• 제목/요약/키워드: nutrient cycle

검색결과 135건 처리시간 0.023초

Novel strategy for isolating suppressors of meiosis-deficient mutants and its application for isolating the bcy1 suppressor

  • Shin, Deug-Yong;Yun, Jean-Ho;Yoo, Hyang-Sook
    • Journal of Microbiology
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    • 제35권1호
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    • pp.61-65
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    • 1997
  • A novel strategy was developed for isolating suppressors from sporulation-deficient mutants. The mutation in the BCY1 gene, which codes for the regulatory subunit of cAMP-dependent protein kinase, when homozygous, results in diploids being meiosis and sporulation deficient. Two plasmids, YCp-MAT.alpha. and YEp-SPOT7-lacZ, were introduced into MAT.alpha. BCY1$\^$+/ or MAT.alpha. bcy1 haploid cells. The transformant of the BCY1$\^$+/ haploid cell produced .betha.-galactosidase under nutrient starvation, but the bcy1 transformant did not. Using this system, the mutagenesis experiment performed on the bcy1 transformant strain resulted in a number of sporulation mutants that produced .betha.-galactosidase under nutrient starvation. One complementation group, sob1, was identified from the isoalted suppressor mutants and characterized as a single recessive mutation by tetrad analysis. Genetic analysis revealed that the sob1 mutation suppressed the sporulation deficiency, the failure to arrest at the G1 phase of the cell cecle, and the sensitivity to heat or nitrogen starvation caused by the bcy1 mutation. However, the sob1 mutation did not suppress the sporulation deficiency of ime1 and of ime2 diploids. These results suggest that the sob1 mutation affects a gene which functions as a downstream regulator in both meiosis and cell cycle regulation.

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Behaviors of nitrogen, iron and sulfur compounds in contaminated marine sediment

  • Khirul, Md Akhte;Cho, Daechul;Kwon, Sung-Hyun
    • Environmental Engineering Research
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    • 제25권3호
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    • pp.274-280
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    • 2020
  • The marine sediment sustains from the anoxic condition due to increased nutrients of external sources. The nutrients are liberated from the sediment, which acts as an internal source. In hypoxic environments, anaerobic respiration results in the formation of several reduced matters, such as N2 and NH4+, N2O, Fe2+, H2S, etc. The experimental results have shown that nitrogen and sulfur played an influential, notable role in this biogeochemical cycle with expected chemical reductions and a 'diffusive' release of present nutrient components trapped in pore water inside sediment toward the bulk water. Nitate/ammonium, sulfate/sulfides, and ferrous/ferric irons are found to be the key players in these sediment-waters mutual interactions. Organonitrogen and nitrate in the sediment were likely to be converted to a form of ammonium. Reductive nitrogen is called dissimilatory nitrate reduction to ammonium and denitrification. The steady accumulation in the sediment and surplus increases in the overlying waters of ammonium strongly support this hypothesis as well as a diffusive action of the involved chemical species. Sulfate would serve as an essential electron acceptor so as to form acid volatile sulfides in present of Fe3+, which ended up as the Fe2+ positively with an aid of the residential microbial community.

시공간 동시분할 공정 시뮬레이션을 통한 질소 및 인 제거 최적화 방안 (Optimization of Nitrogen and Phosphorus Removal of Temporal and Spatial Isolation Process by Model Simulation System)

  • 유동진;장덕;신형수;박상민;홍기호;김수영;김명준
    • 한국물환경학회지
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    • 제23권2호
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    • pp.206-215
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    • 2007
  • The objective of this study was to establish the optimal system operating strategies for nitrogen and phosphorus removal through model simulation system built for advanced wastewater treatment targeting on simultaneous temporal/special phase isolation BNR process. The simulation system was built with unit process modules using object modules in GPS-X code. The system was well verified by field experiment data. Simulation study was carried out to investigate performance response to design and operation parameters, i.e. hydraulic retention time (HRT), solids retention time (SRT), and cycle time. The process operated at HRTs of 10~15 hours, longer SRTs, and cycle time of 2 hours showed optimal removal of nitrogen. The HRTs of 10~15 hours, SRTs of 20~25 days, and longer cycle time was optimal for phosphorus removal. Both simulation and field studies showed that optimal operating strategies satisfying both the best nitrogen and phosphorus removals include HRTs ranged 10~15 hours, SRTs ranged 20~25 days, and cycle times of 4~8 hours. The simulation system with modularization of generalized components in BNR processes was, therefore, believed to be a powerful tool for establishing optimal strategies of advanced wastewater treatment.

