LeFRK2 is required for phloem and xylem differentiation and the transport of both sugar and water

被引:0
|
作者
Hila Damari-Weissler
Shimon Rachamilevitch
Roni Aloni
Marcelo A. German
Shabtai Cohen
Maciej A. Zwieniecki
N. Michele Holbrook
David Granot
机构
[1] Agricultural Research Organization,Institute of Plant Sciences
[2] The Volcani Center,Albert Katz Department of Dryland Biotechnologies, Blaustein Institute for Desert Research
[3] Ben Gurion University,Department of Plant Sciences
[4] Tel Aviv University,Institute of Soils, Water and Environmental Sciences
[5] Agricultural Research Organization,Arnold Arboretum
[6] The Volcani Center,Organismic and Evolutionary Biology
[7] Harvard University,undefined
[8] Harvard University,undefined
来源
Planta | 2009年 / 230卷
关键词
Antisense; Fructokinase; Fructose; Phloem; Sucrose; Xylem;
D O I
暂无
中图分类号
学科分类号
摘要
It has been suggested that LeFRK2, the major fructose-phosphorylating enzyme in tomato plants, may be required for stem xylem development. Yet, we do not know if this enzyme affects the development of individual vessels, whether it affects water conductance, or whether it affects phloem development and sugar transport. Here, we show that suppression of LeFRK2 results in a significant reduction in the size of vascular cells and slows fiber maturation. The vessels in stems of LeFRK2-antisense plants are narrower than in WT plants and have thinner secondary cell walls. Although the cambium produces rounded secondary vessels, these vessels become deformed during the early stages of xylem maturation. Water conductance is then reduced in stems, roots, and leaves, suggesting that LeFRK2 influences xylem development throughout the entire vascular system. Interestingly, the build-up of positive xylem pressure under static (no-flow) conditions was also decreased. Suppression of LeFRK2 reduced the length and width of the sieve elements, as well as callose deposition. To examine the effect of LeFRK2 suppression on phloem transport, we created triple-grafted plants in which a portion of the wild-type stem was replaced with an antisense interstcok, and compared the contents of the transported sugar, sucrose, in the different portions of these stems. Sucrose contents above and within the LeFRK2-antisense interstock were significantly higher than those below the graft. These results show that the antisense interstock restricted the downward movement of sucrose, suggesting that LeFRK2 is required for both phloem and xylem development.
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页码:795 / 805
页数:10
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