Academic literature on the topic 'Bacillus Subtilis and IPM'

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Journal articles on the topic "Bacillus Subtilis and IPM"

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Babatunde Abiodun Kelly. "Insecticidal potency of entomopathogenic bacterium Bacillus subtilis on cockroach (Periplaneta americana)." International Journal of Science and Research Archive 12, no. 1 (2024): 934–39. http://dx.doi.org/10.30574/ijsra.2024.12.1.0839.

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The effect of exposing cockroaches to entomopathogenic bacteria isolated from the diseased specie was examined based on established parameters. Cockroaches were collected from residential areas in Akure metropolis in Nigeria using a bread and beer trap, brought to the laboratory, housed in wooden cages with wire nettings, provided with starch-based food and sterile water. Collected cockroaches were observed for the onset of possible disease symptoms amongst the population for several weeks. Resulting moribund and dead cockroaches were aseptically picked, surface sterilized and homogenized insi
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Pakina, Elena N., Sergey I. Shkurkin, and Maria T. Mukhina. "Effectiveness of biological products for control of the most significant mycoses on potato crops." RUDN Journal of Agronomy and Animal Industries 18, no. 4 (2023): 501–7. http://dx.doi.org/10.22363/2312-797x-2023-18-4-501-507.

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Experiments on comparative assessment of effectiveness of bioagents to control the most significant fungal diseases were carried out on crops of potato breeding line in the Zernograd district, Rostov region. Biofungicide Metabakterin, WP based on Methylobacterium extorquens NVD VKM B-2879D + Validamycin Streptomyces hygroscopicus subsp. limoneus VKPM AC-1966 + Bacillus subtilis VKPM B-2918 IPM 215 and biofungicide Vitaplan based on Bacillus subtilis , strain VKM-B-2604D + Bacillus subtilis , strain VKM-B-2605D were studied in the research. The results showed that Metabakterin, WP at the rate o
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Avdeenko, A. P., and S. S. Avdeenko. "The effect of treatment of various strains of Bacillus subtilis on the productivity of winter wheat." IOP Conference Series: Earth and Environmental Science 979, no. 1 (2022): 012026. http://dx.doi.org/10.1088/1755-1315/979/1/012026.

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Abstract In the conditions of the Rostov region of the Russian Federation on ordinary micellar-carbonate chernozems, the effect of Bacillus subtilis strains during the processing of winter wheat seeds on the productivity and quality of grain of the zoned varieties Grom and Kalym was studied. The issues of influence of strains 10-VISR, IPM 215, VKM-V-2605D and 26D on field germination of seeds, winter hardiness and survival of plants for harvesting are considered. The analysis of the dependence of the structure of the yield and the yield of wheat varieties on the Bacillus subtilis strain is giv
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Fauzi, Irfan, and Soekadar Wiryadiputra. "Population of Pratylenchus coffeae (Z.) and growth of Arabica coffee seedling inoculated by Pseudomonas diminuta L. and Bacillus subtilis (C.)." Pelita Perkebunan (a Coffee and Cocoa Research Journal) 31, no. 1 (2015): 30–40. http://dx.doi.org/10.22302/iccri.jur.pelitaperkebunan.v31i1.77.

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AbstractPratylenchus coffeae is a parasitic nematoda that infected the roots of some plants, one of them is coffee. The Infection of Pratylenchus coffeae cause root tissue damage that led to root lession and make root become rotten, it will interfere the ability of roots to absorb water and nutrients in the soil which resulted in the growth of plants. At the moment, control of Pratylenchus coffeae are following integrated pests management (IPM) program, which integrated between the use of coffee resistant clone and application of biological agents. Research on biological control was conducted
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Shen, Wenqiang, Yaojun Liu, Xinyue Zhang, et al. "Comparison of Ameliorative Effects between Probiotic and Biodegradable Bacillus subtilis on Zearalenone Toxicosis in Gilts." Toxins 13, no. 12 (2021): 882. http://dx.doi.org/10.3390/toxins13120882.

