• 제목/요약/키워드: Turf grasses

검색결과 49건 처리시간 0.03초

한국잔디에 발생한 달라스팟 병의 주요 원인균인 Sclerotinia homoeocarpa의 동정 및 특성 (Identification and Characteristics of Sclerotinia homoeocarpa Causing Dollar Spot Disease in Zoysiagrass)

  • 박대섭;김경덕;염주립;오병석;박병선
    • 아시안잔디학회지
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    • 제19권2호
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    • pp.85-94
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    • 2005
  • 위에서 골프장의 안양 중지 이병 잎에서 분리한 병원균인 달라스팟 유사 병원균을 분리 동정하였다. 2000년도 국내에 처음 보고된 이후 현재까지 뚜렷하게 진전된 연구가 보고 되지 않아 향후 사전 예방과 발생시 방제 법을 강구하기 위함과 아울러 코스관리자의 면밀한 관심을 유도하기 위하여 병원균 분리, 동정 및 특성을 한지형 잔디(Agyostis palustris Huds. cv Penncross)에서 발생하는 달라스팟 병원균과 비교 실험을 실시하였다. 1. 기존에 알려진 것처럼 Sclerotinia homoeocarpa 에서 보이는 온도에 대한 민감도를 새로운 병원성 Scz1 균주에서도 볼 수있어 특정온도에서의 생장억제는 안양 중지 달라스팟 병의 발병하는 시기뿐만 아니라 병방제관리에 도움이 될 것으로 생각된다. 2. 병원균 균사 특성에서 전자현미경사진으로는 구별하기 어려웠으나, PDA배지상에서의 Scz1와 Scz2 색상은 동일한 반면 Scb1균사색상과는 차이가 남으로 향후 간단하게 균사색상으로 식별이 용이 할 것이다. 3. 실험실상에서 병원균의 약제 민감도 측정결과는 이프로디온과 프로피코나졸 약제가 우수하였다. 4. 병 접종 실험을 통하여 분리된Sczl 균주가 안양 중지에 대한 기주 특이성을 보임으로 조이시아 달라스팟의 주요 병원균으로 밝혀졌다. 5. Scz1의 병원성은 안양 중지에 대한 기주 특이성이 높은 것으로 밝혀졌다.

남서중국의 자생페스큐의 엔도파이트와 톨체스큐 품종과의 공생 (Endophytes from Natural Festuca spp. in Southwest China and Their Compatibility with Tall Fescue Cultivars)

  • 왕야오야오;두용지;한리바우;리다이엥
    • 아시안잔디학회지
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    • 제23권1호
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    • pp.163-176
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    • 2009
  • 자생화본과 식물에서 자연적으로 생기는 엔도파이트 분포의 연구는 엔도파이트 공생에 대한 이해와 재배식물에서의 엔도파이트의 잇점에 대하여 중요하다. 본 연구는 중국 유난, 구이죠우, 시촨지역에서 자생하는 페스큐로부터 엔도파이트를 조사하고, 그 지역에서 널리 식재되는 잔디형 페스큐와의 융화에 대하여 연구하는데 목표를 두었다. 현장의 현미경 관찰 결과628개체의 sheep fescue 중 421개체가 엽초조직에서 엔도파이트가 동정되었다. 페스큐종에서 3개는 종자에서, 90개의 엔도파이트 분리체가 수집된 종자의 유묘에서 수집되었다. sheep fescue와 stapfii 페스큐의 엔도파이트는 Neotyphodium typhinum와 Neotyphodium starii로 각각 동정되었다. Little Hero, Sub Boy, Eldorado, Arid III, Millennium, Crossfire, 그리고 Fawn 톨페스큐 7품종에서 위 2종의 균류의 융화성을 조사한 결과, N. typhinum 나 N. typhinum and N. starii는 'Sun Boy'와 'Eldorado'에서 가장 높은 접종율을 보였다. 톨페스큐 품종과 엔도파이트 타입과의 접종에서 매우 높은 유의성의 교호 효과를 보였다.

