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Targeting of Pollen Tubes to Ovules Is Dependent on Nitric Oxide (NO) Signaling

机译:花粉管对胚珠的目标取决于一氧化氮(NO)信号。

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The guidance signals that drive pollen tube navigation inside the pistil and micropyle targeting are still, to a great extent, unknown. Previous studies in vitro showed that nitric oxide (NO) works as a negative chembtropic cue for pollen tube growthin lily (Lilium longiflorum). Furthermore, Arabidopsis thaliana Atnosl mutant plants, which show defective NO production, have reduced fertility. Here, we focus in the role of NO in the process of pollen-pistil communication, using Arabidopsis in-vivo and lily semi-vivo assays. Cross-pollination between wild-type and Atnosl plants shows that the mutation affects the pistil tissues in a way that is compatible with abnormal pollen tube guidance. Moreover, DAF-2DA staining for NO in kanadi floral mutants showed the presence of NO in an asymmetric restricted area around the micropyle. The pollen-pistil interaction transcriptome indicates a time-course-specific modulation of transcripts of AtNOS1 and two Nitrate Reductases (nr1 and nr2), which collectivelyare thought to trigger a putative NO signaling pathway. Semivivo assays with isolated ovules and lily pollen further showed that NO is necessary for micropyle targeting to occur. This evidence is supported by CPTIO treatment with subsequent formation ofballoon tips in pollen tubes facing ovules. Activation of calcium influx in pollen tubes partially rescued normal pollen tube morphology, suggesting that this pathway is also dependent on Ca~(2+) signaling. A role of NO in modulating Ca~(2+) signaling was further substantiated by direct imaging the cytosolic free Ca~(2+) concentration during NO-induced re-orientation, where two peaks of Ca~(2+) occur--one during the slowdown/stop response, the second during re-orientation and growth resumption. Taken together, these results provide evidence for the participation of NO signaling events during pollen-pistil interaction. Of special relevance, NO seems to directly affect the targeting of pollen tubes to the ovule's micropyle by modulating the action of itsdiffusible factors.
机译:在很大程度上,仍然不清楚驱动花粉管在雌蕊和微粒靶向中导航的引导信号。先前的体外研究表明,一氧化氮(NO)作为百合花粉管生长的负嗜性提示。此外,显示有缺陷的NO产生的拟南芥Atnosl突变体植物具有降低的繁殖力。在这里,我们使用拟南芥体内和百合半体内测定法,重点研究NO在花粉-雌蕊通讯过程中的作用。野生型和Atnosl植物之间的异花授粉表明,该突变以与异常花粉管引导兼容的方式影响雌蕊组织。此外,DAF-2DA对卡纳迪花突变体中的NO进行染色后,显示了在胶束周围不对称限制区域中存在NO。花粉-雌蕊相互作用转录组指示AtNOS1和两个硝酸还原酶(nr1和nr2)的转录物的时程特异性调节,它们共同被认为触发了假定的NO信号传导途径。用分离的胚珠和百合花粉进行的半活体测定进一步表明,NO成为靶向微生物的必要条件。 CPTIO处理支持此证据,随后在面对胚珠的花粉管中形成气球尖端。花粉管中钙内流的激活部分拯救了正常的花粉管形态,表明该途径也依赖于Ca〜(2+)信号传导。通过在NO诱导的重新定向过程中直接成像胞质游离Ca〜(2+)浓度进一步证实了NO在调节Ca〜(2+)信号传导中的作用,其中出现了两个Ca〜(2+)峰-一个在减速/停止响应期间,第二个在重新定向和恢复增长期间。两者合计,这些结果为花粉雌蕊相互作用期间NO信号事件的参与提供了证据。具有特殊意义的是,NO似乎可以通过调节其扩散因子的作用直接影响花粉管对胚珠微粒的靶向。

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