Understanding the function of bacterial and eukaryotic thiolases II by integrating evolutionary and functional approaches.

Fox, Ana Romina;Soto, Gabriela;Mozzicafreddo, Matteo;Garcia, Araceli Nora;Ayub, Nicolás Daniel;et.al.
(2014) Gene — Vol. 533, n° 1, p. 5-10 (2014)

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Authors
  • Fox, Ana RominaUCLouvain
    Author
  • Soto, Gabriela
    Author
  • Mozzicafreddo, Matteo
    Author
  • Garcia, Araceli Nora
    Author
  • Ayub, Nicolás Daniel
    Author
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Abstract
Acetoacetyl-CoA thiolase (EC 2.3.1.9), commonly named thiolase II, condenses two molecules of acetyl-CoA to give acetoacetyl-CoA and CoA. This enzyme acts in anabolic processes as the first step in the biosynthesis of isoprenoids and polyhydroxybutyrate in eukaryotes and bacteria, respectively. We have recently reported the evolutionary and functional equivalence of these enzymes, suggesting that thiolase II could be the rate limiting enzyme in these pathways and presented evidence indicating that this enzyme modulates the availability of reducing equivalents during abiotic stress adaptation in bacteria and plants. However, these results are not sufficient to clarify why thiolase II was evolutionary selected as a critical enzyme in the production of antioxidant compounds. Regarding this intriguing topic, we propose that thiolase II could sense changes in the acetyl-CoA/CoA ratio induced by the inhibition of the tricarboxylic acid cycle under abiotic stress. Thus, the high level of evolutionary and functional constraint of thiolase II may be due to the connection of this enzyme with an ancient and conserved metabolic route.
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Citations

Fox, A. R., Soto, G., Mozzicafreddo, M., Garcia, A. N., Cuccioloni, M., Angeletti, M., Salerno, J. C., & Ayub, N. D. (2014). Understanding the function of bacterial and eukaryotic thiolases II by integrating evolutionary and functional approaches. Gene, 533(1), 5-10. https://doi.org/10.1016/j.gene.2013.09.096 (Original work published 2014)