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      다국어 초록 (Multilingual Abstract)

      Teosinte, commonly known as wild species of corn, has distributed in Central and South America. It is believed that teosinte contains genes for resistance to flooding because of the climate characteristics of the collected countries. Recent studies have shown that teosinte has the ability to form adventitious roots, to develop aerenchyma tissues of teosinte, and the resistance to toxic substances under flooding soil condition. Therefore, development of corn varieties to cope with climate change and the growing corn at paddy field in Korea are required to introduce the characteristics of teosinte. However, in order to utilize teosinte resources, preconditions must be settled such as photoperiodic responsibility, physiological and ecological characteristics. Also if the preconditions are studied together with the metabolic level studies, the possibility of utilization for flooding resistant varieties will be even higher.
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      Teosinte, commonly known as wild species of corn, has distributed in Central and South America. It is believed that teosinte contains genes for resistance to flooding because of the climate characteristics of the collected countries. Recent studies ha...

      Teosinte, commonly known as wild species of corn, has distributed in Central and South America. It is believed that teosinte contains genes for resistance to flooding because of the climate characteristics of the collected countries. Recent studies have shown that teosinte has the ability to form adventitious roots, to develop aerenchyma tissues of teosinte, and the resistance to toxic substances under flooding soil condition. Therefore, development of corn varieties to cope with climate change and the growing corn at paddy field in Korea are required to introduce the characteristics of teosinte. However, in order to utilize teosinte resources, preconditions must be settled such as photoperiodic responsibility, physiological and ecological characteristics. Also if the preconditions are studied together with the metabolic level studies, the possibility of utilization for flooding resistant varieties will be even higher.

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      참고문헌 (Reference)

      1 Iltis H. H., "Zea nicaraguensis(Poaceae), a new teosinte from Pacific coastal Nicaragua" 10 : 382-390, 2000

      2 Takeda K., "Varietal variation of flooding tolerance in barley seedlings, and its diallel analysis" 39 (39): 174-175, 1989

      3 Ueno K., "Varietal variation and physiological basis for inhibition of wheat seed germination after excessive water treatment" 94 : 169-173, 1997

      4 Mano Y., "Varietal difference in pre-germination flooding tolerance and waterlogging tolerance at the seed-ling stage in maize inbred lines" 71 : 361-367, 2002

      5 Mano Y., "Varietal difference and genetic analysis of adventitious root forma-tion at the soil surface during flooding in maize and teosinte seedlings" 74 : 41-46, 2005

      6 Mano Y, "Variation for root aerenchyma formation in flooded and non-flooded maize and teosinte seedlings" 281 : 269-279, 2006

      7 Takeda K., "Tolerance to pre-germination flooding in the world collection of barley varieties" 5 : 735-740, 1987

      8 Zaidi P. H., "Tolerance to excess moisture in maize (Zea mays L.): Susceptible crop stages and identification of tolerant genotypes" 90 : 189-202, 2004

      9 Hufford M. B., "Teosinte as a model system for population and ecological genomics" 28 (28): 606-615, 2012

      10 Iltis H. H., "Taxonomy of Zea (Gramineae). II. Subspecific categories in the Zea mays complex and a generic synopsis" 67 : 994-1004, 1980

      1 Iltis H. H., "Zea nicaraguensis(Poaceae), a new teosinte from Pacific coastal Nicaragua" 10 : 382-390, 2000

      2 Takeda K., "Varietal variation of flooding tolerance in barley seedlings, and its diallel analysis" 39 (39): 174-175, 1989

      3 Ueno K., "Varietal variation and physiological basis for inhibition of wheat seed germination after excessive water treatment" 94 : 169-173, 1997

      4 Mano Y., "Varietal difference in pre-germination flooding tolerance and waterlogging tolerance at the seed-ling stage in maize inbred lines" 71 : 361-367, 2002

      5 Mano Y., "Varietal difference and genetic analysis of adventitious root forma-tion at the soil surface during flooding in maize and teosinte seedlings" 74 : 41-46, 2005

      6 Mano Y, "Variation for root aerenchyma formation in flooded and non-flooded maize and teosinte seedlings" 281 : 269-279, 2006

      7 Takeda K., "Tolerance to pre-germination flooding in the world collection of barley varieties" 5 : 735-740, 1987

      8 Zaidi P. H., "Tolerance to excess moisture in maize (Zea mays L.): Susceptible crop stages and identification of tolerant genotypes" 90 : 189-202, 2004

