BM_2026v17n1

Bioscience Methods 2026, Vol.17, No.1, 9-22 http://bioscipublisher.com/index.php/bm 22 Tripathy S.N., 2024, Pineapple cultivation enhances global demand, economic potential, and livelihoods for the Dongria Kondh, Horticulture International Journal, 8(4): 116-121. Wan D.Y., Guo Y., Cheng Y., Hu Y., Xiao S., Wang Y., and Wen Y.Q., 2020, CRISPR/Cas9-mediated mutagenesis of VvMLO3 results in enhanced resistance to powdery mildew in grapevine (Vitis vinifera), Horticulture Research, 7: 116. https://doi.org/10.1038/s41438-020-0339-8 Wang X., Tu M., Wang Y., Yin W., Zhang Y., Wu H., Gu Y., Li Z., Xi Z., Wang X., and Wang X., 2021, Whole-genome sequencing reveals rare off-target mutations in CRISPR/Cas9-edited grapevine, Horticulture Research, 8: 114. https://doi.org/10.1038/s41438-021-00549-4 Wu Y., Ren Q., Zhong Z., Liu G., Han Y., Bao Y., Liu L., Xiang S., Liu S., Tang X., Zhou J., Zheng X., Sretenovic S., Zhang T., Qi Y., and Zhang Y., 2022, Genome-wide analyses of PAM-relaxed Cas9 genome editors reveal substantial off-target effects by ABE8e in rice, Plant Biotechnology Journal, 20(9): 1670-1682. https://doi.org/10.1111/pbi.13838 Young J., Zastrow-Hayes G., Deschamps S., Svitashev S., Zaremba M., Acharya A., Paulraj S., Peterson-Burch B., Schwartz C., Djukanovic V., Lenderts B., Feigenbutz L., Wang L., Alarcon C., Siksnys V., May G., Chilcoat N.D., and Kumar S., 2019, CRISPR-Cas9 editing in maize: systematic evaluation of off-target activity and its relevance in crop improvement, Scientific Reports, 9(1): 6729. https://doi.org/10.1038/s41598-019-43141-6 Yow A.G., Bostan H., Castanera R., Ruggieri V., Mengist M.F., Curaba J., Young R., Gillitt N., and Iorizzo M., 2021, Improved high-quality genome assembly and annotation of pineapple (Ananas comosus) cultivar MD2 revealed extensive haplotype diversity and diversified FRS/FRF gene family, Genes, 13(1): 52. https://doi.org/10.3390/genes13010052 Zhang P., Jackson E., Li X., and Zhang Y., 2025, Salicylic acid and jasmonic acid in plant immunity, Horticulture Research, 12(7): uhaf082. https://doi.org/10.1093/hr/uhaf082 Zhang Y., Bai Y., Wu G., Zou S., Chen Y., Gao C., and Tang D., 2017, Simultaneous modification of three homoeologs of TaEDR1 by genome editing enhances powdery mildew resistance in wheat, The Plant Journal, 91(4): 714-724. https://doi.org/10.1111/tpj.13599 Zhou Q., Priyadarshani S.V.G.N., Qin R., Cheng H., Luo T., Wai M.H., Mohammadi M.A., Liu Y., Liu C., Cai H., Wang X., Liu Y., Qin Y., and Wang L., 2024, AcWRKY28-mediated activation of AcCPK genes confers salt tolerance in pineapple (Ananas comosus), Horticultural Plant Journal, 10(2): 398-412. Zhou X., Zhao Y., Ni P., Ni Z., Sun Q., and Zong Y., 2023, CRISPR-mediated acceleration of wheat improvement: advances and perspectives, Journal of Genetics and Genomics, 50(11): 815-834. https://doi.org/10.1016/j.jgg.2023.09.007 Zhu Q.H., Jin S., Yuan Y., Liu Q., Zhang X., and Wilson I., 2022, CRISPR/Cas9-mediated saturated mutagenesis of the cotton MIR482 family for dissecting the functionality of individual members in disease response, Plant Direct, 6(6): e410. https://doi.org/10.1002/pld3.410

RkJQdWJsaXNoZXIy MjQ4ODYzNA==