다양한 스트레스에 유도되는 들잔디 ZjWRKY3, ZjWRKY7의 분석 (Analysis of ZjWRKY3, ZjWRKY7 induced by multiple stress in Zoysia japonica)

  • 김우남;송인자;강홍규;선현진;양대화;이용억;권용익;이효연
    • Journal of Plant Biotechnology
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    • 제44권3호
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    • pp.220-228
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    • 2017
  • 식용작물, 사료, 잔디를 포함하는 모든 작물은 건조, 염, 저온, 고온 등의 여러 가지 환경스트레스의 영향을 빈번히 받기 때문에 작물의 생산성이 떨어지게 된다. 식물은 환경스트레스 상황에서 스스로 벗어날 수 없다. 따라서 식물은 환경 스트레스를 극복하는 방향으로 진화하였다. ARF, ABI3, NAC, HSF, WRKY 같은 환경 스트레스에 반응하는 유전자들이 식물에서 보고되었다. 이 유전자들은 환경스트레스에 반응하는 전사인자로, 식물의 스트레스반응 경로에 연관되어 있다. OsWRKY76의 경우에는 저온 및 병원균에 대한 내성을 증가시켰고, AtWRKY28 의 경우 여러 가지 환경스트레스에 관련이 있는 것으로 보고되었다. 들잔디는 정원이나 골프코스에서 가장 흔하게 사용되는 잔디이다. 하지만 들잔디에서는 아직 WRKY 유전자가 알려지지 않았다. 본 연구에서는 들잔디로부터 1개의 WRKY domain을 포함하는 ZjWRKY3, ZjWRKY7 를 분리하였다. ZjWRKY3과 ZjWRKY7은 저온, 건조, 염 스트레스에 발현이 증가하였다. 들잔디의 갈색퍼짐병을 일으키는 R. solani의 감염이 ZjWRKY3과 ZjWRKY7의 발현을 증가시켰다. 또한 ZjWRKY3, ZjWRKY7이 Zjchi 유전자 promoter의 W-box에 결합하여 전사를 조절한다는 사실을 확인 하였다. 따라서 ZjWRKY3, ZjWRKY7 유전자는 전사인자로서 환경스트레스 및 병원균 관련 하위 유전자들을 조절할 것으로 예상된다.

제초제저항성 들잔디(Zoysia japonica Steud.) 이벤트 Jeju Green21의 환경위해성평가 (Environmental risk assessment of genetically modified Herbicide-Tolerant zoysiagrass (Event: Jeju Green21))

  • 배태웅;강홍규;송인자;선현진;고석민;송필순;이효연
    • Journal of Plant Biotechnology
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    • 제38권2호
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    • pp.105-116
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    • 2011
  • Transgenic zoysiagrass (Zoysia japonica Steud.) expressing the bar gene inserted in the plant genome has been generated previously through Agrobacterium tumefaciens-mediated transformation. The GM zoysiagrass (event: JG21) permits efficient management of weed control of widely cultivated zoysiagrass fields, reducing the frequency and cost of using various herbicides for weed control. Now we have carried out the environmental risk assessment of JG21 prior to applying to the governmental regulatory agency for the commercial release of the GM turf grass outside of test plots. The morphological phenotypes, molecular analysis, weediness and gene flow from each test plot of JG21 and wild-type zoysiagrasses have been evaluated by selectively analyzing environmental effects. There were no marked differences in morphological phenotypes between JG21 and wild-type grasses. The JG21 retained its stable integration in the host plant in T1 generation, exhibiting a 3:1 segregation ratio according to the Mendelian genetics. We confirmed the copy number (1) of JG21 by using Southern blot analysis, as the transgenic plants were tolerant to ammonium glufosinate throughout the culture period. From cross-fertilization and gene flow studies, we found a 9% cross-pollination rate at the center of JG21 field and 0% at distances over 3 m from the field. The JG21 and wild-type zoysiagrass plants are not considered "weed" because zoysiagrasses generally are not dominant and do not spread into weedy areas easily. We assessed the horizontal gene transfer (HGT) of the transgene DNA to soil microorganisms from JG21 and wild-type plants. The bar gene was not detected from the total genomic DNA extracted from each rhizosphere soil of GM and non-GM Zoysia grass fields. Through the monitoring of JG21 transgene's unintentional release into the environment, we found no evidence for either pollen mediated gene flow of zoysiagrass or seed dispersal from the test field within a 3 km radius of the natural habitat.