      9 Hufford M. B., "Teosinte as a model system for population and ecological genomics" 28 (28): 606-615, 2012

      10 Iltis H. H., "Taxonomy of Zea (Gramineae). II. Subspecific categories in the Zea mays complex and a generic synopsis" 67 : 994-1004, 1980

      11 Doebley J. F., "Taxonomy of Zea (Gramineae). I. A subgeneric classification with key to taxa" 67 : 982-993, 1980

      12 Hou F. F, "Studies on the flooding tolerance of soybean seed : varietal differences" 57 : 169-173, 1991

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      14 Dat J. F., "Sensing and signaling during plant flooding" 42 : 273-282, 2004

      15 Liu Y. Z., "Screening methods for waterlogging tolerance at maize (Zea mays L.) seedling stage" 9 (9): 362-369, 2010

      16 Setter T. L., "Review of prospects for germplasm improvement for waterlogging tolerance in wheat, barley and oats" 253 : 1-34, 2003

      17 Fausey N. R., "Response of ten corn cultivars to flooding" 28 : 1794-1797, 1985

      18 Zaidi P. H., "Resilient maize for improved and stable productivity of rain-fed environment of South and South-East Asia. Maize for Asia - Emerging Trends and Technologies" 2009

      19 Martin B. A, "Relationships between laboratory germination tests and field emergence of maize inbreds" 28 : 801-805, 1988

      20 Wagatsuma T., "Relationship between wet tolerance, anatomical structure of aerenchyma and gas exchange ability among several plant species" 11 (11): 121-132, 1990

      21 Pei W., "RAPD and internal transcribed spacer sequence analyses reveal Zea nicaraguensis as a section luxuriantes species close to Zea luxurians" 6 (6): e16728-, 2011

      22 Komatsu S., "Proteomic analysis of the flooding tolerance mechanism in mutant soybean" 79 : 231-250, 2013

      23 Xiling Z., "Prolyl 4-hydroxylase genes are subjected to alternative splicing in roots of maize seedlings under waterlogging" 108 (108): 1323-1335, 2011

      24 Jun Hong, "Plant Metabolomics: An Indispensable System Biology Tool for Plant Science" MDPI AG 17 (17): 767-, 2016

      25 Alisdair R, F., "Metabolomics-assisted breeding : a viable option for crop improvement?" 25 (25): 39-48, 2008

      26 Fang, Z., "Megabase-scale inversion polymorphism in the wild ancestor of maize" 191 : 883-894, 2012

      27 Alamgir H., "Mechanisms of waterlogging tolerance in wheat : morphological and metabolic adaptations under hypoxia or anoxia" 5 (5): 1094-1110, 2011

      28 Qiu F. Z, "Mapping of QTL associated with submergence tolerance during the seedling stage in maize" 99 : 1067-1081, 2007

      29 Ray J. D., "Introgressing root aerechyma into maize" 44 : 113-117, 1999

      30 Mano Y., "Identification of QTL controlling waterlogging tolerance in reducing soil conditions in maize (Zea mays L.) seedlings" 9 : 176-181, 2006

      31 Mano Y., "Identification of QTL controlling adventitious root formation during flooding conditions in teosinte(Zea mays ssp. huehuetenangensis)seedlings" 142 : 33-42, 2005

      32 Mano Y, "High-densitylinkage map around the root aerechyma locus Quer1. 06 in the backcross populations of maize Mi29×teosinte"Zea nicaraguesis"" 59 : 427-433, 2009

      33 Lemke-Keyes C. A., "Genetic variation for seedling tolerance to anaerobic stress in maize germplasm" 34 : 329-337, 1989

      34 Harlan J. R, "Genetic resources in wild relatives of crops" 16 : 329-333, 1976

      35 Jackson M. B., "Formation of aerenchyma and the processes of plant ventilation in relation to soil flooding and submergence" 1 : 274-287, 1999

      36 Haque M. E., "Formation and extension of lysigenous aerenchyma in seminal root cortex of spring wheat(Triticum aestivum cv. Bobwhite line SH 98 26)seedlings under different strength of waterlogging" 4 : 31-39, 2010

      37 Bailey-Serres J, "Flooding stress : acclimations and genetic diversity" 59 : 313-339, 2008

      38 Colmer T. D., "Expression of α-expansin genes during root acclimations to O2deficiency in Rumex palustris" 56 : 423-437, 2004