서해 근소만 갯벌에서 영양염 플럭스의 계절 변화 (Seasonal and Spatial Variations of Nutrient Fluxes in the Intertidal Flat of Keunso Bay, the Yellow Sea)

  • 김경희;김동선
    • Ocean and Polar Research
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    • 제30권3호
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    • pp.225-238
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    • 2008
  • In order to investigate the effects of intertidal sediments on the nutrient cycle in coastal environments, the benthic fluxes of ammonium, nitrate, nitrite, phosphate, and silicate at two stations on the intertidal flat of Keunso Bay were determined during each season. The efflux of ammonium was observed at S1 and resulted from the diffusion of remineralized ammonium and acceleration caused by the bioirrigation of macrofauna. The influx of ammonium at S2 was probably due to nitrification in the water column. The influx of nitrate was observed at both stations during all seasons, indicating that the nitrate in the pore water was removed by denitrification. Vigorous bioirrigation led to the efflux of dissolved inorganic nitrogen (DIN) at S1, whereas the influx of DIN at S2 was predominantly caused by denitrification. Contrary to the diffusive and bio-irrigated release of remineralized phosphate from the sediment at S1, the influx of phosphate was observed at S2, which may be attributable to adsorption onto iron oxides in the aerobic sediment layer. Silicate, which is produced by the dissolution of siliceous material, was mostly released from the sediment by molecular diffusion and bioirrigation. However, the influx of silicate was observed at S2 during spring and winter, which was ascribed to adsorption by particulate matter or assimilation by benthic microphytes. The annual fluxes of DIN were 328 mmol $m^{-2}yr^{-1}$ at S1 and -435 mmol $m^{-2}yr^{-1}$ at S2. The annual fluxes of phosphate were negative at both sites (-2.8 mmol $m^{-2}yr^{-1}$ at S1 and -28.9 mmol $m^{-2}yr^{-1}$ at S2), whereas the annual fluxes of silicate were positive at both sites (843 mmol $m^{-2}yr^{-1}$ at S1 and 243 mmol $m^{-2}yr^{-1}$ at S2).

Changes in Biochemical Composition of the Digestive Gland of the Female Purple Shell, Rapana venosa, in Relation to the Ovarian Developmental Phases

  • Chung, Ee-Yung;Kim, Sung-Yeon;Park, Kwan-Ha
    • 한국패류학회지
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    • 제17권1호
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    • pp.27-33
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    • 2001
  • The Ovarian developmental phases of the reproductive cycle of Rapana venosa can be classified into five successive stages by histological study: early active stage (September to February), late active stage (December to April), ripe stage (March to July), partially spawned stage (May to August), and recovery stage (June to September). To understand the characteristics of nutrient storage and utilization in the digestive gland cells with ovarian developmental phases, we examined the digestive gland - which is the major nutrient supply organ associated with ovarian development of the female purple shell - by biochemical methods. Total protein contents in the digestive gland tissues increased in March (late active stage) and reached the maximum in May (ripe and partially spawned stages), and then their levels sharply decreased in July (partially spawned and recovery stages). Total lipid contents in the digestive gland tissues reached the maximum in January (early active stage). Thereafter, their levels rapidly decreased from May (ripe and partially spawned stages) and reached a minimum in July (partially spawned and recovery stages). The total DNA contents did not significantly change regardless of the different developmental stages of the ovary. However, it was also found from biochemical analysis that changes in total RNA content follow the same seasonal cycling to protein. These results indicate that the digestive gland is an important energy storage and supply organ in purple shells, and that the nutrient contents of the digestive gland change in response to gonadal energy needs.