질소시용, 예초 및 재식밀도가 한국잔디(Zoysia Japonica Steud)의 생육에 미치는 영향 (Studies on the growth of Korea Lawn Grass (Zoysia japonica Steud.)in Reponse to Nitrogen Application, Clipping Treatment and Plant Density)

  • 심재성
    • 자연과학논문집
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    • 제1권
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    • pp.61-113
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    • 1987
  • The increasing emphasis placed on the production of fine turf for lawns, golf courses, parks, and other recreational sites has led to many unsolved problems as to how such turf could be best established and mainteined. For this purpose, a series of experiments were conducted under con ditions of pot and field. The results obtained were as follows EXPERIMENT I. The effect of nitrogen fertilizer and clipping interval on Zoysia japonica. 1. Increasing the rate of nitrogen and frequent clipping increased tiller number of Zoysis japonica and the maximum number of tillers were obtained from 700 kg N application and freqnent clippings (10 days interval ) in October. Treatment of 350kg N with 10 days clipping interval increased tillers much more than those of 700 kgN with 20 and 30 days clipping intervals. 2. The average number of green leaves occurred during the growth period maximized by applying 700 kg N and clipping 10 days interval. 3. Increasing tiller numbers significantly decreased tops DM weight per tiller by clipping plants at interval of 10 and 20 days, irrespective of nitrogen applied, and with nil N, at the interval of 30 days. By applying 700 kg N, however, top DM weight per tiller increased as the number of tillers increased consistently. 4. The highest top DM weight was achieved from late August to early September by applying 350 and 700kgN. 5. During the growth period, differences in unders ( stolon + root ) DM weight occurred bynitrogen application were found between nil N and two applied nitrogen levels, whereas, at the same level of nitrogen applied, the increase in stolon DM weight enhanced by lengthening the clipping interval to 30 days. 6. Nitrogen efficiency to green leaves, stolon nodes and DM weight of root with high nitrogen was achieved as clipping interval was shortened. 7. By increasing fertilizer nitrogen rate applied, N content n the leaves and stems of Zoysiajaponica was increased. On the other hand, N content in root and stolon had little effect onfertilizer nitrogen, resulting in the lowest content among plant fractions. The largest content of N was recorded in leaves. Lengthening the clipping interval from 10 or 20 to 30 days tends to decrease the N content in the leaves and stems, whereas this trend did not appeared in stolon androot. 8. A positive correlations between N and K contents in tops and stolon were established andthus K content increased as N content in tops and stolon increased. Meanwhile, P content was not affected by N and clipping treatments. 9. Total soluble carbohydrate content in Zoysia japonica was largest in stolon and stem, and was reduced by increasing fertilizer nitrogen rate. Reduction in total soluble carbohydrate due to increased nitrogen rate was severer in the stolons and stems than in the leaves. 10. Increasing the rate of nitrogen applied increased the number of small and large vascular bundles in leaf blade, but shortened distance among the large vascular bundles. Shortening the clipping interval resulted in increase of the number of large vascular bundles but decrease ofdistance between large vascular bundles.EXPERIMENT II. Growth response of Zoysia japonica imposed by different plant densities. 1. Tiller numbers per unit area increased as plant density heightened. Differences in num ber between densities at higher densities than 120 D were of no significance. 2. Tiller numbers per clone attained by 110 days after transplanting were 126 at 40D,77 at 80D, 67 at 120D, 54 at 160D, and 41 at 200D. A decreasing trend of tiller numbers per clone with increasing density was noticable from 100 days after transplanting onwards. 3. During the growth period, the greatest number of green leaves per unit area were attainedin 90days after transplanting at 160D and 200D, and 100 days after transplanting at 40D, 80Dand 120D. Thus the period to reach the maximum green leaf number with the high plantdensity was likely to be earlier that with the low plant density. 4. Stolon growth up to 80 days after transplaning was relatively slow, but from 80 daysonwards, the growth quickened to range from 1.9 m/clone at 40D to 0.6m/clone at 200Din 200 days after transplanting, these followed by the stolon node produced. 5. Plant density did not affect stolon weight/clone and root weight/clone until 80 daysafter transplanting. 6. DM weight of root was heavier in the early period of growth than that of stolon, butthis trend was reversed in the late period of growth : DM weight of stolon was much higherthan that of root.EXPERIMENT Ill. Vegetative growth of Zoysia japonica and Zoysia matrella as affected by nitrogen and clipping height. 1. When no nitrogen was applied to Zoysia japonica, leaf blade which appeared during theAugust-early September period remained green for a perid of about 10 weeks and even leavesemerged in rate September lived for 42 days. However, leaf longevity did not exceed 8 weeks asnitrogen was applied. In contrast the leaf longevity of Zoysia matrella which emerged during the mid August-earlySeptember period was 11 weeks and, under the nitrogen applied, 9 weeks, indicating that thelife-spen of individual leaf of Zoysia matrella may be longer than that of Zoysia japorica. Clipping height had no effect on the leaf longevity in both grasses. 2. During the July-August period, tiller number, green leaf number and DM weightof Zoysia japonica were increased significantly with fertilizer nitrogen, but were not with twolevel of clipping height. This trend was reversed after late September ; no effect of nitrogen wasappeared. Instead, lax clipping increased tiller number, green leaf number and DM weight. Greenleaves stimulated by lax clipping resulted in the occurrance of more dead leaves in late October. 3. Among the stolons outgrown until early September, the primary stolon was not influencedby nitrogen and clipping treatments to produce only 2-3 stolons. However, 1st branch stoIon asaffected by nitrogen increased significantly, so most of stolons which occurred consisted of 1st branch stolons. 4. Until early September, stolon length obtained at nil nitrogen level was chiefly caused bythe primary stolons. By applying nitrogen, the primary stolons of Zoysia japonica waslonger than 1st branch stolons when severe clipping was involved and in turn, shorter than 1stbranch stolons when lax clipping was concerned. In Zoysia matrella, 1st branch stolons were muchlonger than the primary stolon when turf was clipped severely but in conditions of lax clippingthere was little difference in length between primary and 1st branch stolons. 5. Stolon nodes of both Zoysia japonica and Z. matrella were positively influenced by nit rogen, but no particular increase by imposing clipping height treatment was marked in Zoysiamatrella. Although the stolon of Zoysia japonica grew until late October, the growthstimulated by nitrogen was not so remarkable as to exceed that by nil N.

