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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.
Abstract:
MAPL (mitochondria-associated protein ligase, also called MULAN/GIDE/MUL1) is a multifunctional mitochondrial outer membrane protein found in human cells that contains a unique BAM (beside a membrane) domain and a C-terminal RING-finger domain. MAPL has been implicated in several processes that occur in animal cells such as NF-kB activation, innate immunity and antiviral signaling, suppression of PINK1/parkin defects, mitophagy in skeletal muscle, and caspase-dependent apoptosis. Previous studies demonstrated that the BAM domain is present in diverse organisms in which most of these processes do not occur, including plants, archaea, and bacteria. Thus the conserved function of MAPL and its BAM domain remains an open question. In order to gain insight into its conserved function, we investigated the evolutionary origins of MAPL by searching for homologues in predicted proteomes of diverse eukaryotes. We show that MAPL proteins with a conserved BAM-RING architecture are present in most animals, protists closely related to animals, a single species of fungus, and several multicellular plants and related green algae. Phylogenetic analysis demonstrated that eukaryotic MAPL proteins originate from a common ancestor and not from independent horizontal gene transfers from bacteria. We also determined that two independent duplications of MAPL occurred, one at the base of multicellular plants and another at the base of vertebrates. Although no other eukaryote genome examined contained a verifiable MAPL orthologue, BAM domain-containing proteins were identified in the protists Bigelowiella natans and Ectocarpus siliculosis. Phylogenetic analyses demonstrated that these proteins are more closely related to prokaryotic BAM proteins and therefore likely arose from independent horizontal gene transfers from bacteria. We conclude that MAPL proteins with BAM-RING architectures have been present in the holozoan and viridiplantae lineages since their very beginnings. Our work paves the way for future studies into MAPL function in alternative model organisms like Capsaspora owczarzaki and Chlamydomonas reinhardtii that will help to answer the question of MAPL's ancestral function in ways that cannot be answered by studying animal cells alone.
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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