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Effects of mutations in the gamma-phosphate binding site of myosin on its motor function

X D Li1, T E Rhodes, R Ikebe

  • 1Department of Physiology, University of Massachusetts Medical Center, Worcester, Massachusetts 01655-0127, USA.

Insights

Highly conserved residues in myosin

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Muscle Physiology

Background:

  • Myosin motor function relies on ATP hydrolysis.
  • Conserved residues in the gamma-phosphate binding site are crucial for myosin activity.

Purpose of the Study:

  • To investigate the role of specific conserved residues in smooth muscle myosin's gamma-phosphate binding site.
  • To elucidate the impact of mutations on ATP hydrolysis, actin binding, and motility.

Main Methods:

  • Site-directed mutagenesis of five key residues (Ser181, Lys185, Asn235, Ser236, Arg238) in smooth muscle myosin.
  • Biochemical assays measuring ATPase activity and actin binding.
  • Assessment of actin-activated Mg2+-ATPase activity and actin translocation.

Main Results:

  • Lys185 mutation (K185Q) inhibited ATP hydrolysis and dissociation from actin.
  • Ser236 mutations revealed the hydroxyl group is not essential for proton transfer, but the threonine's bulk (S236T) impedes actin-based acceleration.
  • Arg238 mutation to Ile (R238I) abolished ATP hydrolysis and motility, highlighting the importance of charge interaction with Glu459.

Conclusions:

  • Specific residues, particularly Lys185 and Arg238, are critical for myosin's ATP hydrolysis and motor function.
  • The interaction between Arg238 and Glu459 is vital for efficient ATP hydrolysis.
  • Mutations at Ser236 differentially affect enzymatic properties and actin interaction, indicating distinct roles for the hydroxyl group and residue bulk.

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