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Updated: May 11, 2026

Sequence-specific Labeling of Nucleic Acids and Proteins with Methyltransferases and Cofactor Analogues
Published on: November 22, 2014
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.
Abstract:
MnmE is a homodimeric multi-domain GTPase involved in tRNA modification. This protein differs from Ras-like GTPases in its low affinity for guanine nucleotides and mechanism of activation, which occurs by a cis, nucleotide- and potassium-dependent dimerization of its G-domains. Moreover, MnmE requires GTP hydrolysis to be functionally active. However, how GTP hydrolysis drives tRNA modification and how the MnmE GTPase cycle is regulated remains unresolved. Here, the kinetics of the MnmE GTPase cycle was studied under single-turnover conditions using stopped- and quench-flow techniques. We found that the G-domain dissociation is the rate-limiting step of the overall reaction. Mutational analysis and fast kinetics assays revealed that GTP hydrolysis, G-domain dissociation and Pi release can be uncoupled and that G-domain dissociation is directly responsible for the 'ON' state of MnmE. Thus, MnmE provides a new paradigm of how the ON/OFF cycling of GTPases may regulate a cellular process. We also demonstrate that the MnmE GTPase cycle is negatively controlled by the reaction products GDP and Pi. This feedback mechanism may prevent inefficacious GTP hydrolysis in vivo. We propose a biological model whereby a conformational change triggered by tRNA binding is required to remove product inhibition and initiate a new GTPase/tRNA-modification cycle.
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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