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This study was conducted to compare the potential ameliorative effects between probiotic Bacillus subtilis and biodegradable Bacillus subtilis on zearalenone (ZEN) toxicosis in gilts. Thirty-six Landrace×Yorkshire gilts (average BW = 64 kg) were randomly divided into four groups: (1) Normal control diet group (NC) fed the basal diet containing few ZEN (17.5 μg/kg); (2) ZEN contaminated group (ZC) fed the contaminated diet containing an exceeded limit dose of ZEN (about 300 μg/kg); (3) Probiotic agent group (PB) fed the ZC diet with added 5 × 109 CFU/kg of probiotic Bacillus subtilis ANSB010; (
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Nandi, Suchhanda. "Antibiotic resistance of bacterial Isolates from Food and Environment: In vitro and In silico Analysis." Bioscience Biotechnology Research Communications 17, no. 1 (2024): 25–32. http://dx.doi.org/10.21786/bbrc/17.1.5.

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Manifold types of environmental samples have been known to be contaminated with potential bacterial pathogens stretching the global world with several infections in humans. Among six samples including five environmental samples and one food sample were taken up for in vitro study. Applying the disc diffusion method using 10 antibiotics, the isolated bacterial susceptibility to antibiotics was performed and MAR (multiple antibiotic resistance) index was calculated. All the bacterial isolates were sensitive to AK (amikacin), CIP (ciprofloxacin), VA (vancomycin), TE (tetracycline), MRP (meropenem
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Thiruvengadam, Raguchander, Karthikeyan Gandhi, Sendhilvel Vaithiyanathan, et al. "Complete Genome Sequence Analysis of Bacillus subtilis Bbv57, a Promising Biocontrol Agent against Phytopathogens." International Journal of Molecular Sciences 23, no. 17 (2022): 9732. http://dx.doi.org/10.3390/ijms23179732.

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Plant growth-promoting rhizobacteria (PGPR) are a group of root-associated beneficial bacteria emerging as one of the powerful agents in sustainable plant disease management. Among the PGPR, Bacillus sp. has become a popular biocontrol agent for controlling pests and the diseases of several crops of agricultural and horticultural importance. Understanding the molecular basis of the plant growth-promoting and biocontrol abilities of Bacillus spp. will allow us to develop multifunctional microbial consortia for sustainable agriculture. In our study, we attempted to unravel the genome complexity
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Yang, Jinpeng, Xinyue Zhang, Ziyao Zhou, et al. "Protective Effects of Bacillus subtilis HH2 against Oral Enterotoxigenic Escherichia coli in Beagles." Veterinary Sciences 10, no. 7 (2023): 432. http://dx.doi.org/10.3390/vetsci10070432.

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This study evaluated the protective effect of Bacillus subtilis HH2 on beagles orally challenged with enterotoxigenic Escherichia coli (ETEC). We assessed the physiological parameters and the severity of diarrhea, as well as the changes in three serum immunoglobulins (IgG, IgA, and IgM), plasma diamine oxidase (DAO), D-lactate (D-LA), and the fecal microbiome. Feeding B. subtilis HH2 significantly reduced the severity of diarrhea after the ETEC challenge (p < 0.05) and increased serum levels of IgG, IgA, and IgM (p < 0.01). B. subtilis HH2 administration also reduced serum levels of DAO
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Syasya Billah, Amanda, Andi Marini Indriani, and Gunaedy Utomo. "PENGARUH BAKTERI BACILLUS SUBTILIS TERHADAP KEKUATAN BATU BATA MENGGUNAKAN LUMPUR LIMBAH IPA." Jurnal Gradasi Teknik Sipil 7, no. 2 (2024): 202–10. http://dx.doi.org/10.31961/gradasi.v7i2.2089.

