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表达 P(1B)-ATPase 的转基因番茄植株的金属反应。

Metal response of transgenic tomato plants expressing P(1B) -ATPase.

机构信息

Institute of Experimental Plant Biology and Biotechnology, Faculty of Biology, University of Warsaw, Miecznikowa 1, PL-02-096 Warszawa, Poland.

出版信息

Physiol Plant. 2012 Jun;145(2):315-31. doi: 10.1111/j.1399-3054.2012.01584.x. Epub 2012 Mar 13.

Abstract

Heterologous expression of HMA4 (P(1B) -ATPase) in plants is a useful strategy to engineer altered metal distribution in tissues for biofortification or phytoremediation purposes. This study contributes to understanding mechanisms underlying complex Zn-dependent phenotypes observed in transgenic plants and to better predict the consequences of transgene expression. Tomato was transformed with AhHMA4(p1) ::AhHMA4 from Arabidopsis halleri encoding the Zn export protein involved in xylem loading of Zn. Homozygous lines were tested for Zn tolerance, Zn and Fe concentrations in organs and in the apoplastic fluid, and for the expression of the transgene and tomato metal homeostasis endogenes. Expression of AhHMA4 facilitates root-to-shoot Zn translocation and induces Zn uptake in a Zn supply-dependent manner. Unexpectedly, it increases Zn excess-triggered Fe deficiency in leaves and transcriptional activation of Fe-uptake systems in roots. Moreover, AhHMA4 expression causes Zn overload of the apoplast, which may contribute to enhanced Zn sensitivity of transgenics and may lead to cell-wall remodeling. This study highlights that alteration of the apoplast/symplast Zn status through introduction of cellular Zn export activity via AhHMA4 may alter tomato metal homeostasis network, thus seems to be crucial in the generation of the phenotype of transgenic tomato.

摘要

在植物中异源表达 HMA4(P(1B)-ATPase)是一种有用的策略,可以改变组织中的金属分布,以实现生物强化或植物修复的目的。本研究有助于理解转基因植物中观察到的复杂 Zn 依赖性表型的机制,并更好地预测转基因表达的后果。本研究用来自 Arabidopsis halleri 的 AhHMA4(p1) ::AhHMA4 转化番茄,该基因编码参与 Zn 木质部装载的 Zn 外排蛋白。对纯合系进行了 Zn 耐受性、器官和质外体液中 Zn 和 Fe 浓度以及转基因和番茄金属稳态内基因表达的测试。AhHMA4 的表达促进了根到茎的 Zn 转运,并以 Zn 供应依赖的方式诱导 Zn 吸收。出乎意料的是,它增加了 Zn 过量触发的叶片 Fe 缺乏和根系 Fe 摄取系统的转录激活。此外,AhHMA4 的表达导致质外体的 Zn 过载,这可能有助于增强转基因的 Zn 敏感性,并可能导致细胞壁重塑。本研究强调,通过引入细胞内 Zn 外排活性通过 AhHMA4 改变质外体/共质体 Zn 状态可能会改变番茄金属稳态网络,因此在产生转基因番茄的表型方面似乎至关重要。

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