CARBOHYDRATE OXIDASE GENE EXPRESSION IN SUNFLOWER DURING OROBANCHE CUMANA INFECTION
DOI:
https://doi.org/10.47743/jemb-2026-267Keywords:
carbohydrate oxidase (SCO), Helianthus annuus L., post-attachment, pre-attachment, pathogen resistance, biotic stressAbstract
Carbohydrate oxidases (SCO) represent a class of enzymes involved in carbohydrate metabolism and in the generation of hydrogen peroxide (H₂O₂), a key molecule in redox signaling and in the activation of plant defense responses. In this study, the transcriptional responses of the SCO gene were analyzed in three sunflower genotypes exhibiting contrasting reactions to O. cumana infestation, using a controlled artificial infestation system. The resulting expression profiles were correlated with the resistance or susceptibility phenotypes of the analyzed genotypes. The results revealed significant transcriptional differences among genotypes. Resistant genotypes showed an early and tightly regulated induction of SCO expression during the pre-attachment phase, followed by moderate and sustained activation associated with effective restriction of parasite establishment. In contrast, the susceptible genotype Performer exhibited a delayed and unbalanced response, insufficient to prevent successful infestation.
References
Apel K., Hirt H. 2004. Reactive oxygen species: metabolism, oxidative stress, and signal transduction. Annu Rev Plant Biol. 55:373–399.
Auriac MC, Griffiths C, Robin-Soriano A, Legendre A, Boniface MC, Muños S, Fournier J, Chabaud M. 2024. The penetration of sunflower root tissues by the parasitic plant Orobanche cumana is intracellular. New Phytol. 241(6):2326–2332.
Baxter A, Mittler R, Suzuki N. 2014. ROS as key players in plant stress signalling. J Exp Bot. 65(5):1229–1240.
Bindschedler LV, Dewdney J, Blee KA, et al. 2006. Peroxidase-dependent apoplastic oxidative burst in Arabidopsis required for pathogen resistance. Plant J. 47(6):851–863.
Bolouri Moghaddam MR, Le Roy K, Xiang L, Rolland F, Van den Ende W. 2010. Sugar signalling and antioxidant network connections in plant cells. J Exp Bot. 61:3717–3729. Bolwell GP, Bindschedler LV, Blee KA, et al. 2002. The apoplastic oxidative burst in response to biotic stress in plants: a three-component system. J Exp Bot. 53:1367–1376.
Custers JHHV, Harrison SJ, Sela-Buurlage MB, et al. 2004. Isolation and characterisation of a class of carbohydrate oxidases from higher plants, with a role in active defence. Plant J. 39(2):147–160.
Duca M, Acciu A, Clapco S. 2017. Geographic distribution and characterization of some Orobanche cumana populations in the Republic of Moldova. Bulletin of the Academy of Sciences of Moldova, Life Sciences. 2(332):65–76.
Fernández-Aparicio M, Yoneyama K, Rubiales D. 2011. The role of strigolactones in host specificity of Orobanche and Phelipanche seed germination. Seed Science Research. Seed Science Research. 2011;21(1):55-61.
Heath MC. 2000. Hypersensitive response-related death. Plant Mol Biol. 44:321–334.
Hegenauer V, Körner M, Albert M. 2017. Plants under stress by parasitic plants. Curr Opin Plant Biol. 38:34–41.
Hu X, Bidney DL, Yalpani N, Duvick JP, Crasta O, Folkerts O, Lu G. 2003. Overexpression of a gene encoding hydrogen peroxide generating oxalate oxidase evokes defense responses in sunflower. Plant Physiol. 133:170–118.
Hückelhoven R, Kogel K H. 2003. Reactive oxygen intermediates in plant microbe interactions: who is who in powdery mildew resistance? Planta. 216(6):891–902.
Hückelhoven R. 2007. Cell wall-associated mechanisms of disease resistance and susceptibility. Annu Rev Phytopathol. 45:101–127.
Lamb C, Dixon RA. 1997. The oxidative burst in plant disease resistance. Annu Rev Plant Physiol Plant Mol Biol. 48:251–275.