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Lumpur Limbah IPA mengandung bahan kimia yang dapat menimbulkan pencemaran pada sungai. Untuk mengurangi pencemaran, lumpur limbah IPA dapat dimanfaatkan menjadi bahan pembuatan batu bata. Selain itu pada penelitian ini dalam pembuatan batu bata tidak dibakar agar tidak menimbulkan polusi udara. Batu bata yang dibuat tanpa dibakar umumnya menggunakan semen dalam campuran tanah liat. Semen sendiri dalam proses pembuatannya dapat menimbulkan limbah. Salah satu upaya untuk menghindari pencemaran adalah menggunakan bakteri Bacillus subtilis yang ramah lingkungan untuk meningkatkan kekuatan dari ba
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Maheerthanan, RA, M. Ravi, G. Preetha, B. Jeberlin Prabina, and A. Sowmiya. "Impact of Plant Growth-promoting Rhizobacteria on the Incidence of Aphids (Aphis gossypii) in Okra." International Journal of Plant & Soil Science 36, no. 11 (2024): 466–76. http://dx.doi.org/10.9734/ijpss/2024/v36i115163.

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Okra (Abelmoschus esculentus L. Moench) is a widely cultivated vegetable in Asia, facing ongoing challenges from aphids (Aphis gossypii Glover). A field study was conducted on a microplot in Kasilingapuram, Karungulam block, Thoothukudi district, during the Rabi season of 2020 and the Summer of 2021. Various plant growth-promoting rhizobacteria (PGPRs) were applied to the hybrid COBh 4 okra cultivars through soil, seed, and foliar treatments, and their impact on aphid populations was assessed. The findings revealed a significant reduction in aphid numbers and enhanced production of defensive c
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Dissertations / Theses on the topic "Bacillus Subtilis and IPM"

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Nava, Diaz Cristian. "Role of plant growth-promoting rhizobacteria in integrated disease management and productivity of tomato." The Ohio State University, 2006. http://rave.ohiolink.edu/etdc/view?acc_num=osu1135888331.

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Shariati, Parvin. "Nitrate respiration in Bacillus licheniformis and Bacillus subtilis." Thesis, Heriot-Watt University, 2004. http://hdl.handle.net/10399/350.

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Le, Thi Tam. "Proteomic signatures of Bacillus subtilis." [S.l.] : [s.n.], 2006. http://deposit.ddb.de/cgi-bin/dokserv?idn=984429247.

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Connelly, Mariah Bindel. "Multicellular development in Bacillus subtilis /." For electronic version search Digital dissertations database. Restricted to UC campuses. Access is free to UC campus dissertations, 2004. http://uclibs.org/PID/11984.

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Lin, Daniel Chi-Hong 1972. "Chromosome partitioning in Bacillus subtilis." Thesis, Massachusetts Institute of Technology, 1999. http://hdl.handle.net/1721.1/85288.

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Hansson, Mats. "Tetrapyrrole synthesis in Bacillus subtilis." Lund : Dept. of Microbiology, Lund University, 1994. http://books.google.com/books?id=pJBqAAAAMAAJ.

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Sidiq, Karzan Rafiq. "Cell wall metabolism in Bacillus subtilis." Thesis, University of Newcastle upon Tyne, 2016. http://hdl.handle.net/10443/3243.

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Cell wall is a unique and essential component of bacterial cell. It defines cell shape and protects cell from bursting through its own internal osmotic pressure. It also represents a significant drain on the cells resources, particularly in Gram positives, where the wall accounts for more than 20 % of the dry weight of the cell, and approximately 50 % of ‘‘old’’ cell wall is degraded and new material made to permit cell growth. After the discovery of penicillin, there has been active study of bacterial cell wall structure and metabolism, as it represents the major target for antibacterial comp
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Mat, Wai Kin. "Genetic code mutants of bacillus subtilis /." View abstract or full-text, 2007. http://library.ust.hk/cgi/db/thesis.pl?BICH%202007%20MAT.

