MP_2025v16n5

Molecular Pathogens, 2025, Vol.16, No.5, 236-245 http://microbescipublisher.com/index.php/mp 244 Hoang T., Vo K., Hong W., Jung K., and Jeon J., 2018, Defense response to pathogens through epigenetic regulation in rice, Journal of Plant Biology, 61: 1-10. https://doi.org/10.1007/s12374-017-0434-z Huang D.S., Chen R.C., and Li J.Q., 2025, Dissecting complex traits in rice: insights from recent GWAS findings, Plant Gene and Trait, 16(2): 47-55. https://doi.org/10.5376/pgt.2025.16.0006 Ji C., Ji Z., Liu B., Cheng H., Liu H., Liu S., Yang B., and Chen G., 2020, Xa1 allelic R genes activate rice blight resistance suppressed by interfering TAL effectors, Plant Communications, 1(4): 100087. https://doi.org/10.1016/j.xplc.2020.100087 Li C., Zhou L., Wu B., Li S., Zha W., Li W., Zhou Z., Yang L., Shi L., Lin Y., and You A., 2022, Improvement of bacterial blight resistance in two conventionally cultivated rice varieties by editing the noncoding region, Cells, 11(16): 2535. https://doi.org/10.3390/cells11162535 Li C., Zhou Z., Chen H., Xie C., and Lin Y., 2019, A new rice breeding method: CRISPR/Cas9 system editing of the Xa13 promoter to cultivate transgene‐free bacterial blight‐resistant rice, Plant Biotechnology Journal, 18: 313-315. https://doi.org/10.1111/pbi.13217 Maidment J.H.R., Franceschetti M., Maqbool A., Saitoh H., Jantasuriyarat C., Kamoun S., Terauchi R., and Banfield M., 2021, Multiple variants of the fungal effector AVR-Pik bind the HMA domain of the rice protein OsHIPP19 providing a foundation to engineer plant defense, The Journal of Biological Chemistry, 296: 100371 https://doi.org/10.1016/j.jbc.2021.100371 Naing N.N.Z.N., Wang C.L., Zhou X.L., Zhang C., Li J.J., Li J., Zhu Q., Lee D.S., and Chen L.J., 2025, Molecular mechanisms of rice drought resistance genes and their prospects in breeding, Molecular Plant Breeding, 16(3): 165-179. https://doi.org/10.5376/mpb.2025.16.0017 Nath S., Mondal B., Das A., Mondal P., and Nath R., 2023, The impact of weather variables on the development of rice leaf blast disease in sundarban region West Bengal, Indian Phytopathology, 76: 783-792. https://doi.org/10.1007/s42360-023-00643-8 Nawaz G., Usman B., Peng H., Zhao N., Yuan R., Liu Y., and Li R., 2020, Knockout of Pi21 by CRISPR/Cas9 and iTRAQ-based proteomic analysis of mutants revealed new insights into M.oryzae resistance in elite rice line, Genes, 11(7): 735. https://doi.org/10.3390/genes11070735 Nihad S., Hasan M., Anik T., Rashid M., Khan M., Islam M., and Latif M., 2023, Pyramiding of blast and bacterial blight resistance genes in premium quality rice variety BRRI dhan63 through marker-assisted breeding approach, Euphytica, 220: 1-20. https://doi.org/10.1007/s10681-023-03255-5 Sathe A., Kumar A., Mandlik R., Raturi G., Yadav H., Kumar N., Shivaraj S., Jaswal R., Kapoor R., Gupta S., Sharma T., and Sonah H., 2021, Role of silicon in elevating resistance against sheath blight and blast diseases in rice (Oryza sativa L.), Plant Physiology and Biochemistry : PPB, 166: 128-139. https://doi.org/10.1016/j.plaphy.2021.05.045 Sattari A., Fakheri B., Hassan F.S.C., and Noroozi M., 2014, Blast resistance in rice: a review of breeding and biotechnology, CABI Digital Libiary, 7: 329-333. Sheoran N., Ganesan P., Mughal N., Yadav I., and Kumar A., 2021, Genome assisted molecular typing and pathotyping of rice blast pathogen Magnaporthe oryzae reveals a genetically homogenous population with high virulence diversity, Fungal Biology, 125(9): 733-747. https://doi.org/10.1016/J.FUNBIO.2021.04.007 Song J., Ouk S., Nogoy F., Niño M., Kwon S., Ha W., Kang K., and Cho Y., 2016, Application and utilization of marker assisted selection for biotic stress resistance in hybrid rice (Oryza sativa L.), Journal of Plant Biotechnology, 43: 317-331. https://doi.org/10.5010/JPB.2016.43.3.317 Tao H., Xiao N., Wang R., He F., Cai Y., Jiang S., Wang M., Wang D., Chen H., You X., Li A., Wang G., and Ning Y., 2025, Development of elite rice with broad-spectrum resistance through pyramiding of key resistance gene and simultaneously editing multiple susceptibility genes, Journal of Integrative Plant Biology, 67(7): 1691-1693. https://doi.org/10.1111/jipb.13901 Vasudevan K., Cruz V., Gruissem W., and Bhullar N.K., 2014, Large scale germplasm screening for identification of novel rice blast resistance sources, Frontiers in Plant Science, 5: 505. https://doi.org/10.3389/fpls.2014.00505 Vidhyasekaran P., 2020, Introduction, Plant Innate Immunity Signals and Signaling Systems, 19(7): 433-440. https://doi.org/10.1007/978-94-024-1940-5_1 Wang J., Tian D., Gu K., Yang X., Wang L., Zeng X., and Yin Z., 2017, Induction of Xa10-like genes in rice cultivar nipponbare confers disease resistance to rice bacterial blight, Molecular Plant-Microbe Interactions : MPMI, 30(6): 466-477. https://doi.org/10.1094/MPMI-11-16-0229-R Wang Z., Zhong G., Zhang B., Xie Y., Tang D., and Wang W., 2025, Research advances in rice blast resistance genes, Hereditas, 47(5): 533-545. https://doi.org/10.16288/j.yczz.24-358 Wei J., Huang K., Yang C., and Kang C., 2017, Non-coding RNAs as regulators in epigenetics (review), Oncology Reports, 37(1): 3-9. https://doi.org/10.3892/or.2016.5236

RkJQdWJsaXNoZXIy MjQ4ODYzNA==