<p>Enzymes are essential catalysts in biological systems. Substrate inhibition, once dismissed, is now observed in 20% of enzymes<sup><CitationRef CitationID="CR1">1</CitationRef></sup> and is attributed to the formation of an unproductive enzyme-substrate complex, with no structural evidence of unproductivity provided to date<sup><CitationRef AdditionalCitationIDS="CR2 CR3 CR4 CR5" CitationID="CR1">1</CitationRef>–<CitationRef CitationID="CR6">6</CitationRef></sup>. This study uncovers the molecular mechanism of substrate inhibition in tobacco glucosyltransferase <i>Nb</i>UGT72AY1, which transfers glucose to phenols for plant protection. The peculiarity that β-carotene strongly attenuates the substrate inhibition of <i>Nb</i>UGT72AY1, despite being a competitive inhibitor, allows to determine the conformational changes that occur during substrate binding in both active and substrate-inhibited complexes. Crystallography reveals structurally different ternary enzyme-substrate complexes that do not conform to classical mechanisms. An alternative pathway suggests substrates bind randomly, but the reaction occurs only if a specific order is followed (asymmetric cooperativity). This unreported paradigm explains substrate inhibition and reactivation by competitive inhibitors, opening new research avenues in metabolic regulation and industrial applications.</p>

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β-Carotene alleviates substrate inhibition caused by asymmetric cooperativity

  • Jieren Liao,
  • Umar F. Shahul Hameed,
  • Timothy D. Hoffmann,
  • Elisabeth Kurze,
  • Guangxin Sun,
  • Wieland Steinchen,
  • Alessandro Nicoli,
  • Antonella Di Pizio,
  • Christina Kuttler,
  • Chuankui Song,
  • Dragana A. M. Catici,
  • Farhah Assaad-Gerbert,
  • Thomas Hoffmann,
  • Stefan T. Arold,
  • Wilfried G. Schwab

摘要

Enzymes are essential catalysts in biological systems. Substrate inhibition, once dismissed, is now observed in 20% of enzymes1 and is attributed to the formation of an unproductive enzyme-substrate complex, with no structural evidence of unproductivity provided to date16. This study uncovers the molecular mechanism of substrate inhibition in tobacco glucosyltransferase NbUGT72AY1, which transfers glucose to phenols for plant protection. The peculiarity that β-carotene strongly attenuates the substrate inhibition of NbUGT72AY1, despite being a competitive inhibitor, allows to determine the conformational changes that occur during substrate binding in both active and substrate-inhibited complexes. Crystallography reveals structurally different ternary enzyme-substrate complexes that do not conform to classical mechanisms. An alternative pathway suggests substrates bind randomly, but the reaction occurs only if a specific order is followed (asymmetric cooperativity). This unreported paradigm explains substrate inhibition and reactivation by competitive inhibitors, opening new research avenues in metabolic regulation and industrial applications.