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Salt Stress Affects Cortical Microtubule Organization and Helical Growth in Arabidopsis

机译:盐胁迫影响拟南芥的皮质微管组织和螺旋生长。

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Cortical microtubule arrays are critical in determining the growth axis of diffusely growing plant cells, and various environmental and physiological factors are known to affect the array organization. Microtubule organization is partly disrupted in the spiral1 mutant of Arabidopsis thaliana, which displays a right-handed helical growth phenotype in rapidly elongating epidermal cells. We show here that mutations in the plasma membrane Na+/H+ antiporter SOS1 and its regulatory kinase SOS2 efficiently suppressed both microtubule disruption and helical growth phenotypes of spiral1, and that sos1 and sos2 roots in the absence of salt stress exhibited altered helical growth response to microtubule-interacting drugs at low doses. Salt stress also altered root growth response to the drugs in wild-type roots. Suppression of helical growth appeared to be specific to spiral1 since other helical growth mutants were not rescued. The effects of sos1 in suppressing spiral1 defects and in causing abnormal drug responses were nullified in the presence of the hkt1 Na+ influx carrier mutation in roots but not in hypocotyls. These results suggest that cytoplasmic salt imbalance caused by insufficient SOS1 activity compromises cortical microtubule functions in which microtubule-localized SPIRAL1 is specifically involved.
机译:皮质微管阵列对于确定弥散生长的植物细胞的生长轴至关重要,众所周知,各种环境和生理因素都会影响阵列的组织。在拟南芥的spiral1突变体中,微管的组织被部分破坏,该突变体在快速伸长的表皮细胞中显示出右旋的螺旋生长表型。我们在这里显示质膜Na + / H + 反转运蛋白SOS1及其调节激酶SOS2的突变有效地抑制了Spiral1的微管破坏和螺旋生长表型,并且sos1在没有盐胁迫的情况下,sos2和sos2根在低剂量下对微管相互作用药物表现出改变的螺旋生长反应。盐胁迫还改变了野生型根中对药物的根生长反应。螺旋生长的抑制似乎是对spiral1特有的,因为没有拯救其他螺旋生长突变体。在根中存在hkt1 Na + 内流载体突变的情况下,sos1在抑制Spiral1缺陷和引起异常药物反应中的作用无效,而在下胚轴中则没有。这些结果表明,由SOS1活性不足引起的细胞质盐失衡损害了皮层微管的功能,其中微管定位的SPIRAL1特别参与其中。

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