• 제목/요약/키워드: Light-harvesting complex

검색결과 46건 처리시간 0.023초

Selective Interaction Between Chloroplast β-ATPase and TGB1L88 Retards Severe Symptoms Caused by Alternanthera mosaic virus Infection

  • Seo, Eun-Young;Nam, Jiryun;Kim, Hyun-Seung;Park, Young-Hwan;Hong, Seok Myeong;Lakshman, Dilip;Bae, Hanhong;Hammond, John;Lim, Hyoun-Sub
    • The Plant Pathology Journal
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    • 제30권1호
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    • pp.58-67
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    • 2014
  • The multifunctional triple gene block protein 1 (TGB1) of the Potexvirus Alternanthera mosaic virus (AltMV) has been reported to have silencing suppressor, cell-to-cell movement, and helicase functions. Yeast two hybrid screening using an Arabidopsis thaliana cDNA library with TGB1 as bait, and co-purification with TGB1 inclusion bodies identified several host proteins which interact with AltMV TGB1. Host protein interactions with TGB1 were confirmed by biomolecular fluorescence complementation, which showed positive TGB1 interaction with mitochondrial ATP synthase delta' chain subunit (ATP synthase delta'), light harvesting chlorophyll-protein complex I subunit A4 (LHCA4), chlorophyll a/b binding protein 1 (LHB1B2), chloroplast-localized IscA-like protein (ATCPISCA), and chloroplast ${\beta}$-ATPase. However, chloroplast ${\beta}$-ATPase interacts only with $TGB1_{L88}$, and not with weak silencing suppressor $TGB1_{L88}$. This selective interaction indicates that chloroplast ${\beta}$-ATPase is not required for AltMV movement and replication; however, TRV silencing of chloroplast ${\beta}$-ATPase in Nicotiana benthamiana induced severe tissue necrosis when plants were infected by AltMV $TGB1_{L88}$ but not AltMV $TGB1_{L88}$, suggesting that ${\beta}$-ATPase selectively responded to $TGB1_{L88}$ to induce defense responses.

Glyphosate 독성: III. psb A와 lac Z 유전자의 Hybrid 단백질로부터 만들어진 항체를 이용한 토마토 정단분열조직의 Thylakoid막 내 QB 단백질의 검정 (Glyphosate Toxicity: III. Detection of QB Protein in Thylakoid Membrane of Tomato Apical Meristem Using an Antibody Raised from Hybrid Protein of psb A and lac Z Gene)

  • 김태완;니콜라스 암라인
    • 한국잡초학회지
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    • 제15권3호
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    • pp.206-213
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    • 1995
  • Glyphosate를 토마토의 동화산물 공급부위에 처리하였을 때, 제초제결합 단백질인 QB 단백질을 Escherichia coli 내에서 ${\alpha}$-galactosidase가 발현되기 위해 lac Z 유전자의 3' 말단에 cloning된 시금치 psb A 유전자에 의해 발현되는 hybrid 단백질에 대한 항체를 형성시킨 후 이것을 이용하여 immunoblotting을 실시하였다. G1yphosate는 thylakoid 막의 Photosystem II내에 있는 D1 단백질의 붕괴에 영향을 주었다. LHC II 복합체내의 D1 단백질의 기능 이상은 glyphosate 의 다면발현적 효과였다.

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녹화중인 녹두 자엽의 엽록소-단백질 복합체 및 색소체막 단백질의 변화에 미치는 Spermine의 효과 (Effects of Spermine on Changes in Chlorophyll-Protein Complexes and Plastic Membrane Proteins of Mung Bean Cotyledons during Greening)

  • 홍정희;박흥덕
    • 한국환경과학회지
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    • 제4권4호
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    • pp.335-344
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    • 1995
  • Spermine이 녹화중인 녹두자엽의 엽록소-단백질 복합체(CPs) 및 틸라코이드막 단백질의 변화에 미치는 효과를 조사하였다. 녹화가 진행됨에 따라 Cps형성이 촉진되었으며, 특히 광계의 엽록소-단백질(CP I)이 다량 추척되었다. 광수화 엽록소 단백질(LHCP)은 48시간의 초기 녹화과정에서 중요한 단백질로 나타났다.Spermine처리는 초기녹화과정에서 틸라코이드막의 CPs 축척에 효과적이었다. 색소체막 단백질은 녹화과정에서 많은 변화를 나타내었는데, 56kD단백질은 전 엽록체체서 다량 관찰되었꼬 24kD 단백질은 전 처리구에서 뚜렷한 증가를 보여주었다.Spermine처리에 의해 틸라코이드막 단백질 형성은 대조구에 비해 다소 증가되었다. 이러한 결과들로부터 spermine은 녹화과정에서 색소체의 발달과 색소체막의 안정화에 중요한 작용을 하는 것으로 생각된다.

