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Molecular regulation of sucrose catabolism and sugar transport for development~ defence and phloem function 被引量:9

Molecular regulation of sucrose catabolism and sugar transport for development,defence and phloem function
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摘要 Sucrose (Suc) is the major end product of photosynthesis in mesophyll cells of most vascular plants. It is loaded into phloem of mature leaves for long-distance translocation to non-photosynthetic organs where it is unloaded for diverse uses. Clearly, Suc transport and metabolism is central to plant growth and development and the functionality of the entire vascular system. Despite vast information in the literature about the physiological roles of individual sugar metabolic enzymes and transporters, there is a lack of systematic evaluation about their molecular regulation from transcriptional to post-translational levels. Knowledge on this topic is essential for understanding and improving plant development, optimizing resource distri- bution and increasing crop productivity. We therefore focused our analyses on molecular control of key players in Suc metabolism and transport, including: (i) the identifica- tion of promoter elements responsive to sugars and hormones or targeted by transcription factors and micro- RNAs degrading transcripts of target genes; and (ii) modulation of enzyme and transporter activities through protein-protein interactions and other post-translational modifications. We have highlighted major remaining questions and discussed opportunities to exploit current understanding to gain new insights into molecular control of carbon partitioning for improving plant performance. Sucrose (Suc) is the major end product of photosynthesis in mesophyll cells of most vascular plants. It is loaded into phloem of mature leaves for long-distance translocation to non-photosynthetic organs where it is unloaded for diverse uses. Clearly, Suc transport and metabolism is central to plant growth and development and the functionality of the entire vascular system. Despite vast information in the literature about the physiological roles of individual sugar metabolic enzymes and transporters, there is a lack of systematic evaluation about their molecular regulation from transcriptional to post-translational levels. Knowledge on this topic is essential for understanding and improving plant development, optimizing resource distri- bution and increasing crop productivity. We therefore focused our analyses on molecular control of key players in Suc metabolism and transport, including: (i) the identifica- tion of promoter elements responsive to sugars and hormones or targeted by transcription factors and micro- RNAs degrading transcripts of target genes; and (ii) modulation of enzyme and transporter activities through protein-protein interactions and other post-translational modifications. We have highlighted major remaining questions and discussed opportunities to exploit current understanding to gain new insights into molecular control of carbon partitioning for improving plant performance.
出处 《Journal of Integrative Plant Biology》 SCIE CAS CSCD 2017年第5期322-335,共14页 植物学报(英文版)
基金 financially supported by Australia Research Council(DP110104931,DP120104148)to YLR
关键词 William J. Lucas University of California DAVIS USA William J. Lucas, University of California, Davis, USA
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  • 1Romer, R, Recht, S., and Lahaye, T. (2009a). A single plant resistance gene promoter engineered to recognize multipleTAL effectors from disparate pathogens. Proc. Natl Acad. Sci. U S A. 106, 20526-20531.
  • 2Romer, R, Strauss, T., Hahn, S., Scholze, H., Morbitzer, R., Grau, J., Bonas, U., and Lahaye, T. (2009b). Recognition of AvrBs3-like proteins is mediated by specific binding to promoters of match- ing pepper Bs3 alleles. Plant Physiol. 150, 1697-1712.
  • 3Sun, X., Cao, Y., Yang, Z., Xu, C., Li, X., Wang, S., and Zhang, Q. (2004). Xa26, a gene conferring resistance to Xanthomonas oryzae pv. oryzae in rice, encodes an LRR receptor kinase-like protein. Plant J. 37, 517-527.
  • 4Yang, B., Sugio, A., and White, F.F. (2006). OsSN3 is a host disease- susceptibility gene for bacterial blight of rice. Proc. Natl Acad. Sci. U S A. 103, 10503-10508.
  • 5Yuan, M., Chu, Z., Li, X., Xu, C., and Wang, S. (2009). Pathogeninduced expressional loss of function is the key factor in racespecific bacterial resistance conferred by a recessive R gene xa13 in rice. Plant Cell Physiol. 50, 947-955.
  • 6Yuan, M., Chu, Z., Li, X., Xu, C., and Wang, S. (2010). The bacterial pathogen Xanthomonas oryzae overcomes rice defenses by regulating host copper redistribution. Plant Cell. 22, 3164-2176.
  • 7Boch, J., Scholze, H., Schornack, S., Landgraf, A., Hahn, S., Kay, S., Lahaye, T., Nickstadt, A., and Bonas, U. (2009). Breaking the code of DNA binding specificity of TAL-type III effectors. Science. 326, 1509-1512.
  • 8Bradford, M.M. (1976). A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. Anal. Biochem. 72, 248-254.
  • 9Cai, M., Wei, J., Li, X., Xu, C., and Wang, S. (2007). A rice promoter containing both novel positive and negative c/s-elements for regulating green-tissue-specific gene expression in transgenic plants. Plant Biotechnol. J. 5, 664-674.
  • 10Chu, Z., and Wang, S. (2007). Isolation, structure, function relationship, and molecular evolution of disease resistance genes. In Genetics and Improvement of Resistance to Bacterial Blight in Rice, Zhang Q., ed. (Beijing: Science Press), pp. 349-377.

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