Effects upon metabolic pathways and energy production by Sb(III) and As(III)/Sb(III)-oxidase gene aioA in Agrobacterium tumefaciens GW4

PLoS One. 2017 Feb 27;12(2):e0172823. doi: 10.1371/journal.pone.0172823. eCollection 2017.

Abstract

Agrobacterium tumefaciens GW4 is a heterotrophic arsenite [As(III)]/antimonite [Sb(III)]-oxidizing strain. The As(III) oxidase AioAB is responsible for As(III) oxidation in the periplasm and it is also involved in Sb(III) oxidation in Agrobacterium tumefaciens 5A. In addition, Sb(III) oxidase AnoA and cellular H2O2 are also responsible for Sb(III) oxidation in strain GW4. However, the deletion of aioA increased the Sb(III) oxidation efficiency in strain GW4. In the present study, we found that the cell mobility to Sb(III), ATP and NADH contents and heat release were also increased by Sb(III) and more significantly in the aioA mutant. Proteomics and transcriptional analyses showed that proteins/genes involved in Sb(III) oxidation and resistance, stress responses, carbon metabolism, cell mobility, phosphonate and phosphinate metabolism, and amino acid and nucleotide metabolism were induced by Sb(III) and were more significantly induced in the aioA mutant. The results suggested that Sb(III) oxidation may produce energy. In addition, without periplasmic AioAB, more Sb(III) would enter bacterial cells, however, the cytoplasmic AnoA and the oxidative stress response proteins were significantly up-regulated, which may contribute to the increased Sb(III) oxidation efficiency. Moreover, the carbon metabolism was also activated to generate more energy against Sb(III) stress. The generated energy may be used in Sb transportation, DNA repair, amino acid synthesis, and cell mobility, and may be released in the form of heat.

MeSH terms

  • Agrobacterium tumefaciens / enzymology*
  • Agrobacterium tumefaciens / genetics
  • Amino Acids / chemistry
  • Antimony / chemistry*
  • Arsenites / chemistry*
  • Bacterial Proteins / genetics
  • Bacterial Proteins / metabolism*
  • Carbon / chemistry
  • DNA Repair
  • Gene Deletion
  • Hydrogen Peroxide / chemistry
  • Metabolic Networks and Pathways
  • Mutation
  • NAD / chemistry
  • Organophosphonates / chemistry
  • Oxidation-Reduction
  • Oxidoreductases / genetics
  • Oxidoreductases / metabolism*
  • Oxygen / chemistry
  • Phosphates / chemistry
  • Proteomics
  • Stress, Physiological

Substances

  • Amino Acids
  • Arsenites
  • Bacterial Proteins
  • Organophosphonates
  • Phosphates
  • NAD
  • antimonite
  • Carbon
  • Antimony
  • Hydrogen Peroxide
  • Oxidoreductases
  • arsenite
  • Oxygen

Grants and funding

The present study was supported by a research funding of the State Key Laboratory of Agricultural Microbiology, P.R. China to GW. GW was responsible for study design and revision of the manuscript.