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      토양 내 질소 증가가 미생물 활성 및 식물체의 분해에 미치는 영향 = Effects of Soil Nitrogen Addition on Microbial Activities and Litter Decomposition

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      https://www.riss.kr/link?id=A99725788

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      다국어 초록 (Multilingual Abstract)

      The present study investigates the effects of elevated soil nitrogen on growth and decomposition of Oryza sativa shoots. The plants were cultivated in greenhouse until leaf senescence and the total biomass of the plant increased 1.9 times at nitrogen ...

      The present study investigates the effects of elevated soil nitrogen on growth and decomposition of Oryza sativa shoots. The plants were cultivated in greenhouse until leaf senescence and the total biomass of the plant increased 1.9 times at nitrogen addition plot. Total C and N content in shoot increased; however, lignin, C/N, and lignin/N levels decreased in the N-treated soil. The shoot litters collected from the control and N-treated soil were tested for decay and microbial biomass, CO2 evolution, and enzyme activities during decomposition on the control and N-treated soil at 25°C microcosm. The remaining mass of the shoot litter was approximately 6% higher in the litter collected from the control soil (53.0%) than the litter collected from high N-treated soil (47.1%). However, the high N-containing litter exhibited faster decay in the control soil than in the N-treated soil. The litter containing high N, low C/N, and low lignin/N showed a higher decomposition rate than that of low quality litter. The N-addition showed decreased microbial biomass C and dehydrogenase activity in soil; however, it exhibited high microbial biomass N and urease activity in soil. When the high N-containing litter decays on the N-treated soil, the microbial biomass C increased rapidly at the initial phase of decomposition and decreased thereafter, and dehydrogenase activity was less that of other treatment; however, there was no effect on the microbial biomass N. The urease in the decomposing litter was highest during the early decomposition stage and dramatically decreased thereafter. The present findings suggested that the N-addition increased N content in litter, but inhibited the decomposition process of above-ground biomass in terrestrial ecosystems.

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      참고문헌 (Reference)

      1 류새한, "안동 사문암지대의 중금속 함유 낙엽의 분해" 한국환경생태학회 24 (24): 426-435, 2010

      2 류새한, "사문암지대의 중금속 함유 낙엽의 분해에 관한 연구 I. Microcosm 실험" 한국환경생물학회 27 (27): 353-362, 2009

      3 원항연, "돈분퇴비의 시용이 토양의 미생물체량 및 효소활성에 미치는 영향" 한국토양비료학회 37 (37): 109-115, 2004

      4 신진호, "대형 수생 식물의 초기 분해에 관한 연구" 한국생태학회 29 (29): 565-572, 2006

      5 김준호, "대기 산성 강하물: 삼림의 질소 포화" 한국생태학회 29 (29): 305-321, 2006

      6 심재국, "낙엽분해동안 미생물 활성에 미치는 중금속의 영향 추정" 한국환경생태학회 25 (25): 887-892, 2011

      7 Saiya-Cork, K.R., "he effects of long term nitrogen deposition on extracellular enzyme activity in an Acer saccharum forest soil" 34 : 1309-1315, 2002

      8 Glatzel, G., "The nitrogen status of Austrian forest ecosystems as influenced by atmospheric deposition, biomass harvesting and lateral organomass exchange" 128 (128): 67-74, 1990

      9 Matson, P.A., "The globalization of nitrogen deposition: consequences for terrestrial ecosystems" 31 (31): 113-119, 2002

      10 Fog, K., "The effect of added nitrogen on the rate of decomposition of organic matter" 63 (63): 433-462, 1988

      1 류새한, "안동 사문암지대의 중금속 함유 낙엽의 분해" 한국환경생태학회 24 (24): 426-435, 2010

      2 류새한, "사문암지대의 중금속 함유 낙엽의 분해에 관한 연구 I. Microcosm 실험" 한국환경생물학회 27 (27): 353-362, 2009

      3 원항연, "돈분퇴비의 시용이 토양의 미생물체량 및 효소활성에 미치는 영향" 한국토양비료학회 37 (37): 109-115, 2004

      4 신진호, "대형 수생 식물의 초기 분해에 관한 연구" 한국생태학회 29 (29): 565-572, 2006

      5 김준호, "대기 산성 강하물: 삼림의 질소 포화" 한국생태학회 29 (29): 305-321, 2006

      6 심재국, "낙엽분해동안 미생물 활성에 미치는 중금속의 영향 추정" 한국환경생태학회 25 (25): 887-892, 2011

      7 Saiya-Cork, K.R., "he effects of long term nitrogen deposition on extracellular enzyme activity in an Acer saccharum forest soil" 34 : 1309-1315, 2002

