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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.
Abstract:
Prokaryote mobilome genomes rely on host machineries for survival and replication. Given that mobile genetic elements (MGEs) derive their energy from host cells, we investigated the diversity of ATP-utilizing proteins in MGE genomes to determine whether they might be associated with proteins that could suppress related host proteins that consume energy. A comprehensive search of 353 huge phage genomes revealed that up to 9% of the proteins have ATPase domains. For example, ATPase proteins constitute ∼3% of the genomes of Lak phages with ∼550 kbp genomes that occur in the microbiomes of humans and other animals. Statistical analysis shows the number of ATPase proteins increases linearly with genome length, consistent with a large sink for host ATP during replication of megaphages. Using metagenomic data from diverse environments, we found 505 mobilome proteins with ATPase domains fused to diverse functional domains. Among these composite ATPase proteins, 61.6% have known functional domains that could contribute to host energy diversion during the mobilome infection cycle. As many have domains that are known to interact with nucleic acids and proteins, we infer that numerous ATPase proteins are used during replication and for protection from host immune systems. We found a set of uncharacterized ATPase proteins with nuclease and protease activities, displaying unique domain architectures that are energy intensive based on the presence of multiple ATPase domains. In many cases, these composite ATPase proteins genomically co-localize with small proteins in genomic contexts that are reminiscent of toxin-antitoxin systems and phage helicase-antibacterial helicase systems. Small proteins that function as inhibitors may be a common strategy for control of cellular processes, thus could inspire future biochemical experiments for the development of new nucleic acid and protein manipulation tools, with diverse biotechnological applications.
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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