loops. However, its regulatory mechanisms remain unclear. Here we show that SUMOylation at lysine 120 (K120) is crucial for DHX9 function. Preventing SUMOylation at K120 leads to R-loop dysregulation, increased DNA damage, a...

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Veröffentlicht in:Nature communications 2024-07, Vol.15 (1), p.6009-18, Article 6009
Hauptverfasser: Yang, Bing-Ze, Liu, Mei-Yin, Chiu, Kuan-Lin, Chien, Yuh-Ling, Cheng, Ching-An, Chen, Yu-Lin, Tsui, Li-Yu, Lin, Keng-Ru, Chu, Hsueh-Ping Catherine, Wu, Ching-Shyi Peter
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Sprache:eng
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Zusammenfassung:RNA helicase DHX9 is essential for genome stability by resolving aberrant R-loops. However, its regulatory mechanisms remain unclear. Here we show that SUMOylation at lysine 120 (K120) is crucial for DHX9 function. Preventing SUMOylation at K120 leads to R-loop dysregulation, increased DNA damage, and cell death. Cells expressing DHX9 K120R mutant which cannot be SUMOylated are more sensitive to genotoxic agents and this sensitivity is mitigated by RNase H overexpression. Unlike the mutant, wild-type DHX9 interacts with R-loop-associated proteins such as PARP1 and DDX21 via SUMO-interacting motifs. Fusion of SUMO2 to the DHX9 K120R mutant enhances its association with these proteins, reduces R-loop accumulation, and alleviates survival defects of DHX9 K120R. Our findings highlight the critical role of DHX9 SUMOylation in maintaining genome stability by regulating protein interactions necessary for R-loop balance. The RNA helicase DHX9 is important for genome stability. Here the authors reveal that SUMOylation of DHX9 enhances its interaction with multiple proteins involved in the removal of harmful R-loop structures, thereby preventing DNA damage and cell death.
ISSN:2041-1723
2041-1723
DOI:10.1038/s41467-024-50428-4