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      Cry 독소단백질 혼합과 면역억제제 첨가를 통한 Bacillus thuringiensis 살충제 적용범위 및 방제력 증진 기술

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      https://www.riss.kr/link?id=A100118512

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      다국어 초록 (Multilingual Abstract)

      An entomopathogenic bacterium, Bacillus thuringiensis (Bt), can sporulate along with production of insecticidal Cry toxins. Bt Cry toxins exhibit relatively narrow spectrum to target insects due to their specific interactions with midgut receptors. Th...

      An entomopathogenic bacterium, Bacillus thuringiensis (Bt), can sporulate along with production of insecticidal Cry toxins. Bt Cry toxins exhibit relatively narrow spectrum to target insects due to their specific interactions with midgut receptors. This study designed several strategies to enhance Bt efficacy in target insect spectrum and insecticidal activity. Four Cry toxins were purified from four different Bt strains and showed relatively narrow target insect spectrum. However, the Cry mixtures significantly expanded their target insect spectra. The additional effect of baculovirus to Cry toxin was tested with recombinant baculoviruses expressing Cry1Ac or Cry1Ca. However, the baculovirus was little effective to expand target insect spectrum. Bacterial culture broth of Xenorhabdus nematophila (Xn) significantly suppressed insect cellular immune response and increased Cry toxicity. The addition of Xn culture broth to Cry mixture significantly enhanced Bt efficacy in target insect spectrum and insecticidal activity.

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      참고문헌 (Reference)

      1 김규순, "배추좀나방에 대한 프루텔고치벌과 미생물농약의 통합생물방제" 한국응용곤충학회 52 (52): 35-43, 2013

      2 Park, Y., "Xenorhabdus nematophilus inhibits p-bromophenacyl bromide (BPB)-sensitive PLA2 of Spodoptera exigua" 54 : 143-142, 2003

      3 Kim, Y., "Two groups of entomopathogenic bacteria, Photorhabdus and Xenorhabdus, share an inhibitory action against phospholipase A2 to induce host immunodepression" 89 : 258-264, 2005

      4 Contreras, E., "Tribolium castaneum apolipophorin-III acts as an immune response protein against Bacillus thuringiensis Cry3Ba toxic activity" 113 : 209-213, 2013

      5 Park, Y., "The bacterium Xenorhabdus nematophila inhibits phospholipase A2 from insect, prokaryote, and vertebrate sources" 91 : 371-373, 2004

      6 Park, H. W., "Synthesis of additional endotoxins in Bacillus thuringiensis subsp. morrisoni PG-14 and Bacillus thuringiensis subsp. jegathesan significantly improves their mosquitocidal efficacy" 42 : 337-341, 2005

      7 Jung, S., "Synergistic effect of entomopathogenic bacteria (Xenorhabdus sp. and Photorhabdus temperata ssp. temperata) on the pathogenicity of Bacillus thuringiensis ssp. aizawai against Spodoptera exigua (Lepidoptera: Noctuidae)" 35 : 1584-1589, 2006

      8 Gho, H. K., "Simple mass-rearing of beet armyworm, Spodoptera exigua (Hbner) (Lepidoptera: Noctuidae), on an artificial diet" 29 : 180-183, 1991

      9 엄성현, "Sequential Immunosuppressive Activities of Bacterial Secondary Metabolites from the Entomopahogenic Bacterium Xenorhabdus nematophila" 한국미생물학회 52 (52): 161-168, 2014

      10 SAS Institute, Inc, "SAS/STAT user's guide, Release 6.03" 1989

      1 김규순, "배추좀나방에 대한 프루텔고치벌과 미생물농약의 통합생물방제" 한국응용곤충학회 52 (52): 35-43, 2013

      2 Park, Y., "Xenorhabdus nematophilus inhibits p-bromophenacyl bromide (BPB)-sensitive PLA2 of Spodoptera exigua" 54 : 143-142, 2003

      3 Kim, Y., "Two groups of entomopathogenic bacteria, Photorhabdus and Xenorhabdus, share an inhibitory action against phospholipase A2 to induce host immunodepression" 89 : 258-264, 2005

      4 Contreras, E., "Tribolium castaneum apolipophorin-III acts as an immune response protein against Bacillus thuringiensis Cry3Ba toxic activity" 113 : 209-213, 2013

      5 Park, Y., "The bacterium Xenorhabdus nematophila inhibits phospholipase A2 from insect, prokaryote, and vertebrate sources" 91 : 371-373, 2004

      6 Park, H. W., "Synthesis of additional endotoxins in Bacillus thuringiensis subsp. morrisoni PG-14 and Bacillus thuringiensis subsp. jegathesan significantly improves their mosquitocidal efficacy" 42 : 337-341, 2005

      7 Jung, S., "Synergistic effect of entomopathogenic bacteria (Xenorhabdus sp. and Photorhabdus temperata ssp. temperata) on the pathogenicity of Bacillus thuringiensis ssp. aizawai against Spodoptera exigua (Lepidoptera: Noctuidae)" 35 : 1584-1589, 2006

      8 Gho, H. K., "Simple mass-rearing of beet armyworm, Spodoptera exigua (Hbner) (Lepidoptera: Noctuidae), on an artificial diet" 29 : 180-183, 1991

      9 엄성현, "Sequential Immunosuppressive Activities of Bacterial Secondary Metabolites from the Entomopahogenic Bacterium Xenorhabdus nematophila" 한국미생물학회 52 (52): 161-168, 2014

      10 SAS Institute, Inc, "SAS/STAT user's guide, Release 6.03" 1989

      11 Crickmore, N., "Revision of the nomenclature for the Bacillus thuringiensis pesticidal crystal proteins" 62 : 807-813, 1998

