• 제목/요약/키워드: TNX

검색결과 3건 처리시간 0.015초

용인 함박산 토양에서 분리한 Paenibacillus sp. HX-1의 동정과 endo-${\beta}$-1,4-xylanase 생산 증가를 위한 배지최적화 (Enhanced Production of Endo-${\beta}$-1,4-xylanase from Paenibacillus sp. HX-1 Newly Isolated from Soil Samples at Hambak Mountain in Yongin city, Korea)

  • 지원재;김종희;홍순광
    • 한국미생물·생명공학회지
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    • 제41권3호
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    • pp.263-271
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    • 2013
  • 균주 HX-1은 토양샘플로부터 분리된 자일라네이즈 생산 미생물로서 16S rRNA 유전자 염기서열 분석과 이를 이용한 phylogenetic tree 제작을 통하여 Paenibacillus 속의 한 종으로 동정되었다. 그러나 HX-1 균주가 계통발생적 연관관계가 높은 기존에 알려진 표준군주들과는 상당히 다른 생리적-생화학적 특성을 나타내는 사실로부터 HX-1이 신아종일 것으로 판단하고, Paenibacillus sp. HX-1으로 명명하였다. 균주 HX-1로부터의 자일라네이즈 생산을 증가시키는 배지조건을 탐색하여 최적화된 TNX 배지(1% bacto tryptone, 0.7% 자일란, 1% NaCl; pH 7.0)에서 약 7.4배에 달하는 자일라네이즈 생산량의 증가가 가능하였다. 균주 HX-1이 분비하는 자일라네이즈는 pH 7.0과 $45^{\circ}C$에서 최적의 효소활성을 나타냈으며, beechwood 자일란을 기질로 하는 효소반응으로부터 xylobiose를 최종산물로 생산하는 endo-${\beta}$-1,4-xylanase임을 확인하였다. 본 연구로부터 동정된 Paenibacillus sp. HX-1은 다양한 산업에 응용이 가능한 새로운 자일라네이즈를 제공할 수 있는 중요한 균으로 사료된다.

물억새를 식재한 플러그 흐름 습지에서의 RDX 제거동역학 (Removal of RDX using Lab-scale Plug Flow Constructed Wetlands Planted with Miscanthus sacchariflorus (Maxim.) Benth)

  • 이아름;김범준;박지은;배범한
    • 한국지하수토양환경학회지:지하수토양환경
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    • 제20권6호
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    • pp.85-94
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    • 2015
  • RDX (hexahydro-1,3,5-trinitro-1,3,5-triazine) is the most important explosive contaminant, both in concentration and in frequency, at military shooting ranges in which green technologies such as phytoremediation or constructed wetlands are the best option for mitigation of explosive compounds discharge to the environment. A study was conducted with two identical lab-scale plug flow constructed wetlands planted with Amur silver grass to treat water artificially contaminated with 40 mg/L of toxic explosive compound, RDX. The reactor was inoculated with or without RDX degrading mixed culture to evaluate plant-microorganism interactions in RDX removal, transformation products distribution, and kinetic constants. RDX and its metabolites in water, plant, and sediment were analyzed by HPLC to determine mass balance and kinetic constants. After 30 days of operation, the reactor reached steady-state at which more than 99% of RDX was removed with or without the mixed culture inoculation. The major transformation product was TNX (Trinitroso-RDX) that comprised approximately 50% in the mass balance of both reactors. It was also the major compound in the plant root and shoot system. Acute toxicity analysis of the water samples showed more than 30% of toxicity reduction in the effluent than that of influent containing 40 mg/L of RDX. In the Amur silver grass mesocosm seeded with the mixed culture, the specific RDX removal rate, that is 1st order removal rate normalized to plant fresh weight, was estimated to be 0.84 kg−1 day−1 which is 16.7% higher than that in the planted only mesocosm. Therefore, the results of this study proved that Amur silver grass is an effective plant for RDX removal in constructed wetlands and the efficiency can be increased even more when applied with RDX degrading microbial consortia.

생물환원 철광물촉매에 의한 지하수 내 RDX 환원:군사격장 현장적용 실증결과 (Reduction of RDX in Ground Water by Bio-Regenerated Iron Mineral: Results of Field Verification Test at a Miliary Shooting Range)

  • 공효영;이광표;이종열;경대승;이우진;배범한
    • 한국지하수토양환경학회지:지하수토양환경
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    • 제20권6호
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    • pp.62-72
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    • 2015
  • This study investigates the in-situ implementation of bio-regenerated iron mineral catalyst to remove explosive compounds in ground water at a military shooting range in operation. A bio-regenerated iron mineral catalyst was synthesized using lepidocrocite (iron-bearing soil mineral), iron-reducing bacteria Shewanella putrefaciens CN32, and electron mediator (riboflavin) in the culture medium. This catalyst was then injected periodically in the ground to build a redox active zone acting like permeable reactive barrier through injection wells constructed at a live fire military shooting range. Ground water and core soils were sampled periodically for analysis of explosive compounds, mainly RDX and its metabolites, along with toxicity analysis and REDOX potential measurement. Results suggested that a redox active zone was formed in the subsurface in which contaminated ground water flows through. Concentration of RDX as well as toxicity (% inhibition) of ground water decreased in the downstream compared to those in the upstream while concentration of RDX reduction products increased in the downstream.