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금조산 분지의 왕미꾸리광이 ( Glyceria leptolepis Ohwi ) 개체군의 실소 및 인의 순환 (Nitrogen and Phosphorus Cycles in the Glyceria leptolepis Ohwi Population at the Mt. Geumoh Basin)

  • Lyu, Seung-Won;Seung-Dal Song
    • The Korean Journal of Ecology
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    • 제11권2호
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    • pp.55-64
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    • 1988
  • The seasonal pattern of pool size and withdrawal from senescing or stroage organ, and the annual magintude of internal-and plant-soil cycles for nitrogen and phosphorus in a Glyceria leptolepis Ohwi population in a marsh of the Mt. Geumoh were investigared. The population pool changed from initial size of 6.8 to the maximum of 16.1gN$m^{-2}$ for N and from 1.7 to 3.9g Pm$m^{-2}$ for P, maintaining far higher relative pool size during the first half of the growth period as compared with that for biomass. A sharp increase in N and P pool was noticed in early spring before the biomass growth was recognized, The major process supplying the demand for N and P changed as the growth progressed showing the order; absorption-withdrwal-absorption-with-drawal. The annual magnitude of plant-soil cycle for N and P was 18.0-19.1 and 2.9-3.3gm$m^{-2}$, accounting for 3 and 5% of each nutrient pool in 0-20 cm humus layer, respectively. The higher exent of internal cycle and the lower rate of annual turnover for P(1.08) as compared with those for N may suggest that this population conserves and reuses P more efficiently than N.

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Cancer Energy Metabolism: Shutting Power off Cancer Factory

  • Kim, Soo-Youl
    • Biomolecules & Therapeutics
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    • 제26권1호
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    • pp.39-44
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    • 2018
  • In 1923, Dr. Warburg had observed that tumors acidified the Ringer solution when 13 mM glucose was added, which was identified as being due to lactate. When glucose is the only source of nutrient, it can serve for both biosynthesis and energy production. However, a series of studies revealed that the cancer cell consumes glucose for biosynthesis through fermentation, not for energy supply, under physiological conditions. Recently, a new observation was made that there is a metabolic symbiosis in which glycolytic and oxidative tumor cells mutually regulate their energy metabolism. Hypoxic cancer cells use glucose for glycolytic metabolism and release lactate which is used by oxygenated cancer cells. This study challenged the Warburg effect, because Warburg claimed that fermentation by irreversible damaging of mitochondria is a fundamental cause of cancer. However, recent studies revealed that mitochondria in cancer cell show active function of oxidative phosphorylation although TCA cycle is stalled. It was also shown that blocking cytosolic NADH production by aldehyde dehydrogenase inhibition, combined with oxidative phosphorylation inhibition, resulted in up to 80% decrease of ATP production, which resulted in a significant regression of tumor growth in the NSCLC model. This suggests a new theory that NADH production in the cytosol plays a key role of ATP production through the mitochondrial electron transport chain in cancer cells, while NADH production is mostly occupied inside mitochondria in normal cells.

Silicon transporter genes of Fragilariopsis cylindrus (Bacillariophyceae) are differentially expressed during the progression of cell cycle synchronized by Si or light

  • Oh, Han Sang;Lee, Sung-eun;Han, Chae-seong;Kim, Joon;Nam, Onyou;Seo, Seungbeom;Chang, Kwang Suk;Jin, EonSeon;Hwang, Yong-sic
    • ALGAE
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    • 제33권2호
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    • pp.191-203
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    • 2018
  • Fragilariopsis cylindrus is one of the most successful psychrophiles in the Southern Ocean. To investigate the molecular mechanism of biomineralization in this species, we attempted to synchronize F. cylindrus growth, since new cell wall formation is tightly coupled to the cell division process. Nutrient limitation analysis showed that F. cylindrus cultures rapidly stopped growing when deprived of silicate or light, while growth continued to a certain extent in the absence of nitrate. Flow cytometry analysis indicated that deprivation of either silicate or light could effectively arrest the cell cycle of this diatom species at the G1 phase, suggesting that synchrony can be established using either factor. Fluorescence labeling of new cell walls was faintly detectable as early as approximately 6 h after silicon repletion or light irradiation, and labeling was markedly intensified by 18 h. It is revealed that the synthesis of girdle bands begins before valve synthesis in this species, with active valve synthesis occurring during the G2 / M phase. Expression profiling revealed that selective member(s) of the F. cylindrus SIT genes (FcSIT) respond to silicate and light, with a different set of genes being responsive to each factor. The Si / light double depletion experiments demonstrated that expression of one FcSIT gene is possibly correlated to transition to G2 / M phase of the cell cycle, when the valve is actively formed.

