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    Overexpression of Gene Encoding Tonoplast Intrinsic AquaporinPromotes Urea Transport in Arabidopsis

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    https://www.riss.kr/link?id=A104235738

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    다국어 초록 (Multilingual Abstract) kakao i 다국어 번역

    Complementation assay of the urea uptake-defective yeast mutants led to the identification of the Arabidopsis AtTIP4;1 gene encoding the aquaporin. However, its physiological functions still remain elusive. In the present study, histochemical and genetic analyses were performed to understand the physiological roles of AtTIP4;1 in urea uptake. The AtTIP4;1 product was detectible in the roots, but not in the leaves, the stem, and the flower. Its promoter allowed the expression of the β-glucuronidase reporter gene in the roots and the apical meristem in Arabidopsis.
    The AtTIP4;1 products were induced under nitrogen-deficient conditions. To investigate the role of the tonoplast intrinsic protein in urea transport and developments, Arabidopsis with the loss- and the gain-of-function mutations by T-DNA insertion in AtTIP4;1 and 35S promoter-mediated overexpression of AtTIP4;1 were identified, respectively. The transfer DNA insertion and the AtTIP4;1-overexpressed plants showed normal growth and development under normal or abiotic stress growth conditions. The urea-uptake studies using 14C-labeled urea revealed higher accumulation of urea in the AtTIP4;1-overexpressed plants. These results provide evidence that overexpression of AtTIP4;1 leads to the increase in the urea-uptake rate in plants without detectable defects to the growth and development.
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    Complementation assay of the urea uptake-defective yeast mutants led to the identification of the Arabidopsis AtTIP4;1 gene encoding the aquaporin. However, its physiological functions still remain elusive. In the present study, histochemical and gene...

    Complementation assay of the urea uptake-defective yeast mutants led to the identification of the Arabidopsis AtTIP4;1 gene encoding the aquaporin. However, its physiological functions still remain elusive. In the present study, histochemical and genetic analyses were performed to understand the physiological roles of AtTIP4;1 in urea uptake. The AtTIP4;1 product was detectible in the roots, but not in the leaves, the stem, and the flower. Its promoter allowed the expression of the β-glucuronidase reporter gene in the roots and the apical meristem in Arabidopsis.
    The AtTIP4;1 products were induced under nitrogen-deficient conditions. To investigate the role of the tonoplast intrinsic protein in urea transport and developments, Arabidopsis with the loss- and the gain-of-function mutations by T-DNA insertion in AtTIP4;1 and 35S promoter-mediated overexpression of AtTIP4;1 were identified, respectively. The transfer DNA insertion and the AtTIP4;1-overexpressed plants showed normal growth and development under normal or abiotic stress growth conditions. The urea-uptake studies using 14C-labeled urea revealed higher accumulation of urea in the AtTIP4;1-overexpressed plants. These results provide evidence that overexpression of AtTIP4;1 leads to the increase in the urea-uptake rate in plants without detectable defects to the growth and development.

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    참고문헌 (Reference)

    1 Bienert G.P., "specific aquaporins facilitate the diffusion of hydrogen peroxide across membranes" 282 : 1183-1192, 2007

    2 Ghosh S., "Use of a scanning densitometer of an ELISA plate reader for measurement of nanogram amounts of protein in crude extracts from biological tissue" 169 : 227-233, 1988

    3 Cooper T.G., "Urea transporter in Sacchromyces cerevisiae" 121 : 571-576, 1975

    4 Sumrada R., "Urea transport- defective strains of Saccharomyces cerevisiae" 125 : 1048-1053, 1976

    5 Liu L.H., "Urea transport by nitrogen-regulated tonoplast intrinsic proteins in Arabidopsis" 133 : 1220-1228, 2003

    6 Mitamura O., "Urea decomposing activity of fractionated brackish phytoplankton in Lake Biwa" 1 : 19-26, 2000

    7 Wilson M.R., "The transport and metabolism of urea in Chara australis III. Two specific transport systems" 39 : 763-774, 1988

    8 Uehlein N., "The tobacco aquaporin NtAQP1 is a membrane CO2 pore with physiological functions" 425 : 734-737, 2003

    9 Johanson U., "The complete set of genes encoding major intrinsic proteins in Arabidopsis provides a framework for a new nomenclature for major intrinsic proteins in plants" 126 : 1358-1369, 2001

    10 Fujiyoshi Y., "Structural and functional of water channels" 12 : 509-515, 2002

    1 Bienert G.P., "specific aquaporins facilitate the diffusion of hydrogen peroxide across membranes" 282 : 1183-1192, 2007

    2 Ghosh S., "Use of a scanning densitometer of an ELISA plate reader for measurement of nanogram amounts of protein in crude extracts from biological tissue" 169 : 227-233, 1988