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Farquhar, R. "The spoIVC locus of Bacillus subtilis." Thesis, University of Oxford, 1985. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.370251.

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Chaloner-Courtney, Iain James. "The spoIIA locus of Bacillus subtilis." Thesis, University of Oxford, 1992. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.306497.

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Books on the topic "Bacillus Subtilis and IPM"

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Agence de réglementation de la lutte antiparasitaire (Canada), ed. Bacillus subtilis souche MBI 600. Agence de réglementation de la lutte antiparasitaire, 2007.

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Pest Management Regulatory Agency (Canada), ed. Bacillus subtilis strain MBI 600. Pest Management Regulatory Agency, 2007.

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Sonenshein, Abraham L., James A. Hoch, and Richard Losick, eds. Bacillus subtilis and Its Closest Relatives. ASM Press, 2001. http://dx.doi.org/10.1128/9781555817992.

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1944-, Sonenshein A. L., Hoch James A, and Losick Richard, eds. Bacillus subtilis and its closest relatives. ASM Press, 2002.

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Adrianus Antonius Cornelis Maria Peijnenburg. Structural plasmid instability in Bacillus subtilis. Achterom, 1988.

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Shoda, Makoto. Biocontrol of Plant Diseases by Bacillus subtilis. CRC Press, 2019. http://dx.doi.org/10.1201/9780429027635.

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Sonenshein, Abraham L., James A. Hoch, and Richard Losick, eds. Bacillus subtilis and Other Gram-Positive Bacteria. ASM Press, 1993. http://dx.doi.org/10.1128/9781555818388.

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Sanders, Rhiannon. Segregational stability of plasmids in "bacillus subtilis". typescript, 1986.

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1917-, Maruo Bunji, and Yoshikawa Hiroshi 1933-, eds. Bacillus subtilis: Molecular biology and industrial application. Kodansha, 1989.

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Meyer, Pieter Diederick. Cell wall autolysis and turnover in bacillus subtilis. Elinkwijk, 1985.

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Book chapters on the topic "Bacillus Subtilis and IPM"

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Lovett, Paul S., and Nicholas P. Ambulos. "Genetic Manipulation of Bacillus subtilis." In Bacillus. Springer US, 1989. http://dx.doi.org/10.1007/978-1-4899-3502-1_6.

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Itaya, Mitsuhiro. "Bacillus subtilis 168." In Bacterial Genomes. Springer US, 1998. http://dx.doi.org/10.1007/978-1-4615-6369-3_50.

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Schomburg, Dietmar, and Margit Salzmann. "Bacillus subtilis ribonuclease." In Enzyme Handbook 3. Springer Berlin Heidelberg, 1991. http://dx.doi.org/10.1007/978-3-642-76463-9_188.

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Mountain, Andrew. "Gene Expression Systems for Bacillus subtilis." In Bacillus. Springer US, 1989. http://dx.doi.org/10.1007/978-1-4899-3502-1_5.

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Zhang, Xiao-Zhou, Chun You, and Yi-Heng Percival Zhang. "Transformation of Bacillus subtilis." In Methods in Molecular Biology. Springer New York, 2014. http://dx.doi.org/10.1007/978-1-4939-0554-6_7.

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Mishra, Santosh Kumar, Indu Bhatt, and Prabir Kumar Paul. "Bacillus subtilis Cell Factory." In Biomanufacturing for Sustainable Production of Biomolecules. Springer Nature Singapore, 2023. http://dx.doi.org/10.1007/978-981-19-7911-8_8.

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Twyman, R. M. "Sporulation in Bacillus subtilis." In BIOS Instant Notes in Developmental Biology. Taylor & Francis, 2023. http://dx.doi.org/10.1201/9781003416371-21.

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Zeigler, Daniel R. "The Bacillus Genetic Stock Center/Bacillus subtilis." In The Biological Resources of Model Organisms. CRC Press, 2019. http://dx.doi.org/10.1201/9781315100999-3.

