OsNUOR enhances disease susceptibility by interfering with reactive oxygen species homeostasis and ferroptosis-like cell death

dc.date.accessioned2026-04-28T07:20:33Z
dc.date.issued2026
dc.descriptionAccepted date: 16 April 2026
dc.description.abstractNecrotrophic fungal pathogens such as Rhizoctonia solani, the causal agent of rice (Oryza sativa) sheath blight disease, enhance reactive oxygen species (ROS) production to induce necrosis in infected tissues. Here, we present evidence that the host alternative NADH:ubiquinone oxidoreductase (OsNUOR) facilitates R. solani infection by promoting an oxidative-stress-enriched environment and inducing iron-dependent ferroptosis-like cell death. OsNUOR overexpression (OE) lines exhibit enhanced disease susceptibility, whereas knock-out (KO) lines developed through genome editing demonstrate increased resistance. Infected OE lines have enhanced accumulation of ROS, lipid peroxides, and ferric ions (Fe3+); a significant reduction in antioxidative enzyme (including glutathione peroxidase) activity; and depletion of glutathione levels. In KO lines, the redox status of infected tissues is maintained, and the antioxidative defense is activated. Our data suggest that upregulation of OsNUOR induces mitochondrial ROS accumulation and modulates redox signalling, leading to Fe3+ accumulation and lipid peroxidation that promote necrosis in rice. KO lines are compromised in these processes and therefore exhibit disease resistance. We demonstrate that treatment with ferroptosis inhibitors prevents necrotic lesions, whereas ferroptosis inducers enhance disease severity. Overall, our study reveals the importance of ferroptosis-like cell death in promoting necrosis during R. solani infection in rice.
dc.description.sponsorshipThe research is supported by NIPGR flagship program (102/IFD/SAN/763/2019-20) funded by DBT, Govt of India, Swarna Jayanti Fellowship (SB/SJF/2020-21/01) and CRG grant (CRG/2022/004092) funded by ANRF (SERB), Govt of India, and BRIC-NIPGR core research grant. DS and NG acknowledge fellowship from CSIR and DBT, Govt of India, respectively. R.K.C. acknowledges financial support from the DBT-RA programme in Biotechnology and Life Sciences. G.J. acknowledges DBT-funded NIPGR flagship program (102/IFD/SAN/763/2019-20), SR-NBACD award (HRD-20/3/2024-HRD-DBT), ANRF (SERB)-funded Swarna Jayanti Fellowship (SB/SJF/2020-21/01), and BRIC-NIPGR core research grant. The authors are also thankful to DBT-eLibrary Consortium (DeLCON) for providing access to e-resources.
dc.identifier.citationPlant Cell, 38(5): koag112en
dc.identifier.issn1532-298X
dc.identifier.issn1040-4651
dc.identifier.otherhttps://doi.org/10.1093/plcell/koag112
dc.identifier.urihttps://academic.oup.com/plcell/advance-article/doi/10.1093/plcell/koag112/8656480?login=true
dc.identifier.urihttps://ndkr-library.nipgr.ac.in/handle/123456789/1799
dc.language.isoen_US
dc.publisherOxford University Press
dc.subjectOsNUOR
dc.subjectRhizoctonia solani
dc.subjectOryza sativa
dc.subjectrice
dc.subjectferroptosis-like
dc.subjectcell death
dc.subjectreactive oxygen species
dc.subjecthomeostasis
dc.titleOsNUOR enhances disease susceptibility by interfering with reactive oxygen species homeostasis and ferroptosis-like cell death
dc.typeArticle

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