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丧失 HSFA9 种子长寿程序的功能。

Loss of function of the HSFA9 seed longevity program.

机构信息

Departamento de Biotecnología Vegetal, Instituto de Recursos Naturales y Agrobiología de Sevilla, CSIC Apartado 1052. Sevilla, ES-41080, Spain.

出版信息

Plant Cell Environ. 2010 Aug 1;33(8):1408-17. doi: 10.1111/j.1365-3040.2010.02159.x. Epub 2010 Apr 22.

Abstract

Gain of function approaches that have been published by our laboratory determined that HSFA9 (Heat Shock Factor A9) activates a genetic program contributing to seed longevity and to desiccation tolerance in plant embryos. We now evaluate the role(s) of HSFA9 by loss of function using different modified forms of HaHSFA9 (sunflower HSFA9), which were specifically overexpressed in seeds of transgenic tobacco. We used two inactive forms (M1, M2) with deletion or mutation of the transcription activation domain of HaHSFA9, and a third form (M3) with HaHSFA9 converted to a potent active repressor by fusion of the SRDX motif. The three forms showed similar protein accumulation in transgenic seeds; however, only HaHSFA9-SRDX showed a highly significant reduction of seed longevity, as determined by controlled deterioration tests, a rapid seed ageing procedure. HaHSFA9-SRDX impaired the genetic program controlled by the tobacco HSFA9, with a drastic reduction in the accumulation of seed heat shock proteins (HSPs) including seed-specific small HSP (sHSP) belonging to cytosolic (CI, CII) classes. Despite such effects, the HaHSFA9-SRDX seeds could survive developmental desiccation during embryogenesis and their subsequent germination was not reduced. We infer that the HSFA9 genetic program contributes only partially to seed-desiccation tolerance and longevity.

摘要

我们实验室发表的功能获得方法研究表明,HSFA9(热休克因子 A9)激活了一个遗传程序,有助于种子的长寿和植物胚胎的耐旱性。我们现在通过使用不同的 HaHSFA9(向日葵 HSFA9)的修饰形式来进行功能丧失研究,以评估 HSFA9 的作用。HaHSFA9 被特异性过表达在转基因烟草的种子中。我们使用了两种无活性形式(M1、M2),它们缺失或突变了 HaHSFA9 的转录激活结构域,第三种形式(M3)则通过融合 SRDX 基序将 HaHSFA9 转化为有效的活性抑制剂。这三种形式在转基因种子中的蛋白积累相似;然而,只有 HaHSFA9-SRDX 表现出种子寿命的显著降低,这是通过控制劣化测试确定的,这是一种快速的种子老化程序。HaHSFA9-SRDX 损害了由烟草 HSFA9 控制的遗传程序,导致种子热休克蛋白(HSPs)的积累急剧减少,包括属于细胞质(CI、CII)类的种子特异性小 HSP(sHSP)。尽管有这些影响,HaHSFA9-SRDX 种子能够在胚胎发生期间耐受发育性干燥,并且随后的发芽不受影响。我们推断,HSFA9 的遗传程序仅部分有助于种子耐旱性和寿命。

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