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Coordinated amino acid changes in the evolution of mammalian defensins

A L Hughes1, M Yeager

  • 1Department of Biology, 208 Mueller Laboratory, The Pennsylvania State University, University Park, PA 16802, USA. austin@hugaus3.bio.psu.edu

Insights

Mammalian defensins are cationic peptides. Evolutionary analysis reveals coordinated diversification of defensin and propiece sequences, maintaining charge balance to prevent self-toxicity.

Area of Science:

  • Molecular Evolution
  • Immunology
  • Biochemistry

Background:

  • Mammalian defensins are short, cationic peptides with antimicrobial and cytotoxic properties.
  • Defensins are synthesized as precursors with a signal peptide and a highly anionic propiece.
  • The propiece is hypothesized to balance the mature defensin's positive charge, preventing premature cytotoxicity.

Purpose of the Study:

  • To investigate the evolutionary dynamics of mammalian defensin genes.
  • To test the hypothesis of maintained charge balance between defensin and propiece during evolution.
  • To understand the role of coordinated amino acid changes in preserving adaptive phenotypes.

Main Methods:

  • Phylogenetic analysis of 28 complete mammalian defensin sequences from five species.
  • Comparison of synonymous and nonsynonymous nucleotide substitution rates.
  • Maximum likelihood method for reconstructing ancestral protein sequences.

Main Results:

  • Phylogenetic analysis revealed species-specific gene clusters, indicating duplication post-divergence.
  • Evidence suggests selective pressure favors diversification of mature defensins post-duplication.
  • Reconstructed ancestral sequences consistently showed charge balance between mature defensin and propiece.
  • Changes in mature defensin charge were mirrored by compensatory changes in the propiece.

Conclusions:

  • The evolution of mammalian defensins involves coordinated diversification of both mature peptide and propiece sequences.
  • This coordination preserves the crucial charge balance, preventing self-toxicity.
  • The findings support a model where amino acid changes occur in a coordinated manner to maintain an adaptive phenotype.

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