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질소시용 및 예초고가 한국 잔디(Zoysia japonica Steud.) 및 금잔디(Zoysia matrella MERR.)의 생육후기 영양생장에 미치는 영향 (Effect of nitrogen application and clipping height on the vegetative growth of Korean lawn grass (Zoysia japonica Steud.) and Manilagrass (Zoysia mat rella (L.) MERR.) during September/October)

  • 심재성;윤익석
    • 아시안잔디학회지
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    • 제1권1호
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    • pp.7-17
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    • 1987
  • The experiment with two levels of nitrogen (0. and 300kg / ha / year) and two levels of clipping height (1.5cm and 4cm) was conducted on the field during the period 3 June to 23 October 1985. Clonal lines of korean lawngrass ( Zoysia japonica Steud.) and manilagrass ( Zoysia matrella ( L.) Merr.)of Daejon origin were established in June, as individual clone in rows 30cm apart with a 40cm spacing between clones, actually 4 clones each plot. The results obtained were as follows : 1. When no nitrogen was applied to korean lawngrass, leaf blade which appeared during the August / early September period remained green for a period of about 10 weeks and even leaves emerged in late September lived for 42 days. However, leaf longevity did not exceed 8 weeks as nitrogen was applied. In contrast the leaf longevity of manilagrass which emerged during the mid - August / early September period was 11 weeks and, under the nitrogen applied, 9 weeks, indicating that the life - saen of individual leaf of manilagrass may be longer than that of korean lawngrass. Meanwhile, clipping height had no effect on the leaf longevity in both grasses. 2. During the July / August period, tiller number, green leaf number and DM weight of korean lawngrass were increased significantly with fertilizer nitrogen, but were not with two levels of clipping height. This trend was reversed after late September : no effect of nitrogen was appeared. Instead, lax clipping increased tiller number, green leaf number and DM weight. Green leaves stimulated by lax clipping resulted in the occurrance of more dead leaves in late October. 3. The increase of tiller number, green leaf number, and DM weight of korean lawngrass due to nitrogen application appeared to be of significance in early September. Unlike korean lawngrass, however, this significant increase was maintained to late October when new green leaves still emerge. Clipping height had little effect on the growth of manilagrass by early September, but since then, lax clipping stimulated leaf appearance, possibly resulting in a remained green color of manilagrass turf. 4. Among the stolons outgrown until early September, the primary stolon was not influenced by nitrogen and clipping treatments to produce only 2 - 3 stolons. However, 1st branch stolon as affected by nitrogen increased significantly, so most of stolons which occurred consisted of 1st branch stolon. 5. Until early September, stolon length obtained at nil nitrogen level was chiefly caused by lengthening the primary stolons. By applying nitrogen the primary stolons of korean lawngrass was longer than 1st branch stolons when severe clipping was involved and in turn, shorter than 1st branch stolons when lax clipping was concerned. In manilagrass, 1st branch stolons were much longer than the primary stolons when turf was clipped severely but in conditions of lax clipping, there was little difference in length between primary and 1st branch stolons. 6. Stolon nodes of both korean lawngrass and manilagrass were positively influenced by nitrogen, but no particular increases by imposing clipping height treatment was marked in manilagrass. Although the stolon of korean lawngrass was grown until late october, the growth stimulated by nitrogen was not so remarkable as to exceed that a by nil N. 7. The thickness of korean lawngrass and manilagrass was greatest in late September, but that of manilagrass did not differ significantly from that in late October. 8. The response of stolon length of korean lawngrass to lax clippings was not so great in late October as to that to severe clippings. On the other hand, the positive effect of lax clippings to stolon length in m anilagrass was confirmed even in late October.

