Bt_2025v16n4

Bt Research 2025, Vol.16, No.4, 136-146 http://microbescipublisher.com/index.php/bt 146 Panwar B., Narula R., and Kaur S., 2018, Theoretical 3d modelling of a novel Cry toxin isolated from native Bacillus thuringiensis isolate sk711, Indian Journal of Entomology, 80: 108-113. https://doi.org/10.5958/0974-8172.2018.00021.4 Peralta C., Sauka D.H., Pérez M., Onco M.I., Fiodor A., Caballero J., Caballero P., Berry C., Valle E., and Palma L., 2021, Genome sequence analysis and insecticidal characterization of Bacillus thuringiensis Bt-UNVM_94 a strain showing dual insecticidal activity against lepidopteran and coleopteran pests, Proceedings of 1st International Electronic Conference on Toxins, 2021. https://doi.org/10.3390/iect2021-09139 Reyaz A., Balakrishnan N., and Udayasuriyan V., 2019, Genome sequencing of Bacillus thuringiensis isolate T414 toxic to pink bollworm (Pectinophora gossypiella saunders) and its insecticidal genes, Microbial Pathogenesis, 134: 103553. https://doi.org/10.1016/j.micpath.2019.103553 Shikov A.F., Malovichko Y.V., Skitchenko R.K., Nizhnikov A.A., and Antonets K.S., 2020, No more tears: mining sequencing data for novel Bt cry toxins with cryprocessor, Toxins, 12(3): 204. https://doi.org/10.3390/toxins12030204 Torres J., Surya W., and Boonserm P., 2023, Channel formation in cry toxins: an alphafold-2 perspective, International Journal of Molecular Sciences, 24(23): 16809. https://doi.org/10.3390/ijms242316809 Wang H.M., 2024, The application and progress of deep learning in bioinformatics, Computational Molecular Biology, 14(2): 76-83. https://doi.org/10.5376/cmb.2024.14.0009 Wang J., Ai X., Mei H., Fu Y., Chen B., Yu Z., and He J., 2013, High-throughput identification of promoters and screening of highly active promoter-5′-UTR DNA region with different characteristics fromBacillus thuringiensis, PLoS ONE, 8(5): e62960. https://doi.org/10.1371/journal.pone.0062960 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 Wang Z., Yang W., Yin C., Ma W., Liao M., Li F., and Zhang J., 2023, Cry9A and Vip3A protein-induced transcriptional changes correspond to their synergistic damage to the midgut of Chilo suppressalis, Pesticide Biochemistry and Physiology, 196: 105596. https://doi.org/10.1016/j.pestbp.2023.105596 Williams A.N., and MacLea K.S., 2020, Genome sequence of Bacillus thuringiensis strain MW a freshwater isolate, Microbiology Resource Announcements, 9(2): 10-1128. https://doi.org/10.1128/MRA.01482-19 Wu G., and Yi Y., 2018, Transcriptome analysis of differentially expressed genes involved in innate immunity following Bacillus thuringiensis challenge in Bombyx mori larvae, Molecular Immunology, 103: 220-228. https://doi.org/10.1016/j.molimm.2018.10.006 Yılmaz S., Idris A.B., Ayvaz A., Temizgül R., and Hassan M.A., 2022, Whole-genome sequencing of Bacillus thuringiensis strain SY49.1 reveals the detection of novel candidate pesticidal and bioactive compounds isolated from Turkey, bioRxiv, 2022: 03. https://doi.org/10.1101/2022.03.07.482483 Yılmaz S., Idris A., Ayvaz A., Temizgül R., Çetin A., and Hassan M., 2024, Genome mining of Bacillus thuringiensis strain SY49.1 reveals novel candidate pesticidal and bioactive compounds, Pest Management Science, 81: 298-307. https://doi.org/10.1002/ps.8433 Zhang Y., Wang Y., Li J., Wang C., Du G., and Kang Z., 2022, Construction of strong promoters by assembling sigma factor binding motifs, Methods in Molecular Biology, 2461: 137-147. https://doi.org/10.1007/978-1-0716-2152-3_9 Zhou Y., Wu Z., Zhang J., Wan Y., Jin W., Li Y., and Fang X., 2020, Cry80Aa1 a novel Bacillus thuringiensis toxin with mosquitocidal activity to Culex pipiens pallens, Journal of Invertebrate Pathology, 173: 107386. https://doi.org/10.1016/j.jip.2020.107386

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