An Oxalyl-CoA Synthetase Is Involved in Oxalate Degradation and Aluminum Tolerance

Plant Physiol. 2016 Nov;172(3):1679-1690. doi: 10.1104/pp.16.01106. Epub 2016 Sep 20.

Abstract

Acyl Activating Enzyme3 (AAE3) was identified to be involved in the catabolism of oxalate, which is critical for seed development and defense against fungal pathogens. However, the role of AAE3 protein in abiotic stress responses is unknown. Here, we investigated the role of rice bean (Vigna umbellata) VuAAE3 in Al tolerance. Recombinant VuAAE3 protein has specific activity against oxalate, with Km = 121 ± 8.2 µm and Vmax of 7.7 ± 0.88 µmol min-1 mg-1 protein, indicating it functions as an oxalyl-CoA synthetase. VuAAE3-GFP localization suggested that this enzyme is a soluble protein with no specific subcellular localization. Quantitative reverse transcription-PCR and VuAAE3 promoter-GUS reporter analysis showed that the expression induction of VuAAE3 is mainly confined to rice bean root tips. Accumulation of oxalate was induced rapidly by Al stress in rice bean root tips, and exogenous application of oxalate resulted in the inhibition of root elongation and VuAAE3 expression induction, suggesting that oxalate accumulation is involved in Al-induced root growth inhibition. Furthermore, overexpression of VuAAE3 in tobacco (Nicotiana tabacum) resulted in the increase of Al tolerance, which was associated with the decrease of oxalate accumulation. In addition, NtMATE and NtALS3 expression showed no difference between transgenic lines and wild-type plants. Taken together, our results suggest that VuAAE3-dependent turnover of oxalate plays a critical role in Al tolerance mechanisms.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Adaptation, Physiological / drug effects*
  • Aluminum / toxicity*
  • Amino Acid Sequence
  • Cell Nucleus / drug effects
  • Cell Nucleus / metabolism
  • Cloning, Molecular
  • Coenzyme A Ligases / chemistry
  • Coenzyme A Ligases / metabolism*
  • Gene Expression Regulation, Plant / drug effects
  • Nicotiana / drug effects
  • Nicotiana / physiology
  • Organ Specificity / genetics
  • Oxalates / metabolism*
  • Plant Proteins / metabolism*
  • Plant Roots / drug effects
  • Plant Roots / genetics
  • Plant Roots / growth & development
  • Plant Roots / metabolism
  • Plants, Genetically Modified
  • Sequence Alignment
  • Sequence Analysis, Protein
  • Stress, Physiological / drug effects
  • Stress, Physiological / genetics
  • Subcellular Fractions / metabolism
  • Vigna / drug effects
  • Vigna / enzymology*
  • Vigna / genetics
  • Vigna / metabolism

Substances

  • Oxalates
  • Plant Proteins
  • Aluminum
  • Coenzyme A Ligases