    3 Cooper T.G., "Urea transporter in Sacchromyces cerevisiae" 121 : 571-576, 1975

    4 Sumrada R., "Urea transport- defective strains of Saccharomyces cerevisiae" 125 : 1048-1053, 1976

    5 Liu L.H., "Urea transport by nitrogen-regulated tonoplast intrinsic proteins in Arabidopsis" 133 : 1220-1228, 2003

    6 Mitamura O., "Urea decomposing activity of fractionated brackish phytoplankton in Lake Biwa" 1 : 19-26, 2000

    7 Wilson M.R., "The transport and metabolism of urea in Chara australis III. Two specific transport systems" 39 : 763-774, 1988

    8 Uehlein N., "The tobacco aquaporin NtAQP1 is a membrane CO2 pore with physiological functions" 425 : 734-737, 2003

    9 Johanson U., "The complete set of genes encoding major intrinsic proteins in Arabidopsis provides a framework for a new nomenclature for major intrinsic proteins in plants" 126 : 1358-1369, 2001

    10 Fujiyoshi Y., "Structural and functional of water channels" 12 : 509-515, 2002

    11 Watson C.J., "Soil properties and the ability of the urease inhibitor N-(N-Butyl)thiophosphoric triamide (NBTPT) to reduce ammonia volatilization from surface-applied urea" 26 : 1165-1171, 1994

    12 ElBerry H.M., "Regulation of the urea active transporter gene (DUR3) in Saccharomyces cerevisiae" 175 : 4688-4698, 1993

    13 Chaumont F., "Regulation of plant aquaporin activity" 97 : 749-764, 2005

    14 Vera-Estrella R., "Novel regulation of aquaporins during osmotic stress" 135 : 2318-2329, 2004

    15 Gallucci E., "Non-electrolyte permeability across thin lipid membranes" 79 : 881-887, 1971

    16 Eckert M., "New aspects of plant aquaporin regulation and specificity" 50 : 1541-1545, 1999

    17 Hong S.W., "Mutants of Arabidopsis thaliana defective in the acquisition of tolerance to high temperature stress" 97 : 4392-4397, 2000

    18 Jung J.S., "Molecular structure of the water channel through aquaporin CHIP. The hourglass model" 269 : 14648-14654, 1994

    19 Kojima S., "Molecular mechanisms of urea transport in plants" 212 : 83-91, 2006

    20 Turk E., "Membrane topology motifs in the SGLT cotransporter family" 159 : 1-20, 1997

    21 Quigley F., "From genome to function: the Arabidopsis aquaporins" 3 : 1-17, 2001

    22 Clough S.J., "Floral dip: a simplified method for Agrobacterium-mediated transformation of Arabidopsis thaliana" 16 : 735-743, 1998

    23 Zonia L.E., "Essential role of urease in germination of nitrogen-limited Arabidopsis thaliana seeds" 107 : 1097-1103, 1995

    24 Kwon Y., "Arabidopsis hot2 encodes an endochitinase-like protein that is essential for tolerance to heat, salt and drought stresses" 49 : 184-193, 2007

    25 Heymann J.B., "Aquaporins: phylogeny, structure, and physiology of water channels" 14 : 187-193, 1999

    26 Schaffner A.R., "Aquaporin function, structure, and expression: are there more surprises to surface in water relations?" 204 : 131-139, 1998

    27 Gerbeau P., "Aquaporin Nt-TIPa can account for the high permeability of tobacco cell vacuolar membrane to small neutral solutes" 18 : 577-587, 1999

    28 Ma J.F., "A silicon transporter in rice" 440 : 688-691, 2006

    29 Saier M.H. Jr., "A functional-phylogenetic classification system for transmembrane solute transporters" 64 : 354-411, 2000

    30 Reizer J., "A functional superfamily of sodium/solute symporters" 1197 : 133-166, 1994

    31 Klebl F., "A defect in the yeast plasma membrane urea transport Dur3p is complemented by CpNIP1, a Nod26-like protein from zucchini (Cucurbita pepo L.), and by Arabidopsis thaliana [dalta]-TIP or [gamma]-TIP" 547 : 69-74, 2003

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    2023 평가 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
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    2007-05-09 학술지명변경 한글명 : Agricultrual Chemistry and Biotechnology -> Journal of Applied Biological Chemistry
    외국어명 : 미등록 -> Journal of Applied Biological Chemistry
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    2003-01-01 등재 등재학술지 선정 (등재후보2차) KCI등재
    2002-01-01 등재 등재후보 1차 PASS (등재후보1차) KCI등재후보
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    기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
    2016 0.41 0.41 0.39
    KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
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