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Diverse Functional Roles of Monosaccharide Transporters and their Homologs in Vascular Plants: A Physiological Perspective 被引量:34

Diverse Functional Roles of Monosaccharide Transporters and their Homologs in Vascular Plants: A Physiological Perspective
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摘要 Vascular plants contain two gene families that encode monosaccharide transporter proteins. The classical monosaccharide transporter(-like) gene superfamily is large and functionally diverse, while the recently identified SWEET transporter family is smaller and, thus far, only found to transport glucose. These transporters play essential roles at many levels, ranging from organelles to the whole plant. Many family members are essential for cellular homeostasis and reproductive success. Although most transporters do not directly participate in long-distance transport, their indirect roles greatly impact carbon allocation and transport flux to the heterotrophic tissues of the plant. Functional characterization of some members from both gene families has revealed their diverse roles in carbohydrate partitioning, phloem function, resource allocation, plant defense, and sugar signaling. This review highlights the broad impacts and implications of monosaccharide transport by describing some of the functional roles of the monosaccharide transporter(-like) superfamily and the SWEET transporter family. Vascular plants contain two gene families that encode monosaccharide transporter proteins. The classical monosaccharide transporter(-like) gene superfamily is large and functionally diverse, while the recently identified SWEET transporter family is smaller and, thus far, only found to transport glucose. These transporters play essential roles at many levels, ranging from organelles to the whole plant. Many family members are essential for cellular homeostasis and reproductive success. Although most transporters do not directly participate in long-distance transport, their indirect roles greatly impact carbon allocation and transport flux to the heterotrophic tissues of the plant. Functional characterization of some members from both gene families has revealed their diverse roles in carbohydrate partitioning, phloem function, resource allocation, plant defense, and sugar signaling. This review highlights the broad impacts and implications of monosaccharide transport by describing some of the functional roles of the monosaccharide transporter(-like) superfamily and the SWEET transporter family.
出处 《Molecular Plant》 SCIE CAS CSCD 2011年第4期641-662,共22页 分子植物(英文版)
关键词 Monosaccharide transporters sugar transport membrane transport HEXOSES sugar alcohols carbohydrate partitioning. Monosaccharide transporters sugar transport membrane transport hexoses sugar alcohols carbohydrate partitioning.
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  • 1Jurgens, S.K., Johnson, R.R., and Boyer, J.S. (1978). Dry matter production and translocation in maize subjected to drought during grain fill. Agronomy J. 70, 678-682.
  • 2Asano, N., Nash, R.J., Molyneux, R.J., and Fleet, G.W. (2000). Sugarmimic glycosidase inhibitors: natural occurrence, biological activity and prospects for therapeutic application. Tetrahedon. 11, 645-1680.
  • 3Bate, N.J., Niu, X., Wang, Y., Reimann, K.S., and Helentjaris, T.G. (2004). An invertase inhibitor from maize localizes to the embryo surrounding region during early kernel development. Plant Physiol. 134, 246-254.
  • 4Benhamou, N., Grenier, J., and Chrispeels, M.J. (1991). Accumulation of β-fructosidase in the cell walls of tomato roots following infection by a fungal wilt pathogen. Plant Physiol. 97, 739-750.
  • 5Berger, S., Papadopoulos, M., Schreiber, U., Kaiser, W., and Roitsch, T. (2004). Complex regulation of gene expression, photosynthesis and sugar levels by pathogen infection in tomato. Physiol. Plant. 122, 419-428.
  • 6Berger, S., Sinha, A.K,, and Roitsch, T. (2007). Plant physiology meets phytopathology: plant primary metabolism and plantpathogen interactions. J. Exp. Bot. 58, 4019-4026.
  • 7Bonfig, K.B., Schreiber, U., Gabler, A., Roitsch, T., and Berger, S. (2006). Infection with virulent and avirulent P syringae strains differentially affects photosynthesis and sink metabolism in Arabidopsis leaves. Planta. 225, 1-12.
  • 8Brunkhorst, C. (2004). Untersuchungen zum Acarbose-Metabolismus von Actinoplanes sp,: Charakterisierung der Maltose/Maltotriose- Transportaktivitaten sowie eines potentiellen ABC-Transporters fur Acarbose. PhD thesis.
  • 9Brunkhorst, C., Andersen, C., and Schneider, E. (1999). Acarbose, a pseudooligosaccharide, is transported but not metabolized by the maltose-maltodextrin system of Escherichia coli. J. Bacteriol, 181, 2612-2619,.
  • 10Chou, H., Bundock, N., Rolfe, S., and Scholes, J. (2000). Infection of Arabidopsis thaliana leaves with Albugo candida causes a reprograrnrning of host metabolism. Mol. Plant Pathol. 1, 99-113.

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