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      KCI등재 SCIE SCOPUS

      Biological Potential of Bioorganic Fertilizer Fortified with Bacterial Antagonist for the Control of Tomato Bacterial Wilt and the Promotion of Crop Yields = Biological Potential of Bioorganic Fertilizer Fortified with Bacterial Antagonist for the Control of Tomato Bacterial Wilt and the Promotion of Crop Yields

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      https://www.riss.kr/link?id=A102166763

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      다국어 초록 (Multilingual Abstract)

      The application of Bacillus sp. in the biological control of plant soilborne diseases has been shown to be an environmentally friendly alternative to the use of chemical fungicides. In this study, the effects of bioorganic fertilizer (BOF) fortified w...

      The application of Bacillus sp. in the biological control of plant soilborne diseases has been shown to be an environmentally friendly alternative to the use of chemical fungicides. In this study, the effects of bioorganic fertilizer (BOF) fortified with Bacillus amyloliquefaciens SQY 162 on the suppression of tomato bacterial wilt were investigated in pot experiments. The disease incidence of tomato wilt after the application of BOF was 65.18% and 41.62% lower at 10 and 20 days after transplantation, respectively, than in the control condition. BOF also promoted the plant growth. The SQY 162 populations efficiently colonized the tomato rhizosphere, which directly suppressed the number of Ralstonia solanacearum in the tomato rhizosphere soil. In the presence of BOF, the activities of defense-related enzymes in tomato were lower than in the presence of the control treatment, but the expression levels of the defense-related genes of the plants in the salicylic acid and jasmonic acid pathways were enhanced. It was also found that strain SQY 162 could secrete antibiotic surfactin, but not volatile organic compounds, to suppress Ralstonia. The strain could also produce plant growth promotion compounds such as siderophores and indole-3-acetic acid. Thus, owing to its innate multiple-functional traits and its broad biocontrol activities, we found that this antagonistic strain isolated from the tobacco rhizosphere could establish itself successfully in the tomato rhizosphere to control soilborne diseases.

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      참고문헌 (Reference)

      1 Ahn P, "Vegetative compatibility groups and pathogenicity among isolates of Fusarium oxysporum f. sp. cucumerinum" 82 : 244-246, 1998

      2 Alexander D, "Use of chrome azurol S reagents to evaluate siderophore production by rhizosphere bacteria" 12 : 39-45, 1991

      3 Thaler JS, "The role of the jasmonate response in plant susceptibility to diverse pathogens with a range of lifestyles" 135 : 530-538, 2004

      4 Niu DD, "The plant growth-promoting rhizobacterium Bacillus cereus AR156 induces systemic resistance in Arabidopsis thaliana by simultaneously activating salicylate and jasmonate/ethylene-dependent signaling pathways" 24 : 533-542, 2011

      5 Wu HS, "Suppression of Fusarium wilt of watermelon by a bioorganic fertilizer containing combinations of antagonistic microorganisms" 54 : 287-300, 2009

      6 Elphinstone J, "Sensitivity of different methods for the detection of Ralstonia solanacearum in potato tuber extracts" 26 : 663-678, 1996

      7 Milling A, "Ralstonia solanacearum extracellular polysaccharide is a specific elicitor of defense responses in wilt-resistant tomato plants" 6 : e15853-, 2011

      8 Pérez-García A, "Plant protection and growth stimulation by microorganisms:biotechnological applications of Bacilli in agriculture" 22 : 187-193, 2011

      9 Gamliel A, "Non-chemical approach to soilborne pest management - organic amendments" 19 : 847-853, 2000

      10 Scherf JM, "Moderate temperature fluctuations rapidly reduce the viability of Ralstonia solanacearum race 3, biovar 2, in infected geranium, tomato, and potato plants" 76 : 7061-7067, 2010

      1 Ahn P, "Vegetative compatibility groups and pathogenicity among isolates of Fusarium oxysporum f. sp. cucumerinum" 82 : 244-246, 1998

      2 Alexander D, "Use of chrome azurol S reagents to evaluate siderophore production by rhizosphere bacteria" 12 : 39-45, 1991

      3 Thaler JS, "The role of the jasmonate response in plant susceptibility to diverse pathogens with a range of lifestyles" 135 : 530-538, 2004

      4 Niu DD, "The plant growth-promoting rhizobacterium Bacillus cereus AR156 induces systemic resistance in Arabidopsis thaliana by simultaneously activating salicylate and jasmonate/ethylene-dependent signaling pathways" 24 : 533-542, 2011

      5 Wu HS, "Suppression of Fusarium wilt of watermelon by a bioorganic fertilizer containing combinations of antagonistic microorganisms" 54 : 287-300, 2009

      6 Elphinstone J, "Sensitivity of different methods for the detection of Ralstonia solanacearum in potato tuber extracts" 26 : 663-678, 1996

      7 Milling A, "Ralstonia solanacearum extracellular polysaccharide is a specific elicitor of defense responses in wilt-resistant tomato plants" 6 : e15853-, 2011