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골프장 그린의 볼마크 수리방법에 따른 벤트그래스의 회복속도 비교 (Comparison of Bentgrass Recovery Speed on Golf Green Followed by Methods of Ball Mark Repair Practise)

  • 박종하;이재필;김두환;주영규
    • 아시안잔디학회지
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    • 제24권2호
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    • pp.211-217
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    • 2010
  • 본 연구는 골프장 그린의 볼마크 수리방법 중 잔디 회복이 빠른 효과적인 방법을 규명하고자 수행하였다. 볼마크 수리방법은 대조구(볼 마크 수리 않음, A방법), 미국의 전통적 2가지 방법(USGA B방법, GCSAA C방법), 국내 골프장의 인력에 의한 3가지 방법(안성베네스트 D, 스카이72 E, 레이크사이드 F방법), 볼마크 수리기(6, 8, 14날)에 의한 3가지 방법(G, H, I방법) 등 모두 9가지 방법이 적용되었다. 공시된 그린의 벤트그래스 품종은 'Penncross', 'T-1', 'CY-2' 3품종이었다. 본 시험은 2009년 9월에서 11월까지 서울 레이크 사이드 골프장(용인시 모현면 능원리)의 nursery에서 행하였다. 전체 벤트그래스 3품종의 평균적 처리별 볼마크 회복율(%)은 E, D, C, B, F, I, H, G, A 순으로 빨랐으며 인력에 의한 볼마크 수리방법이 칼날이 부착된 수리기에 의한 방법보다 효과적이었다. 'Penncross'품종의 볼마크 회복율은 E, D, B, C, F, I, H, A, G 순으로 빨랐고, 'T-1' 품종의 볼마크 회복율은 D, E, B, F, C, H, I, A, G 순으로 빨랐으며, 'CY-2' 품종의 볼 마크 회복율은 D, E, C, F, B, H, G, I, A 순으로 빨랐다. 품종에 따른 볼마크 회복속도는 'CY-2', 'Penncross', 'T-1' 순이었다. 이상의 결과 볼마크 수리는 스카이72 골프장의 인력에 의한 방법인 '볼 마크 중앙의 피해 잔디를 포크로 제거한 후, 손으로 잔디를 두드리면서 안쪽으로 모으고 포크로 끌어당기면서 더 모은다. 둥근 나무막대로 잔디를 평탄하게 다진 후, 마지막으로 잔디에 물을 주는 방법'이 가장 효과적인 볼마크 수립방법으로 나타났다.

ITS 염기서열 분석 및 CAPS를 이용한 조이시아 속(Zoysia) 들잔디와 갯잔디의 구별 (Molecular Identification of Zoysia japonica and Zoysia sinica (Zoysia Species) Based on ITS Sequence Analyses and CAPS)

