Assessing Species Diversity Using Metavirome Data: Methods and Challenges

Assessing biodiversity is an important step in the study of microbial ecology associated with a given environment. Multiple indices have been used to quantify species diversity, which is a key biodiversity measure. Measuring species diversity of viruses in different environments remains a challenge...

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Main Authors: Damayanthi Herath, Duleepa Jayasundara, David Ackland, Isaam Saeed, Sen-Lin Tang, Saman Halgamuge
Format: Article
Language:English
Published: Elsevier 2017-01-01
Series:Computational and Structural Biotechnology Journal
Online Access:http://www.sciencedirect.com/science/article/pii/S2001037017300223
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spelling doaj-420c280467804784b6f40fbd99be98f82020-11-25T01:34:57ZengElsevierComputational and Structural Biotechnology Journal2001-03702017-01-0115447455Assessing Species Diversity Using Metavirome Data: Methods and ChallengesDamayanthi Herath0Duleepa Jayasundara1David Ackland2Isaam Saeed3Sen-Lin Tang4Saman Halgamuge5Department of Mechanical Engineering, University of Melbourne, Parkville, 3010 Melbourne, Australia; Department of Computer Engineering, University of Peradeniya, Prof. E. O. E. Pereira Mawatha, Peradeniya, 20400, Sri Lanka; Corresponding author at: Department of Mechanical Engineering, University of Melbourne, Parkville, Melbourne 3010, Australia.School of Public Health and Community Medicine, University of New South Wales, Randwick, NSW 2052, AustraliaDepartment of Biomedical Engineering, University of Melbourne, Parkville, 3010 Melbourne, AustraliaDepartment of Mechanical Engineering, University of Melbourne, Parkville, 3010 Melbourne, AustraliaBiodiversity Research Center, Academia Sinica, Nan-Kang, Taipei 11529, TaiwanResearch School of Engineering, College of Engineering and Computer Science, The Australian National University, Canberra 2601, ACT, AustraliaAssessing biodiversity is an important step in the study of microbial ecology associated with a given environment. Multiple indices have been used to quantify species diversity, which is a key biodiversity measure. Measuring species diversity of viruses in different environments remains a challenge relative to measuring the diversity of other microbial communities. Metagenomics has played an important role in elucidating viral diversity by conducting metavirome studies; however, metavirome data are of high complexity requiring robust data preprocessing and analysis methods. In this review, existing bioinformatics methods for measuring species diversity using metavirome data are categorised broadly as either sequence similarity-dependent methods or sequence similarity-independent methods. The former includes a comparison of DNA fragments or assemblies generated in the experiment against reference databases for quantifying species diversity, whereas estimates from the latter are independent of the knowledge of existing sequence data. Current methods and tools are discussed in detail, including their applications and limitations. Drawbacks of the state-of-the-art method are demonstrated through results from a simulation. In addition, alternative approaches are proposed to overcome the challenges in estimating species diversity measures using metavirome data. Keywords: Metagenomics, Phage studies, Biodiversity, Species diversity, Metavirome data, Bioinformaticshttp://www.sciencedirect.com/science/article/pii/S2001037017300223
collection DOAJ
language English
format Article
sources DOAJ
author Damayanthi Herath
Duleepa Jayasundara
David Ackland
Isaam Saeed
Sen-Lin Tang
Saman Halgamuge
spellingShingle Damayanthi Herath
Duleepa Jayasundara
David Ackland
Isaam Saeed
Sen-Lin Tang
Saman Halgamuge
Assessing Species Diversity Using Metavirome Data: Methods and Challenges
Computational and Structural Biotechnology Journal
author_facet Damayanthi Herath
Duleepa Jayasundara
David Ackland
Isaam Saeed
Sen-Lin Tang
Saman Halgamuge
author_sort Damayanthi Herath
title Assessing Species Diversity Using Metavirome Data: Methods and Challenges
title_short Assessing Species Diversity Using Metavirome Data: Methods and Challenges
title_full Assessing Species Diversity Using Metavirome Data: Methods and Challenges
title_fullStr Assessing Species Diversity Using Metavirome Data: Methods and Challenges
title_full_unstemmed Assessing Species Diversity Using Metavirome Data: Methods and Challenges
title_sort assessing species diversity using metavirome data: methods and challenges
publisher Elsevier
series Computational and Structural Biotechnology Journal
issn 2001-0370
publishDate 2017-01-01
description Assessing biodiversity is an important step in the study of microbial ecology associated with a given environment. Multiple indices have been used to quantify species diversity, which is a key biodiversity measure. Measuring species diversity of viruses in different environments remains a challenge relative to measuring the diversity of other microbial communities. Metagenomics has played an important role in elucidating viral diversity by conducting metavirome studies; however, metavirome data are of high complexity requiring robust data preprocessing and analysis methods. In this review, existing bioinformatics methods for measuring species diversity using metavirome data are categorised broadly as either sequence similarity-dependent methods or sequence similarity-independent methods. The former includes a comparison of DNA fragments or assemblies generated in the experiment against reference databases for quantifying species diversity, whereas estimates from the latter are independent of the knowledge of existing sequence data. Current methods and tools are discussed in detail, including their applications and limitations. Drawbacks of the state-of-the-art method are demonstrated through results from a simulation. In addition, alternative approaches are proposed to overcome the challenges in estimating species diversity measures using metavirome data. Keywords: Metagenomics, Phage studies, Biodiversity, Species diversity, Metavirome data, Bioinformatics
url http://www.sciencedirect.com/science/article/pii/S2001037017300223
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