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      KCI등재 SCIE SCOPUS

      Mutation Breeding of High Avermectin B1a-producing Strain by the Combination of High Energy Carbon Heavy Ion Irradiation and Sodium Nitrite Mutagenesis Based on High Throughput Screening

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      https://www.riss.kr/link?id=A105096629

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      다국어 초록 (Multilingual Abstract)

      Microbial mutation breeding has been widely used because it is one of the most efficient and practical breeding strategies in the fermentation industry. However, different mutagenesis methods cause various degrees of DNA damage to individual microorga...

      Microbial mutation breeding has been widely used because it is one of the most efficient and practical breeding strategies in the fermentation industry. However, different mutagenesis methods cause various degrees of DNA damage to individual microorganisms, which lead to diverse characteristics of the mutants. In this study, the effects of four different mutagenesis methods on the mutation breeding of Streptomyces avermitilis for improving avermectin B1a production were investigated with an optimized liquid microtiter plate (MTP) culture system. First, an effective and feasible MTP system for mutant strain screening was evaluated through the optimization of the oxygen transfer rate and rapid titer determination. Then, high energy carbon heavy ion irradiation, diethyl sulfate, ultraviolet- (UV) irradiation combined with lithium chloride, and sodium nitrite were used as the mutagens for mutation breeding, respectively. Results showed that carbon heavy ion irradiation had the advantages of possessing the highest positive mutation rate and mean-production of positive mutant strains in the first generation. Sodium nitrite treatment resulted in mutant strains with better inherited stability than the other three methods. Through the combined treatment of carbon heavy ion irradiation and sodium nitrite treatment, an inheritstable mutant S. avermitilis S-233 with high avermectin B1a production was successfully obtained. The fermentation verification in a 500-liter (L) bioreactor demonstrated that the avermectin B1a produced by mutant S. avermitilis S-233 reached 6818 μg/mL, which was 23.8% higher than that of parent strains.

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      참고문헌 (Reference)

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      2 Krishna, S., "UV-induced mutagenesis in Escherichia coli SOS response: A quantitative model" 3 : 451-462, 2007

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      4 Wang, B., "The combined effects of UV-C radiation and H2O2on Microcystis aeruginosa, a bloom-forming cyanobacterium" 141 : 34-43, 2015

      5 Wang, X. B., "The atmospheric and roomtemperature plasma (ARTP) method on the dextranase activity and structure" 70 : 284-291, 2014

      6 Takahashi, Y., "Streptomyces avermectinius sp. nov., An avermectinproducing strain" 52 : 2163-2168, 2002

      7 Matuo, Y., "Specificity of mutations induced by carbon ions in budding yeast Saccharomyces cerevisiae" 602 : 7-13, 2006

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      9 Zhang, X., "Quantitative evaluation of DNA damage and mutation rate by atmospheric and room-temperature plasma (ARTP) and conventional mutagenesis" 99 : 5639-5646, 2015

      10 Kodym, A., "Physical and chemical mutagenesis" 236 : 189-203, 2003

      1 Miller, G. L., "Use of dinitrosalicylic acid reagent for determination of reducing sugar" 31 : 426-428, 1959

      2 Krishna, S., "UV-induced mutagenesis in Escherichia coli SOS response: A quantitative model" 3 : 451-462, 2007

      3 Gruijl, F. R. D., "UV-induced DNA damage, repair, mutations and oncogenic pathways in skin cancer" 63 : 19-27, 2001

      4 Wang, B., "The combined effects of UV-C radiation and H2O2on Microcystis aeruginosa, a bloom-forming cyanobacterium" 141 : 34-43, 2015

      5 Wang, X. B., "The atmospheric and roomtemperature plasma (ARTP) method on the dextranase activity and structure" 70 : 284-291, 2014

      6 Takahashi, Y., "Streptomyces avermectinius sp. nov., An avermectinproducing strain" 52 : 2163-2168, 2002

      7 Matuo, Y., "Specificity of mutations induced by carbon ions in budding yeast Saccharomyces cerevisiae" 602 : 7-13, 2006

