MP_2024v15n5

Molecular Pathogens 2024, Vol.15, No.5, 255-262 http://microbescipublisher.com/index.php/mp 261 Gu Y., Xu X.H., Wu Y.K., Niu T.F., Liu Y.F., Li J.H., Du G.C., and Liu L., 2018, Advances and prospects of Bacillus subtilis cellular factories: from rational design to industrial applications, Metabolic Engineering, 50: 109-121. https://doi.org/10.1016/j.ymben.2018.05.006 Hao X.X., Zhang W.J., Zhao L.B., Shen L.Y., Zhu L., Zeng B., Jiang D.M., and Bai L., 2022, Bacillus subtilis reduces antibiotic resistance genes of animal sludge in vermicomposting by improving heat stress tolerance of Eisenia foetida and bacterial community adjustment, Environmental Research, 219: 115088. https://doi.org/10.1016/j.envres.2022.115088 Haq I., Brantl S., and Müller P., 2021, A new role for SR1 fromBacillus subtilis: regulation of sporulation by inhibition of kinA translation, Nucleic Acids Research, 49: 10589-10603. https://doi.org/10.1093/nar/gkab747 Hashem A., Tabassum B., and Abd_Allah E., 2019, Bacillus subtilis: A plant-growth promoting rhizobacterium that also impacts biotic stress, Saudi Journal of Biological Sciences, 26: 1291-1297. https://doi.org/10.1016/j.sjbs.2019.05.004 Isticato R., Lanzilli M., Petrillo C., Donadio G., Baccigalupi L., and Ricca E., 2019, Bacillus subtilis builds structurally and functionally different spores in response to the temperature of growth, Environmental Microbiology, 22(1): 170-182. https://doi.org/10.1111/1462-2920.14835 Khanna K., López-Garrido J., and Pogliano K., 2020, Shaping an Endospore: architectural transformations during Bacillus subtilis sporulation, Annual Review of Microbiology, 74: 361-386. https://doi.org/10.1146/annurev-micro-022520-074650 Lu Z., Zhou Y., Zhang X., and Zhang G., 2015, Sporulation or competence development? A genetic regulatory network model of cell-fate determination in Bacillus subtilis, Chinese Journal of Biotechnology, 31(11): 1543-1552. Luu J., Mott C., Schreiber O., Giovinco H., Betchen M., and Carabetta V., 2022, Nε-lysine acetylation of the histone-like protein HBsu regulates the process of sporulation and affects the resistance properties of Bacillus subtilis spores, Frontiers in Microbiology, 12: 782815. https://doi.org/10.3389/fmicb.2021.782815 Meeske A., Rodrigues C., Brady J., Lim H., Bernhardt T., and Rudner D., 2016, High-throughput genetic screens identify a large and diverse collection of new sporulation genes in Bacillus subtilis, PLoS Biology, 14. https://doi.org/10.1371/journal.pbio.1002341 Morawska L., Weme R., Frenzel E., Dirkzwager M., Hoffmann T., Bremer E., and Kuipers O., 2022, Stress‐induced activation of the proline biosynthetic pathway in Bacillus subtilis: a population‐wide and single‐cell study of the osmotically controlled proHJ promoter, Microbial Biotechnology, 15(9): 2411-2425. https://doi.org/10.1111/1751-7915.14073 Pedreira T., Elfmann C., and Stülke J., 2021, The current state of SubtiWiki, the database for the model organismBacillus subtilis, Nucleic Acids Research, 50: D875-D882. https://doi.org/10.1093/nar/gkab943 Pérez-Lorente A., Molina-Santiago C., Vicente A., and Romero D., 2023, Sporulation activated via σW protects Bacillus from a Tse1 peptidoglycan hydrolase type VI secretion system effector, Microbiology Spectrum, 11(2): e05045-22. https://doi.org/10.1128/spectrum.05045-22 Ramos-Silva P., Serrano M., and Henriques A., 2019, From root to tips: sporulation evolution and specialization in Bacillus subtilis and the intestinal pathogen Clostridioides difficile, Molecular Biology and Evolution, 36: 2714-2736. https://doi.org/10.1093/molbev/msz175 Rothstein D., Lazinski D., Osburne M., and Sonenshein A., 2017, A Mutation in the Bacillus subtilis rsbUgene that limits RNA synthesis during sporulation, Journal of Bacteriology, 199(4): 1-9. https://doi.org/10.1128/JB.00212-17 Russell J., Cabeen M., Wiggins P., Paulsson J., and Losick R., 2017,. Noise in a phosphorelay drives stochastic entry into sporulation in Bacillus subtilis, The EMBO Journal, 36: 2856-2869. https://doi.org/10.15252/embj.201796988 Schäfer H., Heinz A., Sudzinová P., Voß M., Hantke I., Krásný L., and Turgay K., 2018, Spx, the central regulator of the heat and oxidative stress response in B. subtilis, can repress transcription of translation‐related genes, Molecular Microbiology, 111(2): 514-533. https://doi.org/10.1111/mmi.14171 Shi L., Derouiche A., Pandit S., Rahimi S., Kalantari A., Futo M., Ravikumar V., Jers C., Mokkapati V., Vlahoviček K., and Mijakovic I., 2020, Evolutionary analysis of the Bacillus subtilis genome reveals new genes involved in sporulation, Molecular Biology and Evolution, 37: 1667-1678. https://doi.org/10.1093/molbev/msaa035 Sun G.H., Yang M., Jiang L.G., and Huang M.D., 2021, Regulation of pro-σK activation: a key checkpoint in Bacillus subtilis sporulation, Environmental Microbiology, 23(5): 2366-2373. https://doi.org/10.1111/1462-2920.15415 Tran V., Geraci K., Midili G., Satterwhite W., Wright R., and Bonilla C., 2018, Resilience to oxidative and nitrosative stress is mediated by the stressosome, RsbP and SigB in Bacillus subtilis, bioRxiv, 59(8): 834-845 https://doi.org/10.1002/jobm.201900076

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