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Thorne, Curtis B. "Bacillus anthracis." In Bacillus subtilis and Other Gram-Positive Bacteria. ASM Press, 2014. http://dx.doi.org/10.1128/9781555818388.ch8.

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Fridén, Henrik, and Lars Hederstedt. "Cytochrome b558 of Bacillus Subtilis." In Cytochrome Systems. Springer US, 1987. http://dx.doi.org/10.1007/978-1-4613-1941-2_88.

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Conference papers on the topic "Bacillus Subtilis and IPM"

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Liu, C., L. Licht, W. Eschen, et al. "High-Resolution EUV ptychography for Quantitative Analysis of Bacterial Structures and Composition." In Novel Techniques in Microscopy. Optica Publishing Group, 2025. https://doi.org/10.1364/ntm.2025.ntu1c.5.

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We utilize ptychographic EUV imaging as a label-free method to study bacterial structures and composition with sub-50 nm spatial resolution, revealing physiological diversity in Escherichia coli and Bacillus subtilis and morphological changes induced by chemicals.
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SILVA, H. N. L., G. S. SALOMÃO, T. S. LIRA, and L. M. PINOTTI. "CELLULASE PRODUCTION BY Bacillus subtilis." In XXII Congresso Brasileiro de Engenharia Química. Editora Blucher, 2018. http://dx.doi.org/10.5151/cobeq2018-pt.0907.

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Xing, Haili, and Jiaying Xin. "Antimicrobial Efficacy of Methanobactin against Bacillus Subtilis." In 2015 International Conference on Management, Education, Information and Control. Atlantis Press, 2015. http://dx.doi.org/10.2991/meici-15.2015.56.

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Yu, Baolong, Alexandra Alimova, Alvin Katz, and Robert R. Alfano. "THz absorption spectrum of Bacillus subtilis spores." In Integrated Optoelectronic Devices 2005, edited by R. Jennifer Hwu and Kurt J. Linden. SPIE, 2005. http://dx.doi.org/10.1117/12.590951.

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Maltseva, S. V., A. S. Yakubovich, E. R. Gritskevitch, I. E. Buchenkov, and A. G. Sysa. "ANTAGONISTIC ACTIVITY OF BACTERIA OF THE GENUS BACILLUS ISOLATED FROM SOILS UNDER PROLONGED EXPOSURE TO IONIZING RADIATION IN RELATION TO COLIMORPHOUS BACTERIA." In SAKHAROV READINGS 2022: ENVIRONMENTAL PROBLEMS OF THE XXI CENTURY. International Sakharov Environmental Institute of Belarusian State University, 2022. http://dx.doi.org/10.46646/sakh-2022-1-299-302.

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This paper presents the results of studies of the antagonistic activity of bacteria of the genus Bacillus (Bacillus subtilis, Bacillus thuringiensis, Bacillus mycoides and Bacillus cereus) under prolonged exposure to ionizing radiation in relation to bacteria of the E. coli group. It was found that bacteria of the genus Bacillus exhibit antagonistic activity of varying degrees of severity. It was found that the bacterial strains Bacillus subtilis, Bacillus thuringiensis and Bacillus mycoides showed a high level of antagonistic activity. Low antagonistic activity was characteristic of Bacillus
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Alekseev, Valentin Yu, Svetlana V. Veselova, Elena R. Sarvarova, and Igor V. Maksimov. "Growth-promoting activity of endophytic bacteria of the genus Bacillus." In 2nd International Scientific Conference "Plants and Microbes: the Future of Biotechnology". PLAMIC2020 Organizing committee, 2020. http://dx.doi.org/10.28983/plamic2020.018.

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Growth-promoting concentrations of the genus Bacillus new isolates and mixtures of endophytic strains of Bacillus subtilis were selected. Isolates B. subtilis Stl7 and Ttl2 are promising for the creation of biocontrol agents.
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Rusciano, G., G. Zito, G. Pesce, A. Sasso, R. Isticato, and E. Ricca. "Tip-Enhanced Raman Scattering of Bacillus subtilis spores." In European Conference on Biomedical Optics. OSA, 2015. http://dx.doi.org/10.1364/ecbo.2015.95400s.