      8 Glatzel, G., "The nitrogen status of Austrian forest ecosystems as influenced by atmospheric deposition, biomass harvesting and lateral organomass exchange" 128 (128): 67-74, 1990

      9 Matson, P.A., "The globalization of nitrogen deposition: consequences for terrestrial ecosystems" 31 (31): 113-119, 2002

      10 Fog, K., "The effect of added nitrogen on the rate of decomposition of organic matter" 63 (63): 433-462, 1988

      11 Lee, K.H., "Soil respiration, fine root production, and microbial biomass in cottonwood and loblolly pine plantations along a nitrogen fertilization gradient" 185 (185): 263-273, 2003

      12 Lovell, R.D., "Soil microbial biomass and activity in long term grassland: effects of management changes" 27 (27): 969-975, 1995

      13 Cooke, J.E., "Short-term physiological and developmental responses to nitrogen availability in hybrid poplar" 167 (167): 41-52, 2005

      14 Song, Y., "Short-term effects of nitrogen addition and vegetation removal on soil chemical and biological properties in a freshwater marsh in Sanjiang Plain" 104 : 265-271, 2013

      15 Kandeler, E., "Short-term assay of soil urease activity using colorimetric determination of ammonium" 6 (6): 68-72, 1988

      16 Gijsman, A.J., "Root decomposition in tropical grasses and legumes, as affected by soil texture and season" 29 (29): 1443-1450, 1997

      17 Frankenberger, W.T., "Relationships between enzyme activities and microbial growth and activity indices in soil" 47 (47): 945-951, 1983

      18 McCarty, G.W., "Regulation of urease production in soil by microbial assimilation of nitrogen" 12 : 261-264, 1992

      19 Heal, O.W., "Plant litter quality and decomposition: an historical overview, In Driven by nature-plant litter quality and decomposition" CAB International 3-30, 1997

      20 Spiecker, H., "Overview of recent growth trends in European forests" 116 : 33-46, 1999

      21 Goyal, S., "Organic matter-microbial biomass relationships in field experiments under tropical conditions: Effects of inorganic fertilization and organic amendments" 24 (24): 1081-1084, 1992

      22 Aerts, R., "Nutritional and plantmediated controls on leaf litter decomposition of Carex species" 78 (78): 244-260, 1997

      23 Allen, A.S., "Nutrient limitations to soil microbial biomass and activity in loblolly pine forests" 36 (36): 581-589, 2004

      24 Hobbie, S.E., "Nutrient limitation of decomposition in Hawaiian forests" 81 (81): 1867-1877, 2000

      25 Hart, S.C, "Nitrogen limitation of the microbial biomass in an old-growth forest soil" 4 (4): 91-98, 1997

      26 LeBauer, D.S., "Nitrogen limitation of net primary productivity in terrestrial ecosystems is globally distributed" 89 : 371-379, 2008

      27 Vitousek, P.M., "Nitrogen limita-tion on land and in the sea: How can it occur" 13 : 87-115, 1991

      28 Frink, C.R., "Nitrogen fertilizer: retrospect and prospect" 96 (96): 1175-1180, 1999

      29 Norby, R.J., "Nitrogen deposition: a component of global change analyses" 139 (139): 189-200, 1998

      30 Galloway, J.N., "Nitrogen cycles: past, present, and future" 70 (70): 153-226, 2004

      31 Melillo, J.M., "Nitrogen and lignin control of hardwood leaf litter decomposition dynamics" 63 (63): 621-626, 1982

      32 Taylor, B.R., "Nitrogen and lignin content as predictors of litter decay rates: a microcosm test" 70 (70): 97-104, 1989

      33 Treseder, K.K., "Nitrogen additions and microbial biomass: A meta-analysis of ecosystem studies" 11 (11): 1111-1120, 2008

      34 Joergensen, R.G., "Ninhydrin-reaction measurements of microbial biomass in 0.5 M K2SO4 soil extracts" 22 (22): 1023-1027, 1990

      35 Fisk, M.C., "Microbial responses to nitrogen additions in alpine tundra soil" 28 (28): 751-755, 1996

      36 Carreiro, M., "Microbial enzyme shifts explain litter decay responses to simulated nitrogen deposition" 81 : 2359-2365, 2000

      37 Garcia, F.O., "Microbial biomass dynamics in tallgrass prairie" 58 (58): 816-823, 1994

      38 Dick, R.P., "Microbial biomass and soil enzyme activities in compacted and rehabilitated skid trail soils" 52 (52): 512-516, 1988

      39 Magill, A.H., "Long-term effects of experimental nitrogen additions on foliar litter decay and humus formation in forest ecosystems" 203 (203): 301-311, 1998

      40 Berg, B., "Litter mass loss rates in pine forests of Europe and Eastern United States: some relationships with climate and litter quality" 20 : 127-159, 1993

