Functionally critical residues in the aminoglycoside resistance-associated methyltransferase RmtC play distinct roles

Meisam Nosrati1, Debayan Dey1, Atousa Mehrani2

  • 1Department of Biochemistry, Emory University School of Medicine, Atlanta, Georgia 30322.

Insights

Bacterial aminoglycoside resistance involves methylation of the small ribosomal subunit. This study reveals how methyltransferase RmtC binds to the 30S subunit, uncovering distinct roles for its domains in binding and catalysis.

Area of Science:

  • Molecular Biology
  • Structural Biology
  • Antimicrobial Resistance

Background:

  • Methylation of 16S ribosomal RNA (rRNA) at nucleotide G1405 (m7G1405) confers high-level aminoglycoside resistance in bacteria.
  • Aminoglycoside resistance-associated 16S rRNA methyltransferases, like RmtC, are found in pathogenic bacteria.
  • Understanding the interaction between these methyltransferases and the 30S ribosomal subunit is crucial for combating antibiotic resistance.

Purpose of the Study:

  • To investigate the substrate recognition mechanism of 16S rRNA (m7G1405) methyltransferases.
  • To elucidate the structural basis of 30S ribosomal subunit binding by RmtC.
  • To differentiate the roles of RmtC domains in binding affinity and catalytic activity.

Main Methods:

  • Utilized a fluorescence polarization 30S-binding assay to quantify enzyme-ribosome interactions.
  • Determined the crystal structure of the methyltransferase RmtC in complex with the 30S subunit at 3.14 Å resolution.
  • Performed structure-guided functional analysis of RmtC residues involved in substrate recognition.

Main Results:

  • The 30S binding site for m7G1405 methyltransferases overlaps with that of m1A1408 methyltransferases, suggesting a common docking surface.
  • RmtC's N-terminal domain, specifically basic residues in subdomains N1 and N2, is critical for 30S-binding affinity.
  • C-terminal domain residues are essential for 16S rRNA modification but do not directly enhance 30S binding affinity.

Conclusions:

  • Defined key features of m7G1405 methyltransferase-30S substrate recognition.
  • Distinguished between residues contributing to 30S binding affinity and those stabilizing the rRNA conformation for catalysis.
  • Findings provide a foundation for future structural studies and potential therapeutic strategies targeting antibiotic resistance mechanisms.

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