Sucrose transporter LeSUT1 and LeSUT2 inhibition affects tomato fruit development in different ways

被引:223
作者
Hackel, A
Schauer, N
Carrari, F
Fernie, AR
Grimm, B
Kühn, C
机构
[1] Humboldt Univ, Dept Biol, D-10115 Berlin, Germany
[2] Max Planck Inst Mol Pflanzenphysiol, D-14476 Potsdam, Germany
关键词
metabolic profile; phloem unloading; pollen germination; sucrose transport; seed and fruit development;
D O I
10.1111/j.1365-313X.2005.02572.x
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Sucrose transporters of higher plants belong to a large gene family. At least four different sucrose transporters are known in Solanaceous plants, although their function remains to be elucidated in detail. The isolation of LeSUT1 and LeSUT2 from Lycopersicon esculentum has been described earlier. Whereas SUT1 is supposed to be the main phloem loader of sucrose in Solanaceae, the role of SUT2 remains a matter of debate. A transgenic approach was taken to evaluate the potential functions of SUT2/SUC3 proteins in sucrose transport or sensing. Expression of LeSUT1 and LeSUT2 was inhibited independently in transgenic tomato plants, using the antisense technique, in order to analyse their specific functions. Although the phloem-specific inhibition of LeSUT1 antisense plants showed a phenotype consistent with an essential role in phloem loading, constitutive LeSUT2 antisense inhibition exclusively affected tomato fruit and seed development. Neither LeSUT1, nor the LeSUT2 antisense plants were able to produce normal tomato fruits; however, it is likely that independent mechanisms underlie these phenomena. While phloem loading was blocked in LeSUT1 antisense plants, the fertility of fruits was reduced in LeSUT2 antisense plants. A detailed physiological analysis of these plants established a role for SUT2 in pollen tube growth and thus assigned a physiological role for SUT2.
引用
收藏
页码:180 / 192
页数:13
相关论文
共 49 条
[31]   AtSUC3, a gene encoding a new Arabidopsis sucrose transporter, is expressed in cells adjacent to the vascular tissue and in a carpel cell layer [J].
Meyer, S ;
Melzer, M ;
Truernit, E ;
Hümmer, C ;
Besenbeck, R ;
Stadler, R ;
Sauer, N .
PLANT JOURNAL, 2000, 24 (06) :869-882
[32]   A REVISED MEDIUM FOR RAPID GROWTH AND BIO ASSAYS WITH TOBACCO TISSUE CULTURES [J].
MURASHIGE, T ;
SKOOG, F .
PHYSIOLOGIA PLANTARUM, 1962, 15 (03) :473-497
[33]  
OFFLER C E, 1992, Plant Physiology (Rockville), V99, P41
[34]   Post-sieve element transport of photoassimilates in sink regions [J].
Patrick, JW ;
Offler, CE .
JOURNAL OF EXPERIMENTAL BOTANY, 1996, 47 :1165-1177
[35]   Use of digital image analysis, viability stains, and germination assays to estimate conventional and glyphosate-resistant cotton pollen viability [J].
Pline, WA ;
Edmisten, KL ;
Oliver, T ;
Wilcut, JW ;
Wells, R ;
Allen, NS .
CROP SCIENCE, 2002, 42 (06) :2193-2200
[36]   Protein-protein interactions between sucrose transporters of different affinities colocalized in the same enucleate sieve element [J].
Reinders, A ;
Schulze, W ;
Kühn, C ;
Barker, L ;
Schulz, A ;
Ward, JM ;
Frommer, WB .
PLANT CELL, 2002, 14 (07) :1567-1577
[37]  
RIESMEIER JW, 1994, EMBO J, V13, P1
[38]   POTATO SUCROSE TRANSPORTER EXPRESSION IN MINOR VEINS INDICATES A ROLE IN PHLOEM LOADING [J].
RIESMEIER, JW ;
HIRNER, B ;
FROMMER, WB .
PLANT CELL, 1993, 5 (11) :1591-1598
[39]  
Roessner U, 2001, PLANT PHYSIOL, V127, P749, DOI [10.1104/pp.010316, 10.1104/pp.127.3.749]
[40]   De novo amino acid biosynthesis in potato tubers is regulated by sucrose levels [J].
Roessner-Tunali, U ;
Urbanczyk-Wochniak, E ;
Czechowski, T ;
Kolbe, A ;
Willmitzer, L ;
Fernie, AR .
PLANT PHYSIOLOGY, 2003, 133 (02) :683-692