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描述从蓝藻(Noccaea caerulescens)中分离得到的高亲和力锌转运蛋白 NcZNT1,并解析其启动子在锌吸收和超积累中的作用。

Characterization of the high affinity Zn transporter from Noccaea caerulescens, NcZNT1, and dissection of its promoter for its role in Zn uptake and hyperaccumulation.

机构信息

Robert W. Holley Center for Agriculture and Health, USDA-ARS, Cornell University, Ithaca, NY 14853, USA.

出版信息

New Phytol. 2012 Jul;195(1):113-23. doi: 10.1111/j.1469-8137.2012.04144.x. Epub 2012 Apr 23.

Abstract

• In this paper, we conducted a detailed analysis of the ZIP family transporter, NcZNT1, in the zinc (Zn)/cadmium (Cd) hyperaccumulating plant species, Noccaea caerulescens, formerly known as Thlaspi caerulescens. NcZNT1 was previously suggested to be the primary root Zn/Cd uptake transporter. Both a characterization of NcZNT1 transport function in planta and in heterologous systems, and an analysis of NcZNT1 gene expression and NcZNT1 protein localization were carried out. • We show that NcZNT1 is not only expressed in the root epidermis, but also is highly expressed in the root and shoot vasculature, suggesting a role in long-distance metal transport. Also, NcZNT1 was found to be a plasma membrane transporter that mediates Zn but not Cd, iron (Fe), manganese (Mn) or copper (Cu) uptake into plant cells. • Two novel regions of the NcZNT1 promoter were identified which may be involved in both the hyperexpression of NcZNT1 and its ability to be regulated by plant Zn status. • In conclusion, we demonstrate here that NcZNT1 plays a role in Zn and not Cd uptake from the soil, and based on its strong expression in the root and shoot vasculature, could be involved in long-distance transport of Zn from the root to the shoot via the xylem.

摘要

• 在本文中,我们对锌/镉超积累植物物种,即先前被称为 Thlaspi caerulescens 的 Noccaea caerulescens 中的 ZIP 家族转运蛋白 NcZNT1 进行了详细分析。NcZNT1 先前被认为是主要的根 Zn/Cd 摄取转运蛋白。我们既对 NcZNT1 在植物体内和异源系统中的转运功能进行了表征,也对 NcZNT1 基因表达和 NcZNT1 蛋白定位进行了分析。 • 我们表明,NcZNT1 不仅在根表皮中表达,而且在根和茎维管束中高度表达,表明其在长距离金属运输中起作用。此外,还发现 NcZNT1 是一种质膜转运蛋白,可介导 Zn 但不能介导 Cd、Fe、Mn 或 Cu 进入植物细胞。 • 鉴定到 NcZNT1 启动子的两个新区域,它们可能参与 NcZNT1 的过度表达及其对植物 Zn 状态的调节能力。 • 总之,我们在此证明 NcZNT1 在 Zn 而不是 Cd 的摄取中起作用,并且基于其在根和茎维管束中的强表达,它可能参与 Zn 通过木质部从根到茎的长距离运输。

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