MP_2025v16n2

Molecular Pathogens, 2025, Vol.16, No.2, 61-68 http://microbescipublisher.com/index.php/mp 68 Li L., Long Y., Li H., and Wu X., 2020, Comparative transcriptome analysis reveals key pathways and hub genes in rapeseed during the early stage of Plasmodiophora brassicae infection, Frontiers in Genetics, 10: 1275. https://doi.org/10.3389/fgene.2019.01275 Li L., Luo Y., Chen B., Xu K., Zhang F., Li H., Huang Q., Xiao X., Zhang T., Hu J., Li F., and Wu X., 2016, A genome-wide association study reveals new loci for resistance to Clubroot disease in Brassica napus, Frontiers in Plant Science, 7: 1483. https://doi.org/10.3389/fpls.2016.01483 Mei J., Shao C., Yang R., Feng Y., Gao Y., Ding Y., Li J., and Qian W., 2020, Introgression and pyramiding of genetic loci from wild Brassica oleracea into B. napus for improving Sclerotinia resistance of rapeseed, Theoretical and Applied Genetics, 133: 1313-1319. https://doi.org/10.1007/s00122-020-03552-w Niemann J., Szwarc J., Bocianowski J., Weigt D., and Mrówczyński M., 2020, In-field screening for host plant resistance to Delia radicumand Brevicoryne brassicae within selected rapeseed cultivars and new interspecific hybrids, Open Life Sciences, 15: 711-720. https://doi.org/10.1515/biol-2020-0074 Raboanatahiry N., Chao H., He J., Li H., Yin Y., and Li M., 2022, Construction of a quantitative genomic map identification and expression analysis of candidate genes for agronomic and disease-related traits in Brassica napus, Frontiers in Plant Science, 13: 862363. https://doi.org/10.3389/fpls.2022.862363 Roy J., Del Río Mendoza L., Bandillo N., McClean P., and Rahman M., 2021, Genetic mapping and genomic prediction of sclerotinia stem rot resistance to rapeseed/canola (Brassica napus L.) at seedling stage, Theoretical and Applied Genetics, 135: 2167-2184. https://doi.org/10.1007/s00122-022-04104-0 Starosta E., Jamruszka T., Szwarc J., Bocianowski J., Jędryczka M., Grynia M., and Niemann J., 2024, DArTseq-based high-throughput identification of novel molecular markers for the detection of blackleg (Leptosphaeria Spp.) resistance in rapeseed, International Journal of Molecular Sciences, 25(15): 8415. https://doi.org/10.3390/ijms25158415 Yang P.P., and Fu J., 2024, Pantoea ananatis: emerging bacterial pathogen in wheat fields, Molecular Pathogens, 15(2): 83-92. https://doi.org/10.5376/mp.2024.15.0009 Yin M., Wang R., Li S., Luo M., Wei W., Wang M., Jiang J., Lin Y., and Zhao Y., 2022, High Sclerotinia sclerotiorumresistance in rapeseed plant has been achieved by OsPGIP6, Frontiers in Plant Science, 13: 970716. https://doi.org/10.3389/fpls.2022.970716 Yu M., Fan Y., Li X., Chen X., Yu S., Wei S., Li S., Chang W., Qu C., Li J., and Lu K., 2023, LESION MIMIC MUTANT1 confers basal resistance to Sclerotinia sclerotiorumin rapeseed via a salicylic acid-dependent pathway, Journal of Experimental Botany, 74(18): 5620-5634. https://doi.org/10.1093/jxb/erad295 Yu Y., Cai J., Ma L., Huang Z., Wang Y., Fang A., Yang Y., Qing L., and Bi C., 2020, Population structure and aggressiveness of Sclerotinia sclerotiorumfrom rapeseed (Brassica napus) in Chongqing city, Plant Disease, 104(4): 1201-1206. https://doi.org/10.1094/pdis-07-19-1401-re Zhang X., Cheng J., Lin Y., Fu Y., Xie J., Li B., Bian X., Feng Y., Liang W., Tang Q., Zhang H., Liu X., Zhang Y., Liu C., and Jiāng D., 2021, Editing homologous copies of an essential gene affords crop resistance against two cosmopolitan necrotrophic pathogens, Plant Biotechnology Journal, 19: 2349-2361. https://doi.org/10.1111/pbi.13667 Zhang X.H., Li X., Li H.N., Wang Z.R., Xia R., Hu J., Wang P.F., Zhou X.M., Wan L.L., Hong D.F., and Yang G.S., 2022, Quantitative trait locus mapping and improved resistance to sclerotinia stem rot in a backbone parent of rapeseed (Brassica napus L.), Frontiers in Plant Science, 13: 105. https://doi.org/10.3389/fpls.2022.1056206 Zhou W., 2024, Application and development prospects of rapeseed oil in biodiesel production, Journal of Energy Bioscience, 15(2): 74-86. https://doi.org/10.5376/jeb.2024.15.0008

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