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细胞骨架作为导航根瘤菌在豆科植物中建立共生根瘤的路线图。

Cytoskeleton as a roadmap navigating rhizobia to establish symbiotic root nodulation in legumes.

机构信息

Department of Biotechnology, Faculty of Science, Palacký University Olomouc, Olomouc, Czech Republic.

出版信息

Biotechnol Adv. 2023 Dec;69:108263. doi: 10.1016/j.biotechadv.2023.108263. Epub 2023 Sep 27.

Abstract

Legumes enter into symbiotic associations with soil nitrogen-fixing rhizobia, culminating in the creation of new organs, root nodules. This complex process relies on chemical and physical interaction between legumes and rhizobia, including early signalling events informing the host legume plant of a potentially beneficial microbe and triggering the nodulation program. The great significance of this plant-microbe interaction rests upon conversion of atmospheric dinitrogen not accessible to plants into a biologically active form of ammonia available to plants. The plant cytoskeleton consists in a highly dynamic network and undergoes rapid remodelling upon sensing various developmental and environmental cues, including response to attachment, internalization, and accommodation of rhizobia in plant root and nodule cells. This dynamic nature is governed by cytoskeleton-associated proteins that modulate cytoskeletal behaviour depending on signal perception and transduction. Precisely localized cytoskeletal rearrangements are therefore essential for the uptake of rhizobia, their targeted delivery, and establishing beneficial root nodule symbiosis. This review summarizes current knowledge about rhizobia-dependent rearrangements and functions of the cytoskeleton in legume roots and nodules. General patterns and nodule type-, nodule stage-, and species-specific aspects of actin filaments and microtubules remodelling are discussed. Moreover, emerging evidence is provided about fine-tuning the root nodulation process through cytoskeleton-associated proteins. We also consider future perspectives on dynamic localization studies of the cytoskeleton during early symbiosis utilizing state of the art molecular and advanced microscopy approaches. Based on acquired detailed knowledge of the mutualistic interactions with microbes, these approaches could contribute to broader biotechnological crop improvement.

摘要

豆科植物与土壤中的固氮根瘤菌形成共生关系,最终形成新的器官——根瘤。这个复杂的过程依赖于豆科植物和根瘤菌之间的化学和物理相互作用,包括早期信号事件,通知宿主豆科植物潜在有益的微生物,并触发结瘤程序。这种植物-微生物相互作用的重要意义在于将大气中的双氮转化为植物可利用的生物活性形式的氨。植物细胞骨架由一个高度动态的网络组成,在感知各种发育和环境信号时会发生快速重塑,包括对附着、内化和容纳根瘤菌进入植物根和根瘤细胞的反应。这种动态性质由细胞骨架相关蛋白控制,这些蛋白根据信号感知和转导来调节细胞骨架行为。因此,精确定位的细胞骨架重排对于根瘤菌的摄取、靶向输送以及建立有益的根瘤共生关系至关重要。这篇综述总结了目前关于根瘤菌依赖的细胞骨架重排以及在豆科植物根和根瘤中的功能的知识。讨论了肌动蛋白丝和微管重塑的一般模式以及与结节类型、结节阶段和物种特异性相关的方面。此外,还提供了关于通过细胞骨架相关蛋白精细调节根瘤形成过程的新证据。我们还考虑了利用最先进的分子和高级显微镜方法在早期共生过程中对细胞骨架进行动态定位研究的未来前景。基于与微生物相互作用的详细知识,这些方法可以为更广泛的生物技术作物改良做出贡献。

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