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Li, Jun-Xun, Jie Gao, Xue-Gang Luo, Yu Guo, Jing Xiao, and Tong-Cun Zhang. "Functions of Bacillus Subtilis BS7.29 in Wasterwater Treatment." In 2010 International Conference on Digital Manufacturing and Automation (ICDMA). IEEE, 2010. http://dx.doi.org/10.1109/icdma.2010.292.

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Xu, Hui, Shiru Jia, and Jianjun Liu. "Production of acetoin by Bacillus subtilis TH-49." In 2011 International Conference on Consumer Electronics, Communications and Networks (CECNet). IEEE, 2011. http://dx.doi.org/10.1109/cecnet.2011.5768441.

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Abdallah, Samah, Samah El-Sayed, and Mohamed Abdel-Khalek. "Selective bio-flocculation of hematite mineral using Bacillus subtilis for phosphorous removal from iron ores." In Proceedings of XVI International Mineral Processing and Recycling Conference, Belgrade, 28-30.05.2025. University of Belgrade, Technical Faculty, Bor, 2024. https://doi.org/10.5937/imprc25313a.

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Bacillus subtilis is used as a bio-surface modifier to flocculate hematite mineral (Fe2O3). The effect of bacterial interaction on the behavior of the hematite and apatite minerals as the main source of phosphorous in the iron ore was investigated using zeta-potential, and FTIR measurements. The effect of pH on the flocculation of the two minerals was investigated. The zeta-potential of hematite is strongly affected by Bacillus subtilis interaction while the maximum flocculation efficiency was achieved at pH 6. The hematite mineral could be separated from its mixture with apatite mineral in th
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Reports on the topic "Bacillus Subtilis and IPM"

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ศิวรังสรรค์, นภา. การกลายพันธุ์เชื้อ Bacillus subtilis TISTR 25 เพื่อเพิ่มการผลิตเอนไซม์แอลคาไลน์โปรตีเอสให้สูงขึ้น : งานวิจัยฉบับสมบูรณ์. จุฬาลงกรณ์มหาวิทยาลัย, 1996. https://doi.org/10.58837/chula.res.1996.19.

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ศิวรังสรรค์, นภา. แอลคาไลน์โปรติเอสจาก Bacillus subtilis mutant UUNN-1 และภาวะที่เหมาะสมของการผลิตของในถังหมักขนาด 5 ลิตรแบบไม่ต่อเนื่อง : รายงานผลวิจัย. จุฬาลงกรณ์มหาวิทยาลัย, 2000. https://doi.org/10.58837/chula.res.2000.30.

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Bacillus subtilis สายพันธุ์กลาย UUNN-1 สามารถผลิตแอลคาไลน์โปรติเอสได้ในปริมาณสูงในถังหมักขนาด 5 ลิตร แบบไม่ต่อเนื่อง โดยใช้สูตรอาหารที่ ปริมาณไนโตรเจนจากสารสกัดจากกากถั่วเหลืองผสมกากเมล็ดดอกทานตะวัน เท่ากับ 0.4%(w/v), KH[subscript 2]PO[subscript 4] 0.1%(w/v), MgSO[subscript 4].7H[subscript 2]O 0.05%(w/v), CaCl[subscript 2].2H[subscript 2]O 0.001%(w/v) ค่าความเป็นกรด-ด่างเท่ากับ 7.0 ปริมาณเชื้อเริ่มต้นเท่ากับ 1.0%(v/v) ควบคุมอุณหภูมิที่ 37 องศาเซลเซียส อัตราการกวน 250 รอบต่อนาที อัตราการเติมอากาศ เท่ากับ 1.0 vvm ในปริมาณทั้งสิ้น 3.5 ลิตร ทำการผลิตได้ 1,579 ยูนิตต่อกรัมเซลล์แห้งรวมใช้ระยะเวลาในก
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JACOBS, JENNIFER A., BOBBY N. TURMAN, and D. M. FAGUY. Effects of Thermoradiation Treatments on the DNA of Bacillus Subtilis Endospores. Office of Scientific and Technical Information (OSTI), 2002. http://dx.doi.org/10.2172/800983.

