Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

PhANNs, a fast and accurate tool and web server to classify phage structural proteins

View through CrossRef
Abstract For any given bacteriophage genome or phage sequences in metagenomic data sets, we are unable to assign a function to 50-90% of genes. Structural protein-encoding genes constitute a large fraction of the average phage genome and are among the most divergent and difficult-to-identify genes using homology-based methods. To understand the functions encoded by phages, their contributions to their environments, and to help gauge their utility as potential phage therapy agents, we have developed a new approach to classify phage ORFs into ten major classes of structural proteins or into an “other” category. The resulting tool is named PhANNs (Phage Artificial Neural Networks). We built a database of 538,213 manually curated phage protein sequences that we split into eleven subsets (10 for cross-validation, one for testing) using a novel clustering method that ensures there are no homologous proteins between sets yet maintains the maximum sequence diversity for training. An Artificial Neural Network ensemble trained on features extracted from those sets reached a test F 1 -score of 0.875 and test accuracy of 86.2%. PhANNs can rapidly classify proteins into one of the ten classes, and non-phage proteins are classified as “other”, providing a new approach for functional annotation of phage proteins. PhANNs is open source and can be run from our web server or installed locally. Author Summary Bacteriophages (phages, viruses that infect bacteria) are the most abundant biological entity on Earth. They outnumber bacteria by a factor of ten. As phages are very different within them and from bacteria, and we have comparatively few phage genes in our database, we are unable to assign function to 50%-90% of phage genes. In this work, we developed PhANNs, a machine learning tool that can classify a phage gene as one of ten structural roles, or “other”. This approach does not require a similar gene to be known.
Title: PhANNs, a fast and accurate tool and web server to classify phage structural proteins
Description:
Abstract For any given bacteriophage genome or phage sequences in metagenomic data sets, we are unable to assign a function to 50-90% of genes.
Structural protein-encoding genes constitute a large fraction of the average phage genome and are among the most divergent and difficult-to-identify genes using homology-based methods.
To understand the functions encoded by phages, their contributions to their environments, and to help gauge their utility as potential phage therapy agents, we have developed a new approach to classify phage ORFs into ten major classes of structural proteins or into an “other” category.
The resulting tool is named PhANNs (Phage Artificial Neural Networks).
We built a database of 538,213 manually curated phage protein sequences that we split into eleven subsets (10 for cross-validation, one for testing) using a novel clustering method that ensures there are no homologous proteins between sets yet maintains the maximum sequence diversity for training.
An Artificial Neural Network ensemble trained on features extracted from those sets reached a test F 1 -score of 0.
875 and test accuracy of 86.
2%.
PhANNs can rapidly classify proteins into one of the ten classes, and non-phage proteins are classified as “other”, providing a new approach for functional annotation of phage proteins.
PhANNs is open source and can be run from our web server or installed locally.
Author Summary Bacteriophages (phages, viruses that infect bacteria) are the most abundant biological entity on Earth.
They outnumber bacteria by a factor of ten.
As phages are very different within them and from bacteria, and we have comparatively few phage genes in our database, we are unable to assign function to 50%-90% of phage genes.
In this work, we developed PhANNs, a machine learning tool that can classify a phage gene as one of ten structural roles, or “other”.
This approach does not require a similar gene to be known.

Related Results

Time to lysis determines phage sensitivity to a cytidine deaminase toxin/antitoxin bacterial defense system
Time to lysis determines phage sensitivity to a cytidine deaminase toxin/antitoxin bacterial defense system
ABSTRACT Toxin-antitoxin (TA) systems are ubiquitous two-gene loci that bacteria use to regulate cellular processes such as phage defense. Here, ...
7 th International Symposium on Enabling Technologies for Life Sciences (ETP)
7 th International Symposium on Enabling Technologies for Life Sciences (ETP)
The seventh in the series of ETP Symposia (see Rapid Communications in Mass Spectrometry 2012, 26 , ...
Past and Future of Phage Therapy and Phage-Derived Proteins in Patients with Bone and Joint Infection
Past and Future of Phage Therapy and Phage-Derived Proteins in Patients with Bone and Joint Infection
Phage-derived therapies comprise phage therapy and the use of phage-derived proteins as anti-bacterial therapy. Bacteriophages are natural viruses that target specific bacteria. Th...
What makes a temperate phage an effective bacterial weapon?
What makes a temperate phage an effective bacterial weapon?
Abstract Temperate bacteriophages (phages) are common features of bacterial genomes and can act as self-amplifying biological weapons, killing su...

Back to Top