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      KCI등재 SCIE SCOPUS

      Proteomic Changes in the Sound Vibration-Treated Arabidopsis thaliana Facilitates Defense Response during Botrytis cinerea Infection

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      https://www.riss.kr/link?id=A106455361

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      다국어 초록 (Multilingual Abstract)

      Sound vibration (SV) treatment can trigger various molecular and physiological changes in plants. Previously, we showed that pre-exposure of Arabidopsis plants to SV boosts its defense response against Botrytis cinerea fungus. The present study was ai...

      Sound vibration (SV) treatment can trigger various molecular and physiological changes in plants. Previously, we showed that pre-exposure of Arabidopsis plants to SV boosts its defense response against Botrytis cinerea fungus. The present study was aimed to investigate the changes in the proteome states in the SV-treated Arabidopsis during disease progression. Proteomics analysis identified several upregulated proteins in the SVinfected plants (i.e., SV-treated plants carrying Botrytis infection). These upregulated proteins are involved in a plethora of biological functions, e.g., primary metabolism (i.e., glycolysis, tricarboxylic acid cycle, ATP synthesis, cysteine metabolism, and photosynthesis), redox homeostasis, and defense response. Additionally, our enzyme assays confirmed the enhanced activity of antioxidant enzymes in the SV-infected plants compared to control plants. Broadly, our results suggest that SV pre-treatment evokes a more efficient defense response in the SV-infected plants by modulating the primary metabolism and reactive oxygen species scavenging activity.

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      참고문헌 (Reference)

      1 Andrea Balmer, "The ‘prime-ome’: towards a holistic approach to priming" Elsevier BV 20 (20): 443-452, 2015

      2 Martinez M, "The strawberry gene Cyf1 encodes a phytocystatin with antifungal properties" 56 : 1821-1829, 2005

      3 Willy J. Peumans, "The role of lectins in plant defence" Springer Science and Business Media LLC 27 (27): 253-271, 1995

      4 Wenyan Xiao, "The role of hexokinase in plant sugar signal transduction and growth and development" Springer Science and Business Media LLC 44 (44): 451-461, 2000

      5 Zhiyong Zhang, "The gene controlling the quantitative trait locus EPITHIOSPECIFIER MODIFIER1 alters glucosinolate hydrolysis and insect resistance in Arabidopsis" American Society of Plant Biologists (ASPB) 18 (18): 1524-1536, 2006

      6 Thomas Rausch, "Sulfur metabolism: a versatile platform for launching defence operations" Elsevier BV 10 (10): 503-509, 2005

      7 Bolouri Moghaddam MR, "Sugars and plant innate immunity" 63 : 3989-3998, 2012

      8 Karin Herbers, "Salicylic acid-independent induction of pathogenesis-related protein transcripts by sugars is dependent on leaf developmental stage" Wiley 397 (397): 239-244, 1996

      9 Ran Wan, "Resistance evaluation of Chinese wild Vitis genotypes against Botrytis cinerea and different responses of resistant and susceptible hosts to the infection" Frontiers Media SA 6 : 2015

      10 Ainhoa Martinez-Medina, "Recognizing Plant Defense Priming" Elsevier BV 21 (21): 818-822, 2016

      1 Andrea Balmer, "The ‘prime-ome’: towards a holistic approach to priming" Elsevier BV 20 (20): 443-452, 2015

      2 Martinez M, "The strawberry gene Cyf1 encodes a phytocystatin with antifungal properties" 56 : 1821-1829, 2005

      3 Willy J. Peumans, "The role of lectins in plant defence" Springer Science and Business Media LLC 27 (27): 253-271, 1995

      4 Wenyan Xiao, "The role of hexokinase in plant sugar signal transduction and growth and development" Springer Science and Business Media LLC 44 (44): 451-461, 2000

      5 Zhiyong Zhang, "The gene controlling the quantitative trait locus EPITHIOSPECIFIER MODIFIER1 alters glucosinolate hydrolysis and insect resistance in Arabidopsis" American Society of Plant Biologists (ASPB) 18 (18): 1524-1536, 2006

      6 Thomas Rausch, "Sulfur metabolism: a versatile platform for launching defence operations" Elsevier BV 10 (10): 503-509, 2005

      7 Bolouri Moghaddam MR, "Sugars and plant innate immunity" 63 : 3989-3998, 2012

      8 Karin Herbers, "Salicylic acid-independent induction of pathogenesis-related protein transcripts by sugars is dependent on leaf developmental stage" Wiley 397 (397): 239-244, 1996

      9 Ran Wan, "Resistance evaluation of Chinese wild Vitis genotypes against Botrytis cinerea and different responses of resistant and susceptible hosts to the infection" Frontiers Media SA 6 : 2015

      10 Ainhoa Martinez-Medina, "Recognizing Plant Defense Priming" Elsevier BV 21 (21): 818-822, 2016

      11 Young Sang Kwon, "Proteomic analyses of the interaction between the plant-growth promoting rhizobacterium Paenibacillus polymyxa E681 and Arabidopsis thaliana" Wiley 16 (16): 122-135, 2016

      12 Young Sang Kwon, "Proteome analysis of Arabidopsis seedlings exposed to bacterial volatiles" Springer Science and Business Media LLC 232 (232): 1355-1370, 2010

      13 V. Pastor, "Primed plants do not forget" Elsevier BV 94 : 46-56, 2013

      14 Melvin D. Bolton, "Primary Metabolism and Plant Defense—Fuel for the Fire" Scientific Societies 22 (22): 487-497, 2009