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Arnett, Clint, Justin Lange, Ashley Boyd, Martin Page, and Donald Cropek. Expression and secretion of active Moringa oleifera coagulant protein in Bacillus subtilis. Engineer Research and Development Center (U.S.), 2021. http://dx.doi.org/10.21079/11681/41546.

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Cationic polypeptide proteins found in the seeds of the tropical plant Moringa oleifera have coagulation efficiencies similar to aluminum and ferric sulfates without their recalcitrant nature. Although these proteins possess great potential to augment or replace traditional coagulants in water treatment, harvesting active protein from seeds is laborious and not cost-effective. Here, we describe an alternative method to express and secrete active M. oleifera coagulant protein (MO) in Bacillus subtilis. A plasmid library containing the MO gene and 173 different types of secretory signal peptides
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Scriabin, M. P. FACILITY FROM NATURAL STRAINS OF BACTERIUS BACILLUS SUBTILIS FOR PRODUCING A FERRO-MILK FODDER PRODUCT. Ljournal, 2019. http://dx.doi.org/10.18411/978-5-6042744-2-2-269-270.

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Tarabukina, N. P. PROSPECTS FOR USING PROBIOTICS FROM STRAINS BACILLUS SUBTILIS BACTERIA IN AGRICULTURE, MEDICINE AND ENVIRONMENTAL PROTECTION. Yakut State Agricultural Academy, 2019. http://dx.doi.org/10.18411/978-5-6042744-2-2-274-275.

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จันทร์ศิริพรชัย, นิวัตร, รุ่งทิพย์ ชวนชื่น та ปิยะรัตน์ จันทร์ศิริพรชัย. การใช้ competitive exclusion (CE) ในการป้องกัน การติดเชื้อแคมไพโลแบคเตอร์ในสัตว์ปีก : รายงานการวิจัยฉบับสมบูรณ์. จุฬาลงกรณ์มหาวิทยาลัย, 2014. https://doi.org/10.58837/chula.res.2014.70.

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การศึกษาครั้งนี้มีวัตถุประสงค์ เพื่อคัดเลือกเชื้อจุลินทรีย์ในกลุ่มของ Lactobacillus spp., Bacillus spp. และ Enterococcus faecium จากมูลไก่จำนวน 60 ตัวอย่าง นำมาทดสอบในห้องปฏิบัติการเพื่อหาเชื้อที่มีความไวรับต่อยาต้านจุลชีพตามมาตรฐานของ European Food Safety Authority และให้ผลการทดสอบคุณสมบัติการทนกรดและน้ำดี อยู่ในเกณฑ์ดี เพื่อนำเชื้อดังกล่าวมาใช้เป็น competitive exclusion (CE) เพื่อทดสอบการป้องกันการติดเชื้อแคมไพโลแบคเตอร์ในไก่เนื้อ ซึ่งเชื้อจุลินทรีย์ที่มีคุณสมบัติผ่านการคัดเลือก ได้แก่ Lactobacillus acidophilus 1/4, Bacillus subtilis 206/1 และ Enterococcus faecium 122 เมื่อนำ CE ทั้ง 3 ชนิดป
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Morales Castañeda, Alexis. Tendencias de investigación de probióticos utilizados en animales monogástricos. Corporación Colombiana de Investigación Agropecuaria - AGROSAVIA, 2014. http://dx.doi.org/10.21930/agrosavia.informe.2014.4.

