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NAC 结构域功能和次生细胞壁主开关的转录控制。

NAC domain function and transcriptional control of a secondary cell wall master switch.

机构信息

Plant Biology Division, Samuel Roberts Noble Foundation, Ardmore, OK 73401, USA.

出版信息

Plant J. 2011 Dec;68(6):1104-14. doi: 10.1111/j.1365-313X.2011.04764.x. Epub 2011 Oct 10.

Abstract

NAC domain transcription factors act as master switches for secondary cell wall thickening, but how they exert their function and how their expression is regulated remains unclear. Here we identify a loss-of-function point mutation in the NST1 gene of Medicago truncatula. The nst1-3 mutant shows no lignification in interfascicular fibers, as previously seen in tnt1 transposon insertion alleles. However, the C→A transversion, which causes a T94K mutation in the NST1 protein, leads to increased NST1 expression. Introduction of the same mutation into the Arabidopsis homolog SND1 causes both protein mislocalization and loss of target DNA binding, with a resultant inability to trans-activate downstream secondary wall synthesis genes. Furthermore, trans-activation assays show that the expression of SND1 operates under positive feedback control from itself, and SND1 was shown to bind directly to a conserved motif in its own promoter, located within a recently described 19-bp secondary wall NAC binding element. Three MYB transcription factors downstream of SND1, one of which is directly regulated by SND1, exert negative regulation on SND1 promoter activity. Our results identify a conserved amino acid critical for NST1/SND1 function, and show that the expression of the NAC master switch itself is under both positive (autoregulatory) and negative control.

摘要

NAC 结构域转录因子作为次生细胞壁加厚的主开关,但它们如何发挥作用以及它们的表达如何被调控尚不清楚。在这里,我们鉴定出了蒺藜苜蓿 NST1 基因的一个功能丧失点突变。nst1-3 突变体在束间纤维中没有木质化,这与 tnt1 转座子插入等位基因之前的观察结果一致。然而,导致 NST1 蛋白 T94K 突变的 C→A 颠换,导致 NST1 表达增加。将相同的突变引入拟南芥同源物 SND1 中,导致蛋白质定位错误和靶 DNA 结合丧失,从而无法正向激活下游次生壁合成基因。此外,转录激活实验表明,SND1 的表达受自身的正反馈控制,并且 SND1 被证明直接结合到其自身启动子中的保守基序上,该基序位于最近描述的 19 个碱基对的次生壁 NAC 结合元件内。SND1 下游的三个 MYB 转录因子,其中一个受 SND1 直接调控,对 SND1 启动子活性施加负调控。我们的结果确定了一个对 NST1/SND1 功能至关重要的保守氨基酸,并表明 NAC 主开关本身的表达受到正(自调控)和负控制的调节。

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