The tRNA-modifying function of MnmE is controlled by post-hydrolysis steps of its GTPase cycle

Silvia Prado1, Magda Villarroya, Milagros Medina

  • 1RNA Modification and Mitochondrial Diseases Laboratory, Centro de Investigación Príncipe Felipe, 46012-Valencia, Spain.

Insights

MnmE GTPase activation relies on G-domain dissociation, not just GTP hydrolysis. Product feedback regulates this tRNA modification enzyme, revealing a new GTPase regulation model.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Enzymology

Background:

  • MnmE is a homodimeric GTPase essential for tRNA modification.
  • Its activation mechanism differs from Ras-like GTPases, requiring nucleotide-dependent G-domain dimerization and GTP hydrolysis.

Purpose of the Study:

  • To elucidate the kinetics of the MnmE GTPase cycle.
  • To understand how GTP hydrolysis drives tRNA modification.
  • To investigate the regulation of the MnmE GTPase cycle.

Main Methods:

  • Single-turnover kinetics using stopped- and quench-flow techniques.
  • Mutational analysis.
  • Fast kinetics assays.

Main Results:

  • G-domain dissociation is the rate-limiting step in the MnmE GTPase cycle.
  • GTP hydrolysis, G-domain dissociation, and Pi release can be uncoupled.
  • G-domain dissociation directly confers the 'ON' state of MnmE.
  • The MnmE GTPase cycle is negatively regulated by GDP and Pi.

Conclusions:

  • MnmE presents a novel paradigm for GTPase regulation, where G-domain dissociation, not solely GTP hydrolysis, dictates activity.
  • Product inhibition by GDP and Pi prevents inefficient GTP hydrolysis in vivo.
  • tRNA binding likely induces a conformational change to overcome product inhibition and initiate new cycles.

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