Ho-Plágaro Tania, Usman Muhammad, Swinnen Janne, Ruytinx Joske, Gosti Françoise, Gaillard Isabelle, Zimmermann Sabine D
IPSiM, Univ Montpellier, CNRS, INRAE, Institut Agro, Montpellier, France.
Research Groups Microbiology and Plant Genetics, Department of Bioengineering Science, Vrije Universiteit Brussel, Brussel, Belgium.
Front Plant Sci. 2024 Aug 22;15:1466279. doi: 10.3389/fpls.2024.1466279. eCollection 2024.
Zinc (Zn) shortage is a common micronutrient deficiency affecting plants worldwide, while Zn toxicity may occur when this metal is in excess. Ectomycorrhizal (ECM) fungi are known to be able to modulate the transfer of macro- and microelements, among them Zn, to the plant. However, the underlying mechanisms are not well understood. We identified the gene from the ECM fungus , encoding a member of the Cation Diffusion Facilitator (CDF) family including Zn transporters, and analyzed its transcriptional regulation, the transport function by yeast complementation experiments, and its subcellular localization using a GFP fusion protein in yeast. is highly induced during mycorrhization of , and upregulated in presence of the host plant root even without any direct contact. However, is repressed by Zn excess conditions. By functional expression in yeast, our results strongly support the ability of HcZnT2 to transport Zn and, to a lesser extent, manganese. HcZnT2 localization was associated with the endoplasmic reticulum of yeast. Mycorrhizal gene activation at low external Zn suggests that the Zn transporter HcZnT2 might be important for the early establishment of the ECM symbiosis during Zn deficiency, rather than under Zn excess. HcZnT2 arises as an extremely remarkable candidate playing a key role in Zn homeostasis and regulation in ectomycorrhiza.
锌(Zn)短缺是一种影响全球植物的常见微量营养素缺乏症,而当这种金属过量时可能会发生锌毒性。已知外生菌根(ECM)真菌能够调节大量和微量元素(包括锌)向植物的转移。然而,其潜在机制尚未完全了解。我们从ECM真菌中鉴定出了基因,该基因编码阳离子扩散促进因子(CDF)家族的一个成员,包括锌转运蛋白,并分析了其转录调控、通过酵母互补实验的转运功能以及使用酵母中的绿色荧光蛋白(GFP)融合蛋白进行的亚细胞定位。在与的菌根形成过程中高度诱导,并且即使在没有任何直接接触的情况下,在宿主植物根存在时也会上调。然而,在锌过量条件下受到抑制。通过在酵母中的功能表达,我们的结果有力地支持了HcZnT2转运锌的能力,以及在较小程度上转运锰的能力。HcZnT2的定位与酵母的内质网相关。在低外部锌条件下菌根基因的激活表明,锌转运蛋白HcZnT2可能在锌缺乏期间而非锌过量时对ECM共生的早期建立很重要。HcZnT2是一个非常显著的候选者,在ectomycorrhiza的锌稳态和调节中起关键作用。