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Large-scale computational discovery and analysis of virus-derived microbial nanocompartments
BiologyNature Communications

Large-scale computational discovery and analysis of virus-derived microbial nanocompartments

M. P. Andreas and T. W. Giessen

Discover the fascinating world of encapsulins, microbial protein compartments defined by unique viral structures. This research by Michael P. Andreas and Tobias W. Giessen uncovers over 6,000 HK97-fold encapsulin-like systems across diverse prokaryotic genomes, revealing insights into their biological functions and evolutionary origins. Don't miss out on this groundbreaking study!... show more
Abstract
Encapsulins are a class of microbial protein compartments defined by the viral HK97-fold of their capsid protein, self-assembly into icosahedral shells, and dedicated cargo loading mechanism for sequestering specific enzymes. Encapsulins are often misannotated and traditional sequence-based searches yield many false positive hits in the form of phage capsids. Here, we develop an integrated search strategy to carry out a large-scale computational analysis of prokaryotic genomes with the goal of discovering an exhaustive and curated set of all HK97-fold encapsulin-like systems. We find over 6,000 encapsulin-like systems in 31 bacterial and four archaeal phyla, including two novel encapsulin families. We formulate hypotheses about their potential biological functions and biomedical relevance, which range from natural product biosynthesis and stress resistance to carbon metabolism and anaerobic hydrogen production. An evolutionary analysis of encapsulins and related HK97-type virus families shows that they share a common ancestor, and we conclude that encapsulins likely evolved from HK97-type bacteriophages.
Publisher
Nature Communications
Published On
Aug 06, 2021
Authors
Michael P. Andreas, Tobias W. Giessen
Tags
encapsulinsHK97-foldprokaryotic genomesbacterialarchaealbiological functionsevolutionary analysis
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