The Evolutionary History of MAPL (Mitochondria-Associated Protein Ligase) and Other Eukaryotic BAM/GIDE Domain

Jeremy G Wideman1, Blake P Moore2

  • 1Department of Science, Augustana Faculty, University of Alberta, Camrose, Alberta, T4V 2R3, Canada; Department of Cell Biology, Faculty of Medicine and Dentistry, University of Alberta, Edmonton, Alberta, T6G 2H7, Canada.

Plos One
|June 6, 2015
PubMed

Insights

Mitochondria-associated protein ligase (MAPL) and its unique BAM-RING structure are ancient, originating before the divergence of plants and animals. This discovery opens new avenues for studying MAPL

Area of Science:

  • Evolutionary biology
  • Molecular biology
  • Cell biology

Background:

  • Mitochondria-associated protein ligase (MAPL) is a mitochondrial outer membrane protein with a unique BAM-RING architecture.
  • MAPL is involved in various cellular processes in animals, including innate immunity and mitophagy.
  • The presence of the BAM domain in diverse organisms suggests a conserved, yet unknown, ancestral function.

Purpose of the Study:

  • To investigate the evolutionary origins and conserved functions of MAPL and its BAM domain.
  • To identify MAPL homologues across diverse eukaryotic lineages.
  • To understand the evolutionary history of the BAM-RING architecture.

Main Methods:

  • Bioinformatic searches for MAPL homologues in predicted proteomes of various eukaryotes.
  • Phylogenetic analysis to determine evolutionary relationships.
  • Comparative genomics to trace the origin of the BAM-RING domain.

Main Results:

  • MAPL proteins with conserved BAM-RING architecture are found in animals, closely related protists, fungi, plants, and green algae.
  • Phylogenetic analyses indicate a common eukaryotic ancestor for MAPL, not horizontal gene transfer from bacteria.
  • Two independent MAPL duplications occurred at the base of multicellular plants and vertebrates.
  • BAM domain proteins in some protists likely originated from independent horizontal gene transfers from bacteria.

Conclusions:

  • MAPL proteins with BAM-RING architectures have ancient origins, present in holozoan and viridiplantae lineages since their inception.
  • The study provides a foundation for exploring MAPL's ancestral functions in non-animal model organisms.
  • Understanding MAPL evolution in diverse eukaryotes is crucial for deciphering its fundamental biological roles.

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