      8 Zimmermann, H. F., "Rapid evaluation of oxygen and water permeation through microplate sealing tapes" 19 : 1061-1063, 2003

      9 Zhang, X., "Quantitative evaluation of DNA damage and mutation rate by atmospheric and room-temperature plasma (ARTP) and conventional mutagenesis" 99 : 5639-5646, 2015

      10 Kodym, A., "Physical and chemical mutagenesis" 236 : 189-203, 2003

      11 Ikeda, H., "Organization of the biosynthetic gene cluster for the polyketide anthelmintic macrolide avermectin in streptomyces avermitilis" 96 : 9509-9514, 1999

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      19 Deshpande, R. R., "Microplates with integrated oxygen sensing for medium optimization in animal cell culture" 46 : 1-8, 2004

      20 Ling Xiao, "Metabolic Engineering of Vitamin C Production in Arabidops" 한국생물공학회 20 (20): 677-684, 2015

      21 Li, S. W., "Induction of a high-yield lovastatin mutant of Aspergillus terreus by 12C6+ Heavy-ion beam irradiation and the influence of culture conditions on lovastatin production under submerged fermentation" 165 : 913-925, 2011

      22 Bhambure, R., "Highthroughput process development for biopharmaceutical drug substance" 29 : 127-135, 2011

      23 Lv, X.Y., "High-throughput system for screening of high L-lactic acid productivity strains in deep-well microtiter plates" 39 : 1737-1747, 2016

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      25 Sam Mathew, "High Throughput Screening Methods for ω-Transaminases" 한국생물공학회 18 (18): 1-7, 2013

      26 Ahmad, I., "Haploid culture and UV mutagenesis in rapid-cycling Brassica napus for the generation of resistance to chlorsulfuron and Alternaria Brassicicola" 67 : 521-525, 1991

      27 Zhang, Y. X., "Genome shuffling leads to rapid phenotypic improvement in bacteria" 415 : 644-646, 2002

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      29 Knight, V., "Diversifying microbial natural products for drug discovery" 62 : 446-458, 2003

      30 Petri, R., "Dealing with complexity:Evolutionary engineering and genome shuffling" 15 : 298-304, 2004

      31 Ikeda, H., "Complete genome sequence and comparative analysis of the industrial microorganism Streptomyces avermitilis" 21 : 526-531, 2003

      32 Zhou, X., "Comparison of the effects of high energy carbon heavy ion irradiation and Eucommia ulmoides Oliv. on biosynthesis butyric acid efficiency in Clostridium tyrobutyricum" 161 : 221-229, 2014

      33 Miao, L. L., "Combined mutation screening of high-activity Saccharomyces cerevisiae strain capable of producing metallothionein" 34 : 261-264, 2013

      34 Hermann, R., "Characterization of gas–liquid mass transfer phenomena in microtiter plates" 81 : 78-186, 2003

      35 Masao, S., "Biological effects of heavy-ion beam irradiation on cyclamen" 25 : 101-104, 2008

      36 Burg, R. W., "Avermectins, new family of potent anthelmintic agents:Producing organism and fermentation" 15 : 361-367, 1979

      37 Yoon, Y. J., "Avermectin: Biochemical and molecular basis of its biosynthesis and regulation" 63 : 626-634, 2004

      38 Ikeda, H., "Avermectin biosynthesis" 97 : 2591-2610, 1997

      39 Ikeda, H., "Avermectin biosynthesis" 97 : 2591-2609, 1997

      40 Joon-Hyoung Yong, "Alternative Production of Avermectin Components in Streptomycesavermitilis by Gene Replacement" 한국미생물학회 43 (43): 277-284, 2005

      41 Wen, Y., "A 24-microwell plate with improved mixing and scalable performance for high throughput cell cultures" 47 : 612-618, 2012

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      2023 평가예정 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
      2020-01-01 평가 등재학술지 유지 (해외등재 학술지 평가) KCI등재
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      2004-01-01 평가 등재학술지 선정 (등재후보2차) KCI등재
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      2001-07-01 평가 등재후보학술지 선정 (신규평가) KCI등재후보
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      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 1.14 0.13 0.75
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.57 0.46 0.239 0.02
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