  • 홍민지;양대화;정옥철;김양지;박미영;강홍규;선현진;권용익;박신영;양바오로;송필순;고석민;이효연
    • 원예과학기술지
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    • 제35권3호
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    • pp.344-360
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    • 2017
  • Zoysia 속 잔디는 학교운동장 및 공원, 골프장, 스포츠경기장과 같이 다양한 장소에 식재되고 있는 중요한 잔디이다. 해안가에서 자생하는 Zoysia 속 들잔디와 갯잔디는 외부 형태적 특성이 유사하여 외부 형태적 분류 뿐 만 아니라 분자생물학적 분류도 필요하다. 본 연구에서는 nrDNA-ITS(Internal Transcribed Spacer)의 DNA 바코드 분석을 통해서 자생하는 들잔디와 갯잔디의 분자생물학적 신속한 분류체계를 확립하고자 하였다. 이를 위해 난지형 잔디인 Zoysia 속 들잔디(Z. japonica) 및 갯잔디(Z. sinica)와 한지형 대표 잔디인 크리핑 벤트그라스(A. stolonifera) 및 켄터키 블루그라스(P. pratensis)의 nrDNA-ITS 염기서열을 확보하였다. 확보된 들잔디및 갯잔디, 크리핑 벤트그라스, 켄터키 블루그라스의 ITS 염기서열 전체 구간은 각 686bp와 687bp, 683bp, 681bp으로 확인되었으며, nrDNA-ITS 내부 염기서열구간 분석 결과, ITS1의 크기는 248-249bp, ITS2는 270̵-274bp, 5.8S rDNA는 163-164bp의 차이로, 각 4종의 잔디가 ITS 염기서열을 이용하여 식별되었다. 특히, 들잔디와 갯잔디 nrDNA-ITS 염기서열은 19 염기(2.8%) 차이를 나타냈으며, ITS1과 ITS2의 G + C 함량은 55.4-63.3% 임을 확인하였다. 이러한 들잔디와 갯잔디의 ITS 염기서열 차이를 바탕으로 CAPS 마커로 전환하여 대조구 및 수집된 자생 Zoysia 속 잔디 영양체 62개체를 분석한 결과, 외부형태학적 분류법으로 들잔디 개체, 갯잔디 개체로 동정되었지만, ITSCAPS 마커를 이용한 분자생물학적 분류법으로 들잔디 36개체와 갯잔디 22개체 뿐만 아니라 들잔디와 갯잔디간의 자연교배종 4개체도 식별하였다. 이상의 결과에서 들잔디와 갯잔디는 ITS 염기서열 및 ITS 기반 CAPS를 통하여 식별할 수 있을 것으로 판단된다.

토양의 종류와 답압이 켄터키블루그래스 토양층에서 질소용탈에 미치는 영향 (The Effect of Rootzone Mix and Compaction on Nitrogen Leaching in Kentucky bluegrass)

  • 이상국;케빈 프랭크;제임스 크럼
    • 아시안잔디학회지
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    • 제24권1호
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    • pp.45-49
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    • 2010
  • 환경문제를 야기 시킬수 있는 질소의 용탈에 관한 문제는 수많은 연구를 통해 그 결과를 문헌에서 찾아볼 수 있다. 그러나 대부분의 연구가 질소의 토양내 용탈에 관해서 이루어진 반면에 토양의 답압과 토양의 종류에 따라 질소의 용탈 정도에 관한 연구는 그 결과를 문헌에서 찾아 보기가 어렵다. 본 연구는 토양의 종류와 답압의 정도가 질소의 용탈에 미치는 영향 그리고 토양에 잔류된 질소가 켄터키블루그래스의 성장에 주는 영향에 대해서 알아보기 위하여 수행 되었다. 질소는 총 147 kg $ha^{-1}$이 12주 동안 3회에 걸쳐 나누어 시비되었다. 토양의 종류는 성분비율에 따라 76.0:24.0, 80.8:19.2, 87.0:13.0 그리고 93.7:6.3% (sand:soil)의 4가지로 구성이 되었다. 토양은 PVC 파이프에 30 cm 깊이로 조성이 되었으며 토양층 밑에 5 cm의 자갈층으로 구성되었다. PVC 파이프 밑부분의 구멍을 통해 질소용탈수의 수집을 용이하게 하였으며 질소외 영양성분을 위해 Hoagland solution에서 질소만 제외하여 사용되었다. 켄터키블루그래스의 질과 예초량이 매주 측정이 되었으며 예초물은 건물량 측정을 위해 예초후 67도에서 24시간 동안 건조되었다. 질소용탈수는 매주 PVC 파이프의 밑부분을 통해 매주 수집이 되었다. 6.1 J $cm^{-2}$ 이상의 답압에너지는 더 많은 표면배수의 가능성을 야기 시킬 수 있다. 3.0과 6.1 J $cm^{-2}$ 사이의 답압에너지는 다른 처리구에 비해 더 많은 건물량이 측정이 되었고 적은 질소가 용탈이 되었다.