Diverse ATPase Proteins in Mobilomes Constitute a Large Potential Sink for Prokaryotic Host ATP

Hyunjin Shim1, Haridha Shivram2, Shufei Lei1

  • 1Department of Earth and Planetary Science, University of California, Berkeley, Berkeley, CA, United States.

Insights

Mobile genetic elements (MGEs) utilize host energy via ATP-utilizing proteins. This study reveals diverse composite ATPase proteins in MGE genomes, potentially manipulating host energy and cellular processes for replication and defense.

Area of Science:

  • Microbiology
  • Molecular Biology
  • Bioenergetics

Background:

  • Prokaryote mobilomes, including phages, depend on host cell machinery for replication.
  • Mobile genetic elements (MGEs) derive energy from host cells, raising questions about their energy utilization strategies.
  • The role of ATP-utilizing proteins in MGEs and their potential impact on host energy metabolism is underexplored.

Purpose of the Study:

  • To investigate the diversity and function of ATP-utilizing proteins within mobilome genomes.
  • To determine if MGEs possess proteins that can suppress host energy-consuming proteins.
  • To explore the potential of these proteins in host energy diversion and manipulation.

Main Methods:

  • Comprehensive bioinformatic analysis of 353 large phage genomes.
  • Statistical analysis correlating ATPase protein abundance with genome length.
  • Metagenomic data analysis to identify composite ATPase proteins with fused functional domains.

Main Results:

  • Up to 9% of proteins in large phage genomes contain ATPase domains, increasing linearly with genome size.
  • 505 mobilome proteins with ATPase domains fused to diverse functional domains were identified.
  • Over 60% of these composite ATPases possess domains involved in host energy diversion, nucleic acid/protein interaction, and host defense.

Conclusions:

  • Mobilome genomes encode a significant number of ATPase proteins, suggesting substantial host ATP consumption during replication.
  • Composite ATPase proteins likely play crucial roles in regulating host energy, replication, and evading host immunity.
  • Uncharacterized ATPase proteins with nuclease/protease activities and unique domain architectures represent novel energy-intensive systems with potential biotechnological applications.

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