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El análisis de redes por temáticas afines, permitió identificar una red compuesta por Universiti Putra Malaysia, Islamic Azad University, Zhejiang University y Kangwon National University, siendo el principal contenido de sus investigaciones, los temas de suplementación de aditivos alimenticios de Bacillus subtilis y su efecto en el crecimiento, la utilización de bacteriófagos y la eficacia de probióticos multimicrobiales comerciales en presentaciones liquidas y sólidas para reducir infecciones intestinales.
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โสภณ, เอนก, อภิชาติ กาญจนทัต та เอกธิดา ทองเด็จ. การศึกษาประสิทธิภาพพอลิแซคคาไรด์จากสาหร่ายทะเลขนาดใหญ่สำหรับการนำมาประยุกต์ใช้เป็นพรีไบโอติก. จุฬาลงกรณ์มหาวิทยาลัย, 2018. https://doi.org/10.58837/chula.res.2018.97.

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โครงการการศึกษาประสิทธิภาพพอลิแซคคาไรด์จากสาหร่ายทะเลขนาดใหญ่สำหรับการนำมาประยุกต์ใช้เป็นพรีไบโอติก โดยการศึกษาคุณค่าทางโภชนาการและพอลิแซ็กคาไรด์ จากสาหร่ายทะเล 3 ชนิด ได้แก่ สาหร่ายผักกาดทะเล (Ulva rigida) สาหร่ายพวงองุ่น (Caulerpa lentillifera) และสาหร่ายผมนาง (Gracillaria fisheri) พบว่าคุณค่าทางโภชนาการของคุณค่าทางโภชนาการของสาหร่ายผักกาดทะเลสดและอบแห้งมีโปรตีนร้อยละ 1.68 และ 10.51 ตามลำดับ ไขมันร้อยละ 0.08 และ 5.24 ตามลำดับ ความชื้นร้อยละ 80.72 และ 10.15 ตามลำดับ เถ้าร้อยละ 4.86 และ 50.24 ตามลำดับ และคาร์โบไฮเดรตร้อยละ 12.66 และ 23.86 ตามลำดับ ส่วนสาหร่ายพวงองุ่นสดและอบแห้งมีโปรตีนร้อยละ 0
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ลออปักษา, อารีรัตน์, วิมลมาศ ลิปิพันธ์, พิณทิพย์ พงษ์เพ็ชร та กิ่งฟ้า ทรัพย์มนชัย. การศึกษาสภาวะที่เหมาะสมของ semicarbazide ในการวิเคราะห์หาปริมาณยาปฏิชีวนะที่ผสมกับ streptomycin โดยวิธีทางจุลชีววิทยา : รายงานการวิจัย. จุฬาลงกรณ์มหาวิทยาลัย, 1987. https://doi.org/10.58837/chula.res.1987.13.

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ความเข้มข้นของ semicarbazide hydrochloride ต่ำสุดที่มีผลยับยั้งการเจริญของเชื้อทดสอบ Sarcina lutea ATCC 9341, Staphylococcus aureus ATCC 6538P และ Bacillus subtilis ATCC 6633 ที่ใช้ในการวิเคราะห์ยาปฏิชีวนะมีค่าเท่ากับ 6.0, 10.0 และ 4.0 มก/มล. ตามลำดับ ดังนั้นเพื่อป้องกันผลรบกวนในการวิเคราะห์ยาปฏิชีวนะต้องใช้ความเข้มข้นของ semicarbazide hydrochloride ต่ำกว่าค่านี้ streptomycin ในความเข้มข้น 100 ไมโครกรัม/มล. จะถูกยับยั้งฤทธิ์การฆ่าเชื้อทดสอบ B. subtilis ได้โดยใช้ semicarbazide hydrochloride ในความเข้มข้นต่ำสุด 1.5 มก./มล. ปริมาตรเท่ากัน บ่มที่อุณหภูมิ 30 องศาเซลเซียส นาน 180 นาที และความเข้มข้น
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