담수 퇴적물의 영양염 용출 측정 방법에 관한 고찰 (A Study on the Measurement Method for Benthic Nutrient Flux in Freshwater Sediments)

  • 김경희;김성한;진달래;허인애;현정호
    • 대한환경공학회지
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    • 제39권5호
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    • pp.288-302
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    • 2017
  • 퇴적물이 수층의 영양염 분포에 미치는 영향을 평가하기 위해서 퇴적물의 용출률을 정확하게 측정할 필요가 있다. 이에 본 연구에서 퇴적물 용출률 측정 방법 중 퇴적물 코어 배양법을 대상으로 용출률의 측정 조건과 실험 절차를 제시하였다. 낙동강 수계 중류에서 2015년 7월에 표층이 교란되지 않은 퇴적물 코어 시료를 채취하여, pre-incubation 시간(6, 12, 24시간), 초기 산소농도(포화도 90, 70 50%), 확산경계층의 두께(0, 0.6-0.8, 1.2-1.4 mm), 배양 온도(10, 17, 20, $25^{\circ}C$) 등을 여러 가지 조건으로 조성하여 측정한 영양염 용출률의 결과를 그 바탕으로 하였다. 네 가지 주요 환경 조건이 달라지면, 안정화 시간 동안 유기물 분해 및 산화 과정에 의한 화학 조성 변화, 퇴적층의 산화-환원 환경 변화에 따른 흡착 및 탈착, 퇴적물-수층 경계면에서의 수리역학적 상황 변동에 의한 물질 교환 증감, 퇴적물 내 미생물의 활성 증가 등을 야기하여 퇴적물의 영양염용출률에 영향을 미친다. 따라서, 퇴적물 코어 배양법으로 실제 현장값과 유사한 결과를 생산하기 위해서는 현장 심수층의 수온 및 용존산소 농도, 유속을 자연 상태와 가깝게 재현하고 퇴적물 시료 채집 후 되도록 빠른 시간 안에 배양 실험을 수행해야 한다. 두 개의 반복구에 대하여 퇴적물 코어 배양법으로 영양염 용출률을 측정하였을 때 대부분의 실험 조건에서 상대백분율차가 20% 이하였다. 측정 조건과 절차를 엄밀히 준수하여 실험하였을 때 정밀도를 확보할 수 있는 것으로 사료되며, 향후 측정 결과의 정확도를 확인하기 위하여 현장 측정법과 비교할 예정이다.

OSA 공정을 이용한 하수슬러지 감량화 및 질소제거 가능성 평가 (Estimation of Sludge Reduction and Nitrogen Removal Possibility using OSA Process)

  • 주재영;윤수철;남덕현;박철휘
    • 상하수도학회지
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    • 제22권5호
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    • pp.497-503
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    • 2008
  • The Oxic-Settling-Anaerobic(OSA) process is a modified activated sludge processes for sludge reduction. It is evaluated that the sludge production in OSA process can decrease to 88% because of biomass decay and kinetic parameter($Y_H$ 0.237mgVSS/mgCOD, $b_H$ $0.195d^{-1}$) in anaerobic reactor, when compared with CAS process. However, it has problems caused by sludge reduction such as increase of nutrient loading. In case that the anoxic condition through the introduction of the intermittent aeration for the enhancement of nitrogen removal ability build up and enough rbCOD is suppled, maximum 88% of nitrogen is removed in the OSA process. If the OSA process optimizing the intermittent aeration cycle is applied to the separate sewage system with high rbCOD fraction, it can be converted to advanced process in terms of the sludge reduction and nitrogen removal, simultaneously.