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The SUS1 tetramer is flat, with two types of subunit interfaces, the A:B and A:D interfaces. The A:D interface is an interaction between the C-terminal extension and the linker, whereas the A:B interface is created by the interaction of adjacent EPBD domains. | The SUS1 tetramer is flat, with two types of subunit interfaces, the A:B and A:D interfaces. The A:D interface is an interaction between the C-terminal extension and the linker, whereas the A:B interface is created by the interaction of adjacent EPBD domains. | ||
| - | The active site of SUS1 is able to bind both fructose and UDP-glucose. UDP-glucose is mainly bound by the GT-BC domain, whereas the fructose in β-furanose form is bound within a pocket in the GT- | + | The active site of SUS1 is able to bind both fructose and UDP-glucose. UDP-glucose is mainly bound by the GT-BC domain, whereas the fructose in β-furanose form is bound within a pocket in the GT-BN domain. |
The GT-B domain is highly conserved in other isoforms and in the Sucrose-Phosphate Synthase. This conservation reinforce the evolutionary relationship of those enzymes. Furthermore, this domain is also conserved in other species. | The GT-B domain is highly conserved in other isoforms and in the Sucrose-Phosphate Synthase. This conservation reinforce the evolutionary relationship of those enzymes. Furthermore, this domain is also conserved in other species. | ||
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Structure and Functional aspects of Sucrose Synthase 1 from Arabidopsis thaliana
Sucrose Synthase 1 (EC:2.4.1.13), also known as the sucrose-UDP glucolsyltransferase 1, is a reversible enzyme allowing the synthesis or the degradation of sucrose in Arabidopsis thaliana. It is a 360 kDa tetramer and belongs to the Glycosyltransferase subfamily 4 (GT4).
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References
• 3D structure and informations mainly extracted from: The Structure of Sucrose Synthase-1 from Arabidopsis thaliana and Its Functional Implications. Zheng, Y., Anderson, S., Zhang, Y., Garavito, R.M. (2011) J.Biol.Chem. 286: 36108-36118.
• UniProt entry: P49040
• Brenda entry : 2.4.1.13
- ↑ Salerno GL, Curatti L Origin of sucrose metabolism in higher plants: when, how and why? Trends Plant Sci. 2003 Feb
- ↑ Baroja-Fernández, E., Muñoz, F.J., Saikusa, T., Rodríguez-López, M., Akazawa, T. and Pozueta-Romero, J. Sucrose synthase catalyzes the de novo production of ADP-glucose linked to starch biosynthesis in heterotrophic tissues of plants. Plant Cell Physiol.
- ↑ 11 Juan Gabriel Angeles N_U ~Nez. Study of sucrose synthase in arabdopsis seed : lacalization, regulation and function. Sciences of the U.
- ↑ Sucrose synthase oligomerization and F-actin association are regulated by sucrose concentration and phosphorylation. Duncan KA, Huber SC. Plant Cell Physiol. 2007 Nov; 48(11):1612-23.
- ↑ Salerno GL, Curatti L. Origin of sucrose metabolism in higher plants: when, how and why? Trends Plant Sci. 2003 Feb
- ↑ Determination of structural requirements and probable regulatory effectors for membrane association of maize Sucrose Synthase 1. Hardin SC, Duncan KA, Huber SC. Plant Physiol. 2006
- ↑ Phosphorylation of Sucrose Synthase at serine 170: occurrence and possible role as a signal for proteolysis. Hardin SC, Tang GQ, Scholz A, Holtgraewe D, Winter H, Huber SC. Plant J. 2003
- ↑ Glycosyltransferases: structures, functions, and mechanisms. Lairson LL, Henrissat B, Davies GJ, Withers SG. Annu Rev Biochem. 2008