      8 Pérez-García A, "Plant protection and growth stimulation by microorganisms:biotechnological applications of Bacilli in agriculture" 22 : 187-193, 2011

      9 Gamliel A, "Non-chemical approach to soilborne pest management - organic amendments" 19 : 847-853, 2000

      10 Scherf JM, "Moderate temperature fluctuations rapidly reduce the viability of Ralstonia solanacearum race 3, biovar 2, in infected geranium, tomato, and potato plants" 76 : 7061-7067, 2010

      11 Hendrick CA, "Lipopolysaccharide-defective mutants of the wilt pathogen Pseudomonas solanacearum" 48 : 94-101, 1984

      12 García-Limones C, "Induction of an antioxidant enzyme system and other oxidative stress markers associated with compatible and incompatible interactions between chickpea (Cicer arietinum L.) and Fusarium oxysporum f. sp. ciceris" 61 : 325-337, 2002

      13 Kloepper JW, "Induced systemic resistance and promotion of plant growth by Bacillus spp" 94 : 1259-1266, 2004

      14 King SR, "Grafting for disease resistance" 43 : 1673-1676, 2008

      15 Chen X, "Genome analysis of Bacillus amyloliquefaciens FZB42 reveals its potential for biocontrol of plant pathogens" 140 : 27-37, 2009

      16 Yuan S, "Evaluation of Bacillus-fortified organic fertilizer for controlling tobacco bacterial wilt in greenhouse and field experiments" 75 : 86-94, 2014

      17 Weng J, "Enhanced root colonization and biocontrol activity of Bacillus amyloliquefaciens SQR9 by abrB gene disruption" 97 : 8823-8830, 2013

      18 Wu K, "Effects of bio-organic fertilizer plus soil amendment on the control of tobacco bacterial wilt and composition of soil bacterial communities" 50 : 961-971, 2014

      19 Chowdhury SP, "Effects of Bacillus amyloliquefaciens FZB42 on lettuce growth and health under pathogen pressure and its impact on the rhizosphere bacterial community" 8 : e68818-, 2013

      20 Chen C, "Defense enzymes induced in cucumber roots by treatment with plant growth-promoting rhizobacteria (PGPR) and Pythium aphanidermatum" 56 : 13-23, 2000

      21 Chen XH, "Comparative analysis of the complete genome sequence of the plant growth-promoting bacterium Bacillus amyloliquefaciens FZB42" 25 : 1007-1014, 2007

      22 Fravel D., "Commercialization and implementation of biocontrol 1" 43 : 337-359, 2005

      23 Smalla K, "Bulk and rhizosphere soil bacterial communities studied by denaturing gradient gel electrophoresis: plantdependent enrichment and seasonal shifts revealed" 67 : 4742-4751, 2001

      24 Hayward A., "Biology and epidemiology of bacterial wilt caused by Pseudomonas solanacearum" 29 : 65-87, 1991

      25 Guo JH, "Biocontrol of tomato wilt by plant growthpromoting rhizobacteria" 29 : 66-72, 2004

      26 Zhao Q, "Biocontrol of Fusarium wilt disease for Cucumis melo melon using bio-organic fertilizer" 47 : 67-75, 2011

      27 Bais HP, "Biocontrol of Bacillus subtilis against infection of Arabidopsis roots by Pseudomonas syringae is facilitated by biofilm formation and surfactin production" 134 : 307-319, 2004

      28 Adam M, "Bacterial antagonists of fungal pathogens also control root-knot nematodes by induced systemic resistance of tomato plants" 9 : e90402-, 2014

      29 Karadeniz A, "Auxin, gibberellin, cytokinin and abscisic acid production in some bacteria" 22 : 1061-1064, 2006

      30 Tan S, "Antagonistic bacterium Bacillus amyloliquefaciens induces resistance and controls the bacterial wilt of tomato" 69 : 1245-1252, 2013

      31 Livark K, "Analysis of relative gene expression data using real-time quantitative PCR and the 2 (-delta delta C (T)) method" 25 : 402-408, 2001

      32 Morsy MR, "Alteration of oxidative and carbohydrate metabolism under abiotic stress in two rice (Oryza sativa L.) genotypes contrasting in chilling tolerance" 164 : 157-167, 2007

      33 Zhang N, "A new bioorganic fertilizer can effectively control banana wilt by strong colonization with Bacillus subtilis N11" 344 : 87-97, 2011

      34 Glickmann E, "A critical examination of the specificity of the Salkowski reagent for indolic compounds produced by phytopathogenic bacteria" 61 : 793-796, 1995

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      연월일 이력구분 이력상세 등재구분
      2023 평가예정 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
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      2006-04-04 학술지명변경 한글명 : -> Journal of Microbiology and Biotechnology KCI등재
      2006-03-30 학술지등록 한글명 :
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      2004-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2001-07-01 평가 등재학술지 선정 (등재후보2차) KCI등재
      1999-01-01 평가 등재후보학술지 선정 (신규평가) KCI등재후보
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      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 1.59 0.33 1.17
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.91 0.78 0.472 0.08
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