The zinc homeostasis network of land plants

Biochim Biophys Acta. 2012 Sep;1823(9):1553-67. doi: 10.1016/j.bbamcr.2012.05.016. Epub 2012 May 22.

Abstract

The use of the essential element zinc (Zn) in the biochemistry of land plants is widespread, and thus comparable to that in other eukaryotes. Plants have evolved the ability to adjust to vast fluctuations in external Zn supply, and they can store considerable amounts of Zn inside cell vacuoles. Moreover, among plants there is overwhelming, but yet little explored, natural genetic diversity that phenotypically affects Zn homeostasis. This results in the ability of specific races or species to thrive in different soils ranging from extremely Zn-deficient to highly Zn-polluted. Zn homeostasis is maintained by a tightly regulated network of low-molecular-weight ligands, membrane transport and Zn-binding proteins, as well as regulators. Here we review Zn homeostasis of land plants largely based on the model plant Arabidopsis thaliana, for which our molecular understanding is most developed at present. There is some evidence for substantial conservation of Zn homeostasis networks among land pants, and this review can serve as a reference for future comparisons. Major progress has recently been made in our understanding of the regulation of transcriptional Zn deficiency responses and the role of the low-molecular-weight chelator nicotianamine in plant Zn homeostasis. Moreover, we have begun to understand how iron (Fe) and Zn homeostasis interact as a consequence of the chemical similarity between their divalent cations and the lack of specificity of the major root iron uptake transporter IRT1. The molecular analysis of Zn-hyperaccumulating plants reveals how metal homeostasis networks can be effectively modified. These insights are important for sustainable bio-fortification approaches. This article is part of a Special Issue entitled: Cell Biology of Metals.

Publication types

  • Review

MeSH terms

  • Arabidopsis / drug effects
  • Arabidopsis / genetics
  • Arabidopsis / metabolism*
  • Arabidopsis Proteins / genetics
  • Arabidopsis Proteins / metabolism*
  • Azetidinecarboxylic Acid / analogs & derivatives
  • Azetidinecarboxylic Acid / pharmacology
  • Cation Transport Proteins / genetics
  • Cation Transport Proteins / metabolism
  • Cations, Divalent
  • Embryophyta
  • Gene Expression Regulation, Plant / drug effects
  • Homeostasis / drug effects
  • Homeostasis / physiology
  • Ion Transport / drug effects
  • Iron / metabolism
  • Plant Roots / drug effects
  • Plant Roots / genetics
  • Plant Roots / metabolism*
  • Signal Transduction / drug effects
  • Signal Transduction / genetics
  • Soil / chemistry
  • Zinc / deficiency
  • Zinc / metabolism*

Substances

  • Arabidopsis Proteins
  • Cation Transport Proteins
  • Cations, Divalent
  • IRT1 protein, Arabidopsis
  • Soil
  • nicotianamine
  • Azetidinecarboxylic Acid
  • Iron
  • Zinc