      15 Bosung Choi, "Positive regulatory role of sound vibration treatment in Arabidopsis thaliana against Botrytis cinerea infection" Springer Science and Business Media LLC 7 (7): 2017

      16 H. M. Appel, "Plants respond to leaf vibrations caused by insect herbivore chewing" Springer Science and Business Media LLC 175 (175): 1257-1266, 2014

      17 Daniela Bellincampi, "Plant cell wall dynamics and wall-related susceptibility in plant–pathogen interactions" Frontiers Media SA 5 : 2014

      18 Mishra RC, "Plant acoustics : in the search of a sound mechanism for sound signaling in plants" 67 : 4483-4494, 2016

      19 Friederike Bernsdorff, "Pipecolic Acid Orchestrates Plant Systemic Acquired Resistance and Defense Priming via Salicylic Acid-Dependent and -Independent Pathways" American Society of Plant Biologists (ASPB) 28 (28): 102-129, 2016

      20 Hidetoshi Iida, "Mugifumi, a beneficial farm work of adding mechanical stress by treading to wheat and barley seedlings" Frontiers Media SA 5 : 2014

      21 Chehab EW, "Mechanical integration of plant cells and plants" Springer-Verlag 173-194, 2011

      22 Zhong-Guang Li, "Mechanical Stimulation-Induced Cross-Adaptation in Plants: An Overview" Springer Science and Business Media LLC 54 (54): 2011

      23 Jan A.L. van Kan, "Licensed to kill: the lifestyle of a necrotrophic plant pathogen" Elsevier BV 11 (11): 247-253, 2006

      24 Bochu Wang, "Influence of sound stimulation on plasma membrane H+-ATPase activity" Elsevier BV 25 (25): 183-188, 2002

      25 Janet Braam, "In touch: plant responses to mechanical stimuli" Wiley 165 (165): 373-389, 2005

      26 Clemencia M. Rojas, "Glycolate oxidase modulates reactive oxygen species–mediated signal transduction during nonhost resistance in Nicotiana benthamiana and Arabidopsis" American Society of Plant Biologists (ASPB) 24 (24): 336-352, 2012

      27 Ritesh Ghosh, "Expression Analysis of Sound Vibration-Regulated Genes by Touch Treatment in Arabidopsis" Frontiers Media SA 8 : 2017

      28 Ritesh Ghosh, "Exposure to Sound Vibrations Lead to Transcriptomic, Proteomic and Hormonal Changes in Arabidopsis" Springer Science and Business Media LLC 6 (6): 2016

      29 Ming Wei, "Enhancement of the differentiation of protocorm-like bodies of Dendrobium officinale to shoots by ultrasound treatment" Elsevier BV 169 (169): 770-774, 2012

      30 Masoumeh Safari, "Enhancement of antioxidant enzymes activity and expression of CAT and PAL genes in hazel (Corylus avellana L.) cells in response to low-intensity ultrasound" Springer Science and Business Media LLC 35 (35): 2847-2855, 2013

      31 Wang Xiujuan, "Effects of sound stimulation on protective enzyme activities and peroxidase isoenzymes of chrysanthemum" Elsevier BV 27 (27): 59-63, 2003

      32 Yang Xiaocheng, "Effects of sound stimulation on energy metabolism of Actinidia chinensis callus" Elsevier BV 30 (30): 67-72, 2003

      33 Biao Li, "Effect of sound wave stress on antioxidant enzyme activities and lipid peroxidation of Dendrobium candidum" Elsevier BV 63 (63): 269-275, 2008

      34 Jia Yi, "Effect of sound stimulation on roots growth and plasmalemma H+-ATPase activity of chrysanthemum (Gerbera jamesonii)" Elsevier BV 27 (27): 65-69, 2003

      35 Chia-Hung Chien, "EXPath: a database of comparative expression analysis inferring metabolic pathways for plants" Springer Science and Business Media LLC 16 (16): S6-, 2015

      36 Ignacio López-Ribera, "Drought tolerance induced by sound in Arabidopsis plants" Informa UK Limited 12 (12): e1368938-, 2017

      37 Qi L, "Computer and computing technologies in agriculture (III)" Springer-Verlag 449-454, 2010

      38 Jeffrey L. Caplan, "Chloroplast Stromules Function during Innate Immunity" Elsevier BV 34 (34): 45-57, 2015

      39 Yilin Liu, "Arabidopsis Vegetative Storage Protein Is an Anti-Insect Acid Phosphatase" American Society of Plant Biologists (ASPB) 139 (139): 1545-1556, 2005

      40 E. Wassim Chehab, "Arabidopsis Touch-Induced Morphogenesis Is Jasmonate Mediated and Protects against Pests" Elsevier BV 22 (22): 701-706, 2012

      41 Guosheng Liu, "Amino acid homeostasis modulates salicylic acid–associated redox status and defense responses in Arabidopsis" American Society of Plant Biologists (ASPB) 22 (22): 3845-3863, 2010

      42 Monshausen GB, "A force of nature : molecular mechanisms of mechanoperception in plants" 64 : 4663-4680, 2013

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      2023 평가예정 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
      2020-01-01 평가 등재학술지 유지 (해외등재 학술지 평가) KCI등재
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      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 1.14 0.32 0.84
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.69 0.57 0.477 0.17
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