      39 Jackson M. B, "Ethylene and responses of plants to soil waterlogging and submergence" 36 : 145-174, 1985

      40 Steffens B, "Epidermal cell death in rice is confined to cells with a distinct molecular identity and is mediated by ethylene and H2O2 through an autoamplified signal pathway" 21 : 184-196, 2009

      41 Abiko T, "Enhanced formation of aerenchyma and induction of a barrier to radial oxygen loss in adventitious roots of Zea nicaraguensis contribute to its waterlogging tolerance as compared with maize(Zea mays ssp. mays)" 35 (35): 1618-1630, 2012

      42 Zhaohui X., "Effect of ethylene on polygalacturonase, lipoxygenase and expansin in ripening of tomato fruits" 15 : 173-177, 2009

      43 Zhijie L., "Characterization of miRNAs in response to short-term waterlogging in three inbred lines of Zea mays" 7 (7): e39786-, 2012

      44 Gunawardena A. H. L. A. N, "Characterisation of programmed cell death during aerenhyma formation induced by ethylene or hypoxia in roots of maize (Zea mays L.)" 212 : 205-214, 2001

      45 Tang B., "Changes of Antioxidative Enzymes and Lipid Peroxidation in Leaves and Roots of Waterlogging-Tolerant and Waterlogging-Sensitive Maize Genotypes at Seedling Stage" 9 (9): 651-661, 2010

      46 R .Y. Yordanova, "Changes in the leaf polypeptide patterns of barley plants exposed to soil flooding" 48 (48): 301-304, 2004

      47 Erdmann B, "Changes in the Root System of Wheat Seedlings Following Root Anaerobiosis I. Anatomy and Respiration in Triticum aestivum" 58 : 597-605, 1986

      48 Kong F., "Cell wall proteome of wheat roots under flooding stress using gel-based and LC MS/MSbased proteomics approaches" 1804 : 124-136, 2010

      49 Lone A. A., "Breeding strategies for improving growth and yield under waterlogging conditions in maize: A review" 2016

      50 Samad A., "Application of physiology in wheat breeding" CIMMYT 136-144, 2001

      51 Sachs M, "Anaerobic gene expression and flooding tolerance in maize" 47 : 1-15, 1996

      52 Evans D. E, "Aerencyma formation. Transley review" 161 : 35-49, 2003

      53 Bouranis D. L., "Aerenchyma formation in roots of maize during sulphate starvation" 217 : 382-339, 2003

      54 Yandeau-Nelson M. D., "Advances in metabolomic applications in plant genetics and breeding" CABI Publishing 10 (10): 2015

      55 Armstrong W., "Advances in Botanical Research, vol 7" Academic Press 225-232, 1979

      56 Visser E. J. W., "Acclimation to soil flooding - sensing and signal - transduction" 254 : 197-214, 2004

      57 Bird R. McK, "A remarkable new teosinte from Nicaragua:Growth and treatment of progeny" 74 : 58-59, 2000

      58 Armstrong W., "A critical oxygen pressure for root extension in rice" 36 : 1573-1582, 1985

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      학술지 이력

      학술지 이력
      연월일 이력구분 이력상세 등재구분
      2026 평가예정 재인증평가 신청대상 (재인증)
      2020-01-01 평가 등재학술지 유지 (재인증) KCI등재
      2017-01-01 평가 등재학술지 선정 (계속평가) KCI등재
      2016-01-01 평가 등재후보학술지 유지 (계속평가) KCI등재후보
      2015-12-01 평가 등재후보로 하락 (기타) KCI등재후보
      2014-01-08 학술지명변경 외국어명 : Kor. J. Intl. Agri. -> The Journal of the Korean Society of International Agriculture KCI등재
      2011-01-01 평가 등재 1차 FAIL (등재유지) KCI등재
      2009-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2006-01-01 평가 등재학술지 선정 (등재후보2차) KCI등재
      2005-05-29 학술지명변경 한글명 : 韓國國際農業開發學會誌 -> 한국국제농업개발학회지 KCI등재후보
      2005-01-01 평가 등재후보 1차 PASS (등재후보1차) KCI등재후보
      2004-01-01 평가 등재후보 1차 FAIL (등재후보1차) KCI등재후보
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      학술지 인용정보

      학술지 인용정보
      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 0.32 0.32 0.3
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.3 0.27 0.561 0.01
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