首页> 美国卫生研究院文献>Plant Physiology >Gibberellin-Induced Changes in Growth Anisotropy Precede Gibberellin-Dependent Changes in Cortical Microtubule Orientation in Developing Epidermal Cells of Barley Leaves. Kinematic and Cytological Studies on a Gibberellin-Responsive Dwarf Mutant M489
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Gibberellin-Induced Changes in Growth Anisotropy Precede Gibberellin-Dependent Changes in Cortical Microtubule Orientation in Developing Epidermal Cells of Barley Leaves. Kinematic and Cytological Studies on a Gibberellin-Responsive Dwarf Mutant M489

机译:赤霉素诱导的生长各向异性变化先于赤霉素依赖的大麦叶表皮细胞皮质微管取向变化。赤霉素反应性矮突变体M489的运动学和细胞学研究

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摘要

We conducted kinematic and cytological studies on “between vein” epidermal cells of the gibberellin (GA)-deficient M489 dwarf mutant of barley (Hordeum vulgare L. Himalaya). GAs affect radial and axial components of cell expansion and cortical microtubule orientation. Adaxial cells in particular expand radially after leaving the elongation zone (EZ), probably as part of leaf unrolling. Exogenous gibberellic acid corrects the mutant's short, wide blades, short EZ, and slow elongation rate. Cell production rates increase more on the adaxial than on the abaxial surface. Cells spend equal periods of time elongating in dwarf and tall plants, but relative elemental growth rates start to decline sooner in the dwarf. GA increased the rate at which longitudinal wall area increased because the increased axial growth more than compensated for reduced radial growth. In dwarf leaves, increased radial expansion was detected in basal parts of the EZ before cortical microtubules lost transverse orientation in the distal elongation zone. We conclude that loss of microtubule orientation is not required for low GA levels to reduce growth anisotropy.
机译:我们对赤霉素(GA)缺失的大麦M489矮突变体的“静脉之间”表皮细胞进行了运动学和细胞学研究。 GA会影响细胞扩张和皮质微管方向的径向和轴向成分。尤其是近端细胞离开伸长区(EZ)后可能会径向扩张,这可能是叶片展开的一部分。外源赤霉素可以纠正突变体的短而宽的叶片,短的EZ和缓慢的延伸速率。电池的生产率在近轴上比在远轴上增加更多。细胞在矮小和高大的植物中花费相同的时间,但是相对的元素生长速率开始在矮小中更快地下降。 GA增加了纵向壁面积的增加速率,因为轴向增长的增加足以弥补径向增长的减少。在矮叶中,在皮质微管在远端延伸区失去横向取向之前,在EZ的基部检测到径向扩展增加。我们得出的结论是,低GA水平不需要微管取向的损失来降低生长各向异性。

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