Bt_2025v16n4

Bt Research 2025, Vol.16, No.4, 157-167 http://microbescipublisher.com/index.php/bt 167 Wang Z., Wang K., Bravo A., Soberón M., Cai J., Shu C., and Zhang J., 2020, Coexistence of cry9 with the vip3A gene in an identical plasmid of Bacillus thuringiensis indicates their synergistic insecticidal toxicity, Journal of Agricultural and Food Chemistry, 68(47): 14081-14090. https://doi.org/10.1021/acs.jafc.0c05304 Yasin M., Wakil W., Kavallieratos N.G., Eleftheriadou N., Naeem A., Qayyum M., Asrar M., Alhewairini S., and Shapiro-Ilan D., 2024, Dual-strategy approach for Rhynchophorus ferrugineus control: endophytic Beauveria bassiana and Bacillus thuringiensis topical application, Crop Protection, 187: 106954. https://doi.org/10.1016/j.cropro.2024.106954 Yu S., Wang C., Li K., Yang Y., He Y., and Wu Y., 2022, Transcriptional analysis of cotton bollworm strains with different genetic mechanisms of resistance and their response to Bacillus thuringiensis Cry1Ac toxin, Toxins, 14(6): 366. https://doi.org/10.3390/toxins14060366 Zhan C.Y., 2024, Engineered syncoms for climate-resilient agriculture: field trials and performance evaluation, Bioscience Evidence, 14(2): 44-55. Zhu L., Chu Y., Zhang B., Yuan X., Wang K., Liu Z., and Sun M., 2022, Creation of an industrial Bacillus thuringiensis strain with high melanin production and UV tolerance by gene editing, Frontiers in Microbiology, 13: 913715. https://doi.org/10.3389/fmicb.2022.913715

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