MP_2025v16n4

Molecular Pathogens, 2025, Vol.16, No.4, 182-192 http://microbescipublisher.com/index.php/mp 191 Conflict of Interest Disclosure The authors confirm that the study was conducted without any commercial or financial relationships and could be interpreted as a potential conflict of interest. References Bhatia G., Upadhyay S.K., Upadhyay A., and Singh K., 2021, Investigation of long non-coding RNAs as regulatory players of grapevine response to powdery and downy mildew infection, BMC Plant Biology, 21(1): 265. https://doi.org/10.1186/s12870-021-03059-6 Bitencourt C., Pierre P., Pinto F., Fermino-Junior P., Gomes B., Morais A., Dias J., and Welter L., 2021, First report of oospore formation in Plasmopara viticola the causal agent of grapevine downy mildew in highland regions of southern Brazil, Plant Pathology, 70(8): 1897-1907. https://doi.org/10.1111/PPA.13431 Cesarini M., Giovannini O., Sarrocco S., and Puopolo G., 2025, Management of Plasmopara viticola: from the tradition to the innovation, Plant Health Cases, 2025: phcs20250003. https://doi.org/10.1079/planthealthcases.2025.0003 Delbac L., Delière L., Schneider C., and Delmotte F., 2019, Evidence for sexual reproduction and fertile oospore production by Plasmopara viticola on the leaves of partially resistant grapevine cultivars, Acta Horticulturae, 1248: 607-620. https://doi.org/10.17660/actahortic.2019.1248.82 Eisenmann B., Czemmel S., Ziegler T., Buchholz G., Kortekamp A., Trapp O., Rausch T., Dry I., and Bogs J., 2019, Rpv3-1 mediated resistance to grapevine downy mildew is associated with specific host transcriptional responses and the accumulation of stilbenes, BMC Plant Biology, 19(1): 343. https://doi.org/10.1186/s12870-019-1935-3 Feechan A., Anderson C., Torregrosa L., Jermakow A., Mestre P., Wiedemann-Merdinoglu S., Merdinoglu D., Walker A., Cadle-Davidson L., Reisch B., Aubourg S., Bentahar N., Shrestha B., Bouquet A., Adam-Blondon A., Thomas M., and Dry I., 2013, Genetic dissection of a TIR-NB-LRR locus from the wild North American grapevine species Muscadinia rotundifolia identifies paralogous genes conferring resistance to major fungal and oomycete pathogens in cultivated grapevine, The Plant Journal, 76(4): 661-674. https://doi.org/10.1111/tpj.12327 Figueiredo A., Sebastiana M., Martins J., Monteiro F., Coelho A., and Pais M., 2015, Early events of grapevine resistance towards downy mildew by a systems biology approach, Revista de Ciências Agrárias, 38: 124-130. https://doi.org/10.19084/RCA.16902 Fröbel S., Dudenhöffer J., Töpfer R., and Zyprian E., 2019, Transcriptome analysis of early downy mildew (Plasmopara viticola) defense in grapevines carrying the Asian resistance locus Rpv10, Euphytica, 215: 1-21. https://doi.org/10.1007/s10681-019-2355-z Fu Q., Yang J., Zhang K., Yin K., Xiang G., Yin X., Liu G., and Xu Y., 2023, Plasmopara viticola effector PvCRN11 induces disease resistance to downy mildew in grapevine, The Plant Journal, 117(3): 873-891. https://doi.org/10.1111/tpj.16534 Goyal N., Bhatia G., Garewal N., Upadhyay A., and Singh K., 2020, Genome-wide Identification characterization and expression analysis of the effector-triggered immunity (ETI) pathway-mediated defense responsive genes in grapes against powdery and downy mildew infections, Research Square, 2: 1-34. https://doi.org/10.21203/rs.2.15331/v2 Goyal N., Nag A., Samarth R.R., Upadhyay A., and Singh K., 2021, Identification and characterization of simple sequence repeats (SSR) markers associated with downy mildew resistance locus “RPV1” in grapes, Advances in Bioscience and Biotechnology, 12(11): 371-387. https://doi.org/10.4236/abb.2021.1211024 Guo L., Wang X., Ayhan D.H., Rhaman M., Yan M., Jiang J., Wang D., Zheng W., Mei J., Ji W., Jiao J., Chen S., Sun J., Yi S., Meng D., Wang J., Bhuiyan M., Qin G., Guo L., Yang Q., Zhang X., Sun H., Liu C., and Ye W., 2024, Super pangenome of grapevines empowers improvement of the oldest domesticated fruit, BioRxiv, 2024: 02. https://doi.org/10.1101/2024.02.28.582440 Huang D.D., and Feng X.Z., 2025, Advances in grapevine disease resistance: CRISPR/Cas9 applications, Plant Gene and Trait, 16(2): 56-63. https://doi.org/10.5376/pgt.2025.16.0007 Ilnitskaya E., Makarkina M., Toкmakov S., and Naumova L., 2023, DNA marker identification of downy mildew resistance locus Rpv10 in grapevine genotypes, Vavilov Journal of Genetics and Breeding, 27: 129-134. https://doi.org/10.18699/VJGB-23-18 Koledenkova K., Esmaeel Q., Jacquard C., Nowak J., Clément C., and Barka A., 2022, Plasmopara viticola the causal agent of downy mildew of grapevine: from its taxonomy to disease management, Frontiers in Microbiology, 13: 889472. https://doi.org/10.3389/fmicb.2022.889472 Li M.Y., Jiao Y.T., Wang Y.T., Zhang N., Wang B.B., Liu R.Q., Yin X., Xu Y., and Liu G., 2020, CRISPR/Cas9-mediated VvPR4b editing decreases downy mildew resistance in grapevine (Vitis vinifera L.), Horticulture Research, 7(1): 149. https://doi.org/10.1038/s41438-020-00371-4

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