      12 BenFarhat, D., "Response of larval Ephestia kueniella (Lepidoptera: Pyralida) to individual Bacillus thuringiensis kurstaki toxins mixed with Xenorhabdus nematophila" 114 : 71-75, 2013

      13 Seo, S., "Phospholipase A2 inhibitors synthesized by two entomopathogenic bacteria, Xenorhabdus nematophila and Photorhabdus temperata subsp. temperata" 78 : 3816-3823, 2012

      14 Brownbridge, M., "New Bacillus thuringiensis strains isolated in Israel are highly toxic to mosquito larvae" 48 : 216-222, 1986

      15 Wirth, M. C., "Mtx toxins synergize Bacillus spaericus and Cry11Aa against susceptible and insecticide-resistant Culex quinquefasciatus larvae" 73 : 6066-6071, 2007

      16 Akhurst, R. J., "Morphological and functional dimorphism in Xenorhabdus spp., bacteria symbiotically associated with the insect pathogenic nematodes Neoaplectana and Heterorhabditis" 121 : 303-309, 1980

      17 Broderick, N. A., "Midgut bacteria required for Bacillus thuringiensis insecticidal activity" 103 : 15196-15199, 2006

      18 Beckage, N. E., "Insect immunology" Academic Press 348-, 2008

      19 Rahman, M. M., "Induction and transmission of Bacillus thuringiensis tolerance in the flour moth Ephestia kuehniella" 101 : 2696-2699, 2004

      20 Park, J. W., "In Insect molecular biology and biochemistry" Academic Press 480-512, 2012

      21 Adamo, S. A., "In Insect immunology" Academic Press 129-149, 2008

      22 Bravo, A., "In Comprehensive molecular insect science" Elsevier 175-206, 2005

      23 Kwon, S., "Immunosuppressive action of pyriproxyfen, a juvenile hormone analog, enhances pathogenicity of Bacillus thuringiensis subsp. kurstaki against diamondback moth, Plutella xylostella (Lepidoptera: Yponomeutidae)." 42 : 72-76, 2007

      24 de Magd, R. A., "How Bacillus thuringiensis has evolved specific toxins to colonize the insect world" 17 : 193-199, 2001

      25 Dong, F., "Fusing the vegetative insecticidal protein Vip3Aa7 and the N terminus of Cry9Ca improves toxicity against Plutella xylostella larvae" 96 : 921-929, 2012

      26 Bravo, A., "Evolution of Bacillus thuringiensis Cry toxins insecticidal activity" 6 : 17-26, 2012

      27 Kaya, H. K., "Entomopathogenic nematodes" 38 : 181-206, 1993

      28 Stanley, D., "Eicosanoid signaling in insects; from discovery to plant protection" 33 : 20-63, 2014

      29 Vojtech, E., "Effects of Bt maize on the herbivore Spodoptera littoralis (Lepidoptera: Noctuidae) and the parasitoid Cotesia marginiventris (Hymenoptera: Braconidae)" 14 : 133-144, 2005

      30 Grizanova, E. V., "Contributions of cellular and humoral immunity of Galleria mellonella larvae in defence against oral infection by Bacillus thuringiensis" 119 : 40-46, 2014

      31 Washburn, J. O., "Comparative pathogenesis of Helicoverpa zea S nucleopolyhedrovirus in noctuid larvae" 82 : 1777-1784, 2001

      32 Washburn, J. O., "Comparative pathogenesis of Autographa californica M nuclear polyhedrosis virus in larvae of Trichoplusia ni and Heliothis virescens" 209 : 561-568, 1995

      33 Broderick, N. A., "Chemical modulators of the innate immune response alter gypsi moth larval susceptibility to Bacillus thuringiensis" 10 : 129-, 2010

      34 Gillespie, J. P., "Biological mediators of insect immunity" 42 : 611-643, 1997

      35 Sony Shrestha, "Biochemical Characteristics of Immune-Associated Phospholipase A2 and Its Inhibition by an Entomopathogenic Bacterium, Xenorhabdus nematophila" 한국미생물학회 47 (47): 774-782, 2009

      36 Bravo, A., "Bacillus thuringiensis: a story of a successful bioinsecticide" 41 : 423-431, 2011

      37 Crickmore, N., "Bacillus thuringiensis toxin nomenclature"

      38 ROH, JONG YUL,, "Bacillus thuringiensis as a Specific, Safe, and Effective Tool for Insect Pest Control" 한국미생물·생명공학회 17 (17): 547-559, 2007

      39 Hwang, J., "An entomopathogenic bacterium, Xenorhabdus nematophila, suppresses expression of antimicrobial peptides controlled by Toll and IMD pathways by blocking eicosanoid biosynthesis" 83 : 151-169, 2013

      40 Park, Y., "An entomopathogenic bacterium, Xenorhabdus nematophila, inhibits hemocytic phospholipase A2 (PLA2) in tobacco hornworm, Manduca sexta" 86 : 65-71, 2004

      41 Singh, G., "Acute, sublethal and combination effects of azarirachtin and Bacillus thuringiensis toxins on Helicoverpa armigera (Lepidoptera: Noctuidae) larvae" 97 : 351-357, 2007

      42 Kirkpatrick, B. A., "AcMNPV pathogenesis and developmental resistance in fifth instar Heliothis virescens" 72 : 63-72, 1998

      43 Zhang, X., "A mechanism of cell death involving an adenylyl cyclase/PKA signaling pathway is induced by the Cry1Ab toxin of Bacillus thuringiensis" 103 : 9897-9902, 2006

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