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녹화중인 녹두 자엽의 엽록소-단백질 복합체 및 색소체막 단백질의 변화에 미치는 Spermine의 효과 (Effects of Spermine on Changes in Chlorophyll-Protein Complexes and Plastic Membrane Proteins of Mung Bean Cotyledons during Greening)

  • 홍정희;박흥덕
    • 한국환경과학회지
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    • 제4권4호
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    • pp.33-33
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    • 1995
  • Spermine이 녹화중인 녹두자엽의 엽록소-단백질 복합체(CPs) 및 틸라코이드막 단백질의 변화에 미치는 효과를 조사하였다. 녹화가 진행됨에 따라 Cps형성이 촉진되었으며, 특히 광계의 엽록소-단백질(CP I)이 다량 추척되었다. 광수화 엽록소 단백질(LHCP)은 48시간의 초기 녹화과정에서 중요한 단백질로 나타났다.Spermine처리는 초기녹화과정에서 틸라코이드막의 CPs 축척에 효과적이었다. 색소체막 단백질은 녹화과정에서 많은 변화를 나타내었는데, 56kD단백질은 전 엽록체체서 다량 관찰되었꼬 24kD 단백질은 전 처리구에서 뚜렷한 증가를 보여주었다.Spermine처리에 의해 틸라코이드막 단백질 형성은 대조구에 비해 다소 증가되었다. 이러한 결과들로부터 spermine은 녹화과정에서 색소체의 발달과 색소체막의 안정화에 중요한 작용을 하는 것으로 생각된다.

Chlorophyll contents and expression profiles of photosynthesis-related genes in water-stressed banana plantlets

  • Sri Nanan Widiyanto;Syahril Sulaiman;Simon Duve;Erly Marwani;Husna Nugrahapraja;Diky Setya Diningrat
    • Journal of Plant Biotechnology
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    • 제50권
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    • pp.127-136
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    • 2023
  • Water scarcity decreases the rate of photosynthesis and, consequently, the yield of banana plants (Musa spp). In this study, transcriptome analysis was performed to identify photosynthesis-related genes in banana plants and determine their expression profiles under water stress conditions. Banana plantlets were in vitro cultured on Murashige and Skoog agar medium with and without 10% polyethylene glycol and marked as BP10 and BK. Chlorophyll contents in the plant shoots were determined spectrophotometrically. Two cDNA libraries generated from BK and BP10 plantlets, respectively, were used as the reference for transcriptome data. Gene ontology (GO) enrichment analysis was performed using the Database for Annotation, Visualization, and Integrated Discovery (DAVID) and visualized using the Kyoto Encyclopedia of Genes and Genomes (KEGG) pathway prediction. Morphological observations indicated that water deficiency caused chlorosis and reduced the shoot chlorophyll content of banana plantlets. GO enrichment identified 52 photosynthesis-related genes that were affected by water stress. KEGG visualization revealed the pathways related to the 52 photosynthesisr-elated genes and their allocations in four GO terms. Four, 12, 15, and 21 genes were related to chlorophyll biosynthesis, the Calvin cycle, the photosynthetic electron transfer chain, and the light-harvesting complex, respectively. Differentially expressed gene (DEG) analysis using DESeq revealed that 45 genes were down-regulated, whereas seven genes were up-regulated. Four of the down-regulated genes were responsible for chlorophyll biosynthesis and appeared to cause the decrease in the banana leaf chlorophyll content. Among the annotated DEGs, MaPNDO, MaPSAL, and MaFEDA were selected and validated using quantitative real-time PCR.

Power Enhance Effect on the Hybrid Cell Based on Direct Current Nanogenerator and an Organic Photovoltaic Device

  • 윤규철;신경식;이근영;이주혁;김상우
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2013년도 제45회 하계 정기학술대회 초록집
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    • pp.298-298
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    • 2013
  • Finding renewable and clean energy resources is essential research to solve global warming and depletion of fossil fuels in modern society. Recently, complex harvesting of energy from multiple sources is available in our living environments using a single device has become highly desirable, representing a new trend in energy technologies. We report that when simultaneously driving the fusion and composite cells of two or more types, it is possible to make an affect the other cells to obtain a greater synergistic effect. To understand the coupling effect of photovoltaic and piezoelectric device, we fabricate the serially integrated hybrid cell (s-HC) based on organic solar cell (OSC) and piezoelectric nanogenerator (PNG). The size of increased voltage peaks when OSC and PNG are working on is larger than the case when only PNG is working. This voltage difference is the Voc change of OSC, not the voltage change of PNG and current density difference between these two cases is manifested more clearly. When the OSC and PNG are working in s-HC at the same time, piezoelectric potential (VPNG) is generated in ZnO and theoretical total voltage is sum of voltage of an OSC (VOSC) and VPNG. However, electrons from OSC are influenced by piezoelectric potential in ZnO and current loss of OSC in whole circuit decreases. As a result, VOSC increases temporarily. Current shows the similar behavior. PNG acts a resistance in the whole circuit and current loss occurs when the electrons from OSC pass through the PNG. But piezoelectric potential recover current loss and decrease the resistance of PNG. Our PNG can maintain piezoelectric potential when the strain is held owing to the LDH layer while general PNG cannot maintain piezoelectric potential. During the section that strain is held, voltage enhancement effect is maintained and same effect appeared even turn off the light. Actually at this time, electrons in ZnO nanosheets move to LDH and trapped by the positive charges in this layer. After this strain is held, piezoelectric potential of ZnO nanosheets is disappeared but potential difference which is developed by negative charge dominant LDH layer is remained. This potential acts similar role like piezoelectric potential in ZnO. Electrons from the OSC also are influenced by this potential and the more current flows.

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