      41 Rowland, A.P., "Lignin and cellulose fractionation in decomposition studies using acid detergent fibre methods" 25 : 269-277, 1994

      42 Sariyildiz, T., "Interactions between litter quality, decomposition and soil fertility: a laboratory study" 35 : 391-399, 2003

      43 Hobbie, S.E., "Interactions between litter lignin and soil nitrogen availability during leaf litter decomposition in a Hawaiian montane forest" 3 (3): 484-494, 2000

      44 Kang, H., "Inhibition of extracellular enzyme activities in a forest soil by additions of inorganic nitrogen" 36 (36): 2129-2135, 2005

      45 Prescott, C.E., "Influence forest floor type on rates of litter decomposition in microcosms" 28 (28): 1319-1325, 1996

      46 Stevens, C.J., "Impact of nitrogen deposition on the species richness of grassland" 303 : 1876-1879, 2004

      47 Vitousek, P.M., "Human alteration of the global nitrogen cycle: source and consequences" 7 (7): 737-750, 1997

      48 Vitousek, P.M., "Foliar and litter nutrients, nutrient resorption, and decomposition in Hawaiian Metrosideros polymorpha" 1 (1): 401-407, 1998

      49 Lemus, R., "Effects of nitrogen fertilization on biomass yield and quality in large fields of established switchgrass in southern Iowa, USA" 32 (32): 1187-1194, 2008

      50 Lee, H.S., "Effect of N fertilizer levels on the dry matter yield, quality and botanical composition in 8-species mixtures" 42 : 727-734, 2000

      51 Berg, B., "Effect of N deposition on decomposition of plant litter and soil organic matter in forest systems" 5 : 1-25, 1997

      52 Manning, P., "Direct and indirect effects of nitrogen deposition on litter decompositon" 40 (40): 688-698, 2008

      53 Seneviratne, G., "Differential effects of soil properties on leaf nitrogen release" 28 (28): 238-243, 1999

      54 Mick, P., "Decomposition litter as a sink for 15N-enriched addition to an oak forest and a red pine plantation" 196 (196): 71-87, 2004

      55 Swift, M.J., "Decomposition in terrestrial ecosystems" Blackwell 1979

      56 Hobbie, S.E., "Contrasting effects of substrate and fertilizer nitrogen on the early stages of litter decomposition" 8 (8): 644-656, 2005

      57 Bakker, J.P., "Constraints in the restoration of ecological diversity in grassland and heathland communities" 14 (14): 63-68, 1999

      58 Ross, D.J., "Comparison of methods to estimate microbial C and N in litter and soil under Pinus radiata on a coastal sand" 25 : 1591-1599, 1993

      59 Ågren, G.K., "Combining theory and experiment to understand effects of inorganic nitrogen on litter decomposition" 128 : 94-98, 2001

      60 Ajwa, H.A, "Changes in enzyme activities and microbial biomass of tallgrass prairie soil as related to burning and nitrogen fertilization" 31 (31): 769-777, 1999

      61 Vestgarden, L.S., "Carbon and nitrogen turnover in the early stage of Scots pine (Pinus sylvestris L.) needle litter decomposition: effects of internal and external nitrogen" 33 (33): 465-474, 2001

      62 Mersi Von, W., "An improved and accurate method for determining the dehydrogenase activity of soils with iodonitrotetrazolium chloride" 11 (11): 216-220, 1991

      63 Vance, E.D., "An extraction method for measuring soil microbial biomass C" 19 (19): 703-707, 1987

      64 Sinsabaugh, R.L., "Allocation of extracellular enzymatic activity in relation to litter composition, N deposition, and mass loss" 60 (60): 1-24, 2002

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      연월일 이력구분 이력상세 등재구분
      2022 평가예정 계속평가 신청대상 (계속평가)
      2021-12-01 평가 등재후보로 하락 (재인증) KCI등재후보
      2018-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2015-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2013-03-20 학술지명변경 한글명 : 한국하천호수학회지 -> 생태와 환경
      외국어명 : Korean Journal of Limnology -> Korean Journal of Ecology and Environment
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      2011-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2009-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2008-02-21 학회명변경 한글명 : 한국육수학회 -> 한국하천호수학회 KCI등재
      2008-02-21 학술지명변경 한글명 : 한국육수학회지 -> 한국하천호수학회지 KCI등재
      2008-01-24 학술지명변경 한글명 : 한국육수학회지 -> 한국하천호수학회지 KCI등재
      2007-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2005-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2002-01-01 평가 등재학술지 선정 (등재후보2차) KCI등재
      1999-07-01 평가 등재후보학술지 선정 (신규평가) KCI등재후보
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      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 0.54 0.54 0.54
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.52 0.47 0.719 0.42
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