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Growth and cortical microtubule dynamics in shoot organs under microgravity and hypergravity conditions

机译:微匍匐和超高刻条件下芽器官的生长和皮质微管动态

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The body shape of plants varied in proportion to the logarithm of the magnitude of gravity in the range from microgravity to hypergravity to resist the gravitational force. Here we discuss the roles of cortical microtubule and 65kDa microtubule-associated protein-1 (MAP65-1) in gravity-induced modification of growth anisotropy. Microgravity stimulated elongation growth and suppressed lateral expansion in shoot organs, such as hypocotyls and epicotyls. On the other hand, hypergravity inhibited elongation growth and promoted lateral expansion in shoot organs. The number of cells with transverse microtubules was increased by microgravity, but decreased by hypergravity. Furthermore, the levels of MAP65-1, which is involved in the maintenance of the transverse microtubule orientation, were increased by microgravity, but decreased by hypergravity. Therefore, the regulation of orientation of cortical microtubules via changes in the levels of MAP65-1 may contribute to the modification of the body shape of plants to resist the gravitational force.
机译:植物的身体形状与远征着重力的对数变化,从微型匍匐到超高起以抵抗引力力。在这里,我们讨论皮质微管和65KDA微管相关蛋白-1(MAP65-1)在重力诱导的生长各向异性修饰中的作用。微匍匐刺激伸长率生长和抑制芽器官中的横向膨胀,例如幼杆胶质叶和偏离。另一方面,超高起抑制伸长率生长并促进芽器官中的横向膨胀。具有横向微管的细胞数量通过微匍匐增加,但通过超高的程度降低。此外,MAP65-1的水平涉及维持横向微管取向,通过微匍匐增加,但通过超高的程度降低。因此,通过MAP65-1水平的变化调节皮质微管的取向可以有助于改变植物的体形以抵抗引力。

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