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蒺藜苜蓿 NAC 转录因子在根系非生物胁迫响应和共生结瘤衰老中的双重作用。

Dual involvement of a Medicago truncatula NAC transcription factor in root abiotic stress response and symbiotic nodule senescence.

机构信息

Institut des Sciences du Végétal (ISV), Centre National de la Recherche Scientifique, 91198 Gif sur Yvette Cedex, France.

出版信息

Plant J. 2012 Apr;70(2):220-30. doi: 10.1111/j.1365-313X.2011.04859.x. Epub 2012 Jan 10.

DOI:10.1111/j.1365-313X.2011.04859.x
PMID:22098255
Abstract

Legume crops related to the model plant Medicago truncatula can adapt their root architecture to environmental conditions, both by branching and by establishing a symbiosis with rhizobial bacteria to form nitrogen-fixing nodules. Soil salinity is a major abiotic stress affecting plant yield and root growth. Previous transcriptomic analyses identified several transcription factors linked to the M. truncatula response to salt stress in roots, including NAC (NAM/ATAF/CUC)-encoding genes. Over-expression of one of these transcription factors, MtNAC969, induced formation of a shorter and less-branched root system, whereas RNAi-mediated MtNAC969 inactivation promoted lateral root formation. The altered root system of over-expressing plants was able to maintain its growth under high salinity, and roots in which MtNAC969 was down-regulated showed improved growth under salt stress. Accordingly, expression of salt stress markers was decreased or induced in MtNAC969 over-expressing or RNAi roots, respectively, suggesting a repressive function for this transcription factor in the salt-stress response. Expression of MtNAC969 in central symbiotic nodule tissues was induced by nitrate treatment, and antagonistically affected by salt in roots and nodules, similarly to senescence markers. MtNAC969 RNAi nodules accumulated amyloplasts in the nitrogen-fixing zone, and were prematurely senescent. Therefore, the MtNAC969 transcription factor, which is differentially affected by environmental cues in root and nodules, participates in several pathways controlling adaptation of the M. truncatula root system to the environment.

摘要

豆科作物与模式植物蒺藜苜蓿相关,可以通过分枝和与根瘤菌建立共生关系形成固氮根瘤来适应环境条件。土壤盐度是影响植物产量和根生长的主要非生物胁迫。先前的转录组分析确定了几个与蒺藜苜蓿根对盐胁迫反应相关的转录因子,包括 NAC(NAM/ATAF/CUC)编码基因。这些转录因子之一 MtNAC969 的过表达诱导形成更短和更少分枝的根系,而 MtNAC969 的 RNAi 介导失活促进侧根形成。过表达植物的改变的根系能够在高盐度下维持其生长,而下调 MtNAC969 的根在盐胁迫下表现出更好的生长。因此,MtNAC969 过表达或 RNAi 根中的盐胁迫标记物的表达分别降低或诱导,表明该转录因子在盐胁迫反应中具有抑制功能。MtNAC969 在中央共生结瘤组织中的表达受硝酸盐处理诱导,并与根和结瘤中的盐相互拮抗,类似于衰老标记物。MtNAC969 RNAi 结瘤在固氮区积累淀粉体,并过早衰老。因此,MtNAC969 转录因子在根和结瘤中受到环境信号的不同影响,参与了控制蒺藜苜蓿根系适应环境的几个途径。

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