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Meristem maintenance and compound-leaf patterning utilize common genetic mechanisms in tomato

机译:分生组织维持和复叶模式利用番茄的常见遗传机制

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摘要

Balancing shoot apical meristem (SAM) maintenance and organ formation from its flanks is essential for proper plant growth and development and for the flexibility of organ production in response to internal and external cues. Leaves are formed at the SAM flanks and display a wide variability in size and form. Tomato (Solanum lycopersicum) leaves are compound with lobed margins. We exploited 18 recessive tomato mutants, representing four distinct phenotypic classes and six complementation groups, to track the genetic mechanisms involved in meristem function and compound-leaf patterning in tomato. In goblet (gob) mutants, the SAM terminates following cotyledon production, but occasionally partially recovers and produces simple leaves. expelled shoot (exp) meristems terminate after the production of several leaves, and these leaves show a reduced level of compoundness. short pedicel (spd) mutants are bushy, with impaired meristem structure, compact inflorescences, short pedicels and less compound leaves. In multi drop (mud) mutants, the leaves are more compound and the SAM tends to divide into two active meristems after the production of a few leaves. The range of leaf-compoundness phenotypes observed in these mutants suggests that compound-leaf patterning involves an array of genetic factors, which act successively to elaborate leaf shape. Furthermore, the results indicate that similar mechanisms underlie SAM activity and compound-leaf patterning in tomato.
机译:平衡芽顶分生组织(SAM)的维持和从其侧面形成器官对于适当的植物生长和发育以及器官生产对内部和外部线索的响应的灵活性至关重要。叶子在SAM侧面形成,并显示出大小和形式的广泛差异。番茄(Solanum lycopersicum)叶片具有浅裂边缘的复合物。我们利用18个隐性番茄突变体,分别代表4个不同的表型类别和6个互补组,来追踪参与番茄分生组织功能和复叶模式的遗传机制。在杯状(gob)突变体中,SAM在子叶生产后终止,但偶尔会部分恢复并产生简单的叶子。排出的嫩芽(exp)分生组织在产生数片叶子后终止,这些叶子显示出降低的复合水平。短花梗(spd)突变体浓密,分生组织结构受损,花序紧凑,花梗短,复叶少。在多滴(泥浆)突变体中,叶片具有更多的复合性,并且在产生少量叶片后,SAM倾向于分为两个活跃的分生组织。在这些突变体中观察到的叶复合表型的范围表明,复合叶模式涉及一系列遗传因子,这些遗传因子先后起作用以阐明叶片的形状。此外,结果表明类似的机制是番茄SAM活性和复叶模式的基础。

著录项

  • 来源
    《Planta》 |2007年第4期|941-951|共11页
  • 作者单位

    The Robert H. Smith Institute of Plant Sciences and Genetics in Agriculture and The Otto Warburg Minerva Center for Agricultural Biotechnology Faculty of Agricultural Food and Environmental Quality Sciences The Hebrew University of Jerusalem P.O. Box 12 Rehovot 76100 Israel;

    The Robert H. Smith Institute of Plant Sciences and Genetics in Agriculture and The Otto Warburg Minerva Center for Agricultural Biotechnology Faculty of Agricultural Food and Environmental Quality Sciences The Hebrew University of Jerusalem P.O. Box 12 Rehovot 76100 Israel;

    The Robert H. Smith Institute of Plant Sciences and Genetics in Agriculture and The Otto Warburg Minerva Center for Agricultural Biotechnology Faculty of Agricultural Food and Environmental Quality Sciences The Hebrew University of Jerusalem P.O. Box 12 Rehovot 76100 Israel;

    The Robert H. Smith Institute of Plant Sciences and Genetics in Agriculture and The Otto Warburg Minerva Center for Agricultural Biotechnology Faculty of Agricultural Food and Environmental Quality Sciences The Hebrew University of Jerusalem P.O. Box 12 Rehovot 76100 Israel;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Compound leaf; Leaf shape; Mutation; Shoot apical meristem; Tomato;

    机译:复叶;叶片形状;突变;射出的顶端分生组织;番茄;

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