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在丛枝菌根共生过程中,根皮层的发育通过MIGs、SCL3和DELLA之间的相互作用进行微调。

Root cortex development is fine-tuned by the interplay of MIGs, SCL3 and DELLAs during arbuscular mycorrhizal symbiosis.

作者信息

Seemann Christine, Heck Carolin, Voß Stefanie, Schmoll Jana, Enderle Eileen, Schwarz Diana, Requena Natalia

机构信息

Molecular Phytopathology, Botanical Institute, Karlsruhe Institute of Technology (KIT), Fritz-Haber-Weg 4, D-76131, Karlsruhe, Germany.

出版信息

New Phytol. 2022 Jan;233(2):948-965. doi: 10.1111/nph.17823. Epub 2021 Nov 10.

DOI:10.1111/nph.17823
PMID:34693526
Abstract

Root development is a crucial process that determines the ability of plants to acquire nutrients, adapt to the substrate and withstand changing environmental conditions. Root plasticity is controlled by a plethora of transcriptional regulators that allow, in contrast to tissue development in animals, post-embryonic changes that give rise to new tissue and specialized cells. One of these changes is the accommodation in the cortex of hyperbranched hyphae of symbiotic arbuscular mycorrhizal (AM) fungi, called arbuscules. Arbuscule-containing cells undergo massive reprogramming to coordinate developmental changes with transport processes. Here we describe a novel negative regulator of arbuscule development, MIG3. MIG3 induces and interacts with SCL3, both of which modulate the activity of the central regulator DELLA, restraining cortical cell growth. As in a tug-of-war, MIG3-SCL3 antagonizes the function of the complex MIG1-DELLA, which promotes the cell expansion required for arbuscule development, adjusting cell size during the dynamic processes of the arbuscule life cycle. Our results in the legume plant Medicago truncatula advance the knowledge of root development in dicot plants, showing the existence of additional regulatory elements not present in Arabidopsis that fine-tune the activity of conserved central modules.

摘要

根系发育是一个关键过程,它决定了植物获取养分、适应基质以及抵御不断变化的环境条件的能力。与动物的组织发育不同,根系可塑性受大量转录调节因子控制,这些调节因子允许胚胎后发生变化,从而产生新的组织和特化细胞。其中一种变化是共生丛枝菌根(AM)真菌的高度分支菌丝在皮层中的容纳,即丛枝。含丛枝的细胞会经历大规模的重编程,以协调发育变化与运输过程。在此,我们描述了一种丛枝发育的新型负调节因子MIG3。MIG3诱导SCL3并与之相互作用,二者均调节中心调节因子DELLA的活性,抑制皮层细胞生长。就像一场拔河比赛,MIG3 - SCL3拮抗MIG1 - DELLA复合物的功能,后者促进丛枝发育所需的细胞扩张,在丛枝生命周期的动态过程中调节细胞大小。我们在豆科植物蒺藜苜蓿中的研究结果推进了对双子叶植物根系发育的认识,表明拟南芥中不存在的其他调节元件的存在,这些元件可微调保守中心模块的活性。

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