Direct transfer of zinc between plants is channelled by common mycorrhizal network of arbuscular mycorrhizal fungi and evidenced by changes in expression of zinc transporter genes in fungus and plant

Environ Microbiol. 2021 Oct;23(10):5883-5900. doi: 10.1111/1462-2920.15542. Epub 2021 May 10.

Abstract

The role that common mycorrhizal networks (CMNs) play in plant-to-plant transfer of zinc (Zn) has not yet been investigated, despite the proved functions of arbuscular mycorrhizal fungi (AMF) in crop Zn acquisition. Here, two autotrophic Medicago truncatula plants were linked by a CMN formed by Rhizophagus irregularis. Plants were grown in vitro in physically separated compartments (Donor-C and Receiver-C) and their connection ensured only by CMN. A symbiosis-defective mutant of M. truncatula was used as control in Receiver-C. Plants in both compartments were grown on Zn-free medium, and only the leaves of the donor plants were Zn fertilized. A direct transfer of Zn was demonstrated from donor leaves to receiver shoots mediated by CMN. Direct transfer of Zn was supported by changes in the expression of fungal genes, RiZRT1 and RiZnT1, and plant gene MtZIP2 in roots and MtNAS1 in roots and shoots of the receiver plants. Moreover, Zn transfer was supported by the change in expression of MtZIP14 gene in AM fungal colonized roots. This work is the first evidence of a direct Zn transfer from a donor to a receiver plant via CMN, and of a triggering of transcriptional regulation of fungal-plant genes involved in Zn transport-related processes.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Carrier Proteins
  • Medicago truncatula* / genetics
  • Medicago truncatula* / metabolism
  • Medicago truncatula* / microbiology
  • Mycorrhizae* / metabolism
  • Plant Roots / microbiology
  • Symbiosis / genetics
  • Zinc / metabolism

Substances

  • Carrier Proteins
  • zinc-binding protein
  • Zinc