MP_2025v16n2

Molecular Pathogens, 2025, Vol.16, No.2, 69-76 http://microbescipublisher.com/index.php/mp 75 References Akohoue F., and Miedaner T., 2022, Meta-analysis and co-expression analysis revealed stable QTL and candidate genes conferring resistances to Fusarium and Gibberella ear rots while reducing mycotoxin contamination in maize, Frontiers in Plant Science, 13: 1050891. https://doi.org/10.3389/fpls.2022.1050891 Andow D.A., Pueppke S.G., Schaafsma A.W., Gassmann A.J., Sappington T.W., Meinke L.J., Mitchell P., Hurley T., Hellmich R., and Porter P., 2015, Early detection and mitigation of resistance to bt maize by western corn rootworm (Coleoptera: Chrysomelidae), Journal of Economic Entomology, 109(1): 1-12. https://doi.org/10.1093/jee/tov238 Baisakh N., Da Silva E.A., Pradhan A.D., and Rajasekaran K., 2023, Comprehensive meta-analysis of QTL and gene expression studies identify candidate genes associated with Aspergillus flavus resistance in maize, Frontiers in Plant Science, 14: 1214907. https://doi.org/10.3389/fpls.2023.1214907 Chen C., Zhao Y., Tabor G., Nian H., Phillips J., Wolters P., Yang Q., and Balint-Kurti P., 2023, A leucine rich repeat receptor kinase gene confers quantitative susceptibility to maize southern leaf blight, The New Phytologist, 238(3): 1182-1197. https://doi.org/10.1111/nph.18781 Czarnecka D., Czubacka A., Agacka‐Mołdoch M., Trojak-Goluch A., and Księżak J., 2022, The occurrence of fungal diseases in maize in organic farming versus an integrated management system, Agronomy, 12(3): 558. https://doi.org/10.3390/agronomy12030558 Dey U., Harlapur S., Dhutraj D., Suryawanshi A., and Bhattacharjee R., 2015, Integrated disease management strategy of common rust of maize incited by Puccinia sorghi schw, African Journal of Microbiology Research, 9: 1345-1351. https://doi.org/10.5897/AJMR2014.7112 Dossa E.N., Shimelis H., Mrema E., Shayanowako A.T.I., and Laing M., 2023, Genetic resources and breeding of maize for Striga resistance: a review, Frontiers in Plant Science, 14: 1163785. https://doi.org/10.3389/fpls.2023.1163785 Guo J., Liu S., Jing D., He K., Zhang Y., Li M., Qi J., and Wang Z., 2022, Genotypic variation in field-grown maize eliminates trade-offs between resistance tolerance and growth in response to high pressure from the Asian corn borer, Plant Cell and Environment, 46(10): 3072-3089. https://doi.org/10.1111/pce.14458 Hurni S., Scheuermann D., Krattinger S., Kessel B., Wicker T., Herren G., Fitze M., Breen J., Presterl T., Ouzunova M., and Keller B., 2015, The maize disease resistance gene Htn1 against northern corn leaf blight encodes a wall-associated receptor-like kinase, Proceedings of the National Academy of Sciences, 112: 8780-8785. https://doi.org/10.1073/pnas.1502522112 Jiang C., 2024, Genetic mechanisms of crop disease resistance: new advances in GWAS, Plant Gene and Trait, 15(1): 15-22. https://doi.org/10.5376/pgt.2024.15.0003 Kumar A., Kanak K., Arunachalam A., Dass R., and Lakshmi P., 2022, Comparative transcriptome profiling and weighted gene co-expression network analysis to identify core genes in maize (Zeamays L.) silks infected by multiple fungi, Frontiers in Plant Science, 13: 985396. https://doi.org/10.3389/fpls.2022.985396 Lanubile A., Maschietto V., Borrelli V.M., Stagnati L., Logrieco A., and Marocco A., 2017, Molecular basis of resistance to Fusarium ear rot in maize, Frontiers in Plant Science, 8: 1774. https://doi.org/10.3389/fpls.2017.01774 Lanubile A., Maschietto V., De Leonardis S., Battilani P., Paciolla C., and Marocco A., 2015, Defense responses to mycotoxin-producing fungi Fusarium proliferatumF, subglutinans and Aspergillus flavus in kernels of susceptible and resistant maize genotypes, Molecular Plant-Microbe Interactions, 28(5): 546-557. https://doi.org/10.1094/MPMI-09-14-0269-R Ma W.D., Gao X., Han T., Mohammed M.T., Yang J., Ding J., Zhao W., Peng Y., and Bhadauria V., 2022, Molecular genetics of anthracnose resistance in maize, Journal of Fungi, 8(5): 540. https://doi.org/10.3390/jof8050540 Maschietto V., Lanubile A., Leonardis S., Marocco A., and Paciolla C., 2016, Constitutive expression of pathogenesis-related proteins and antioxydant enzyme activities triggers maize resistance towards Fusarium verticillioides, Journal of Plant Physiology, 200: 53-61. https://doi.org/10.1016/j.jplph.2016.06.006 Mesterházy Á., 2024, Food Safety Aspects of breeding maize to multi-resistance against the major (Fusarium graminearumF, verticillioides Aspergillus flavus) and minor toxigenic Fungi (Fusariumspp.) as well as to toxin accumulation trends and solutions—a review, Journal of Fungi, 10(1): 40. https://doi.org/10.3390/jof10010040 Mohammed A., Bekeko Z., and Tesso B., 2023, Epidemic development and management of common leaf rust (Puccinia sorghi Schwein) and turcicum leaf blight [Exserohilum turcicum(Pass.)] of maize (Zeamays L.) in eastern Ethiopia, Agrosystems Geosciences and Environment, 6(4): e20451. https://doi.org/10.1002/agg2.20451 Ndlovu N., Gowda M., Beyene Y., Das B., Mahabaleswara S.L., Makumbi D., Ogugo V., Burgueño J., Crossa J., Spillane C., McKeown P., Brychkova G., and Prasanna B., 2024, A combination of joint linkage and genome-wide association study reveals putative candidate genes associated with resistance to northern corn leaf blight in tropical maize, Frontiers in Plant Science, 15: 1448961. https://doi.org/10.3389/fpls.2024.1448961

RkJQdWJsaXNoZXIy MjQ4ODYzNA==