Aluminum phytotoxicity in acidic environments: A comprehensive review of plant tolerance and adaptation strategies

Ecotoxicol Environ Saf. 2024 Jan 1:269:115791. doi: 10.1016/j.ecoenv.2023.115791. Epub 2023 Dec 8.

Abstract

Aluminum (Al), a non-essential metal for plant growth, exerts significant phytotoxic effects, particularly on root growth. Anthropogenic activities would intensify Al's toxic effects by releasing Al3+ into the soil solution, especially in acidic soils with a pH lower than 5.5 and rich mineral content. The severity of Al-induced phytotoxicity varies based on factors such as Al concentration, ionic form, plant species, and growth stages. Al toxicity leads to inhibited root and shoot growth, reduced plant biomass, disrupted water uptake causing nutritional imbalance, and adverse alterations in physiological, biochemical, and molecular processes. These effects collectively lead to diminished plant yield and quality, along with reduced soil fertility. Plants employ various mechanisms to counter Al toxicity under stress conditions, including sequestering Al in vacuoles, exuding organic acids (OAs) like citrate, oxalate, and malate from root tip cells to form Al-complexes, activating antioxidative enzymes, and overexpressing Al-stress regulatory genes. Recent advancements focus on enhancing the exudation of OAs to prevent Al from entering the plant, and developing Al-tolerant varieties. Gene transporter families, such as ATP-Binding Cassette (ABC), Aluminum-activated Malate Transporter (ALMT), Natural resistance-associated macrophage protein (Nramp), Multidrug and Toxic compounds Extrusion (MATE), and aquaporin, play a crucial role in regulating Al toxicity. This comprehensive review examined recent progress in understanding the cytotoxic impact of Al on plants at the cellular and molecular levels. Diverse strategies developed by both plants and scientists to mitigate Al-induced phytotoxicity were discussed. Furthermore, the review explored recent genomic developments, identifying candidate genes responsible for OAs exudation, and delved into genome-mediated breeding initiatives, isolating transgenic and advanced breeding lines to cultivate Al-tolerant plants.

Keywords: Acidic soils; Aluminum toxicity; Aluminum transporters; Genomics; Organic acids; Plant physiological responses.

Publication types

  • Review

MeSH terms

  • Alkaloids* / pharmacology
  • Aluminum* / metabolism
  • Aluminum* / toxicity
  • Gene Expression Regulation, Plant
  • Malates / metabolism
  • Organic Chemicals / metabolism
  • Plant Breeding
  • Plant Roots / metabolism
  • Plants / metabolism
  • Soil / chemistry

Substances

  • Aluminum
  • malic acid
  • Malates
  • Alkaloids
  • Organic Chemicals
  • Soil