Letousey P, de Zélicourt A, Vieira Dos Santos C, Thoiron S, Monteau F, Simier P, Thalouarn P, Delavault P. 2007. Molecular analysis of resistance mechanisms to Orobanche cumana in sunflower. Plant Pathol. 56(3):536–546.
Locci F, Benedetti M, Pontiggia D, Citterico M, Caprari C, Mattei B, Cervone F, De Lorenzo G. 2019. An Arabidopsis berberine bridge enzyme-like protein specifically oxidizes cellulose oligomers and plays a role in immunity. Plant J, 98(3):540-554.
Lopez LE. 2024. Exploring the puzzle of reactive oxygen species acting on root hair cells. J Exp Bot. 75:4589-4598.
Louarn J, Boniface M C, Pouilly N, VelaSCO L, Pérez Vich B, Vincourt P, Muños S. 2016. Sunflower resistance to broomrape (Orobanche cumana) is controlled by specific QTLs for different parasitism stages. Front Plant Sci. 7:590.
Lu G. 2003. Engineering Sclerotinia sclerotiorum resistance in oilseed crops. Afr J Biotechnol. 2(12):509-516.
Mittler R, Vanderauwera S, Gollery M, Van Breusegem F. 2004. Reactive oxygen gene network of plants. Trends Plant Sci. 9(10):490–498.
Mittler R, Vanderauwera S, Suzuki N, et al. 2011. ROS signaling: the new wave? Trends Plant Sci. 16(6):300–309.
O’Brien JA, Daudi A, Butt VS, Bolwell GP. 2012. Reactive oxygen species and their role in plant defence and cell wall metabolism. Planta. 236:765–779.
Passardi F, Penel C, Dunand C. 2004. Performing the paradoxical: how plant peroxidases modify the cell wall. Trends Plant Sci. 9(11):534–540.
Schmittgen TD, Livak KJ. 2008. Analyzing real time PCR data by the comparative Cᵀ method. Nat Protoc. 3:1101-1108.
Suzuki N, Miller G, Morales J, Shulaev V, Torres MA, Mittler R. 2011. Respiratory burst oxidases: the engines of ROS signaling. Curr Opin Plant Biol. 14:691–699.
Tabara O. 2020. Estimation of physiological and molecular changes in the defense response of the host–parasite system. doctoral thesis abstract, 34 pp.
Tjallinks G, Mattevi A, Fraaije MW. 2024. Biosynthetic strategies of berberine bridge enzyme-like flavoprotein oxidases toward structural diversification in natural product biosynthesis. Biochemistry. 63(17):2089–2110.
Torres MA, Jones JDG, Dangl JL. 2006. Reactive oxygen species signaling in response to pathogens. Plant Physiol. 141(2):373–378.
Waszczak C, Carmody M, Kangasjärvi J. 2018. Reactive oxygen species in plant signaling. Annu Rev Plant Biol. 69:209–236.
Wojtaszek P. 1997. Oxidative burst: an early plant response to pathogen infection. Biochem J. 322(3):681–692.
Xu Y, Zhang S, Zhang M, Jiao S, Guo Y, Jiang T. 2024. The role of reactive oxygen species in plant–virus interactions. Plant Cell Rep. 16;43(8):197
Downloads
Published
How to Cite
License
Copyright (c) 2026 Rodica Martea, Steliana Clapco , Duca Maria

This work is licensed under a Creative Commons Attribution 4.0 International License.
This journal provides immediate open access to its content on the principle that making research freely available to the public supports a greater global exchange of knowledge. The journal allows readers to read, download, copy, distribute, print, search, link to the full texts or use the articles for any other lawful purpose.
The authors are the sole copyright owners of the published articles. The articles are distributed under the CC BY 4.0 license to the readers.
The readers are free to:
Share — copy and redistribute the material in any medium or format
Adapt — remix, transform, and build upon the material for any purpose, even commercially
Under the following terms:
Attribution — You must give appropriate credit, provide a link to the license, and indicate if changes were made. You may do so in any reasonable manner, but not in any way that suggests the licensor endorses you or your use.
No additional restrictions — you may not apply legal terms or technological measures that legally restrict others from doing anything the license permits.






