Literature DB >> 33634312

Benchmarking network-based gene prioritization methods for cerebral small vessel disease.

Huayu Zhang1, Amy Ferguson1, Grant Robertson2, Muchen Jiang3, Teng Zhang4, Cathie Sudlow1,5, Keith Smith1,5, Kristiina Rannikmae1,5, Honghan Wu5,6.   

Abstract

Network-based gene prioritization algorithms are designed to prioritize disease-associated genes based on known ones using biological networks of protein interactions, gene-disease associations (GDAs) and other relationships between biological entities. Various algorithms have been developed based on different mechanisms, but it is not obvious which algorithm is optimal for a specific disease. To address this issue, we benchmarked multiple algorithms for their application in cerebral small vessel disease (cSVD). We curated protein-gene interactions (PGIs) and GDAs from databases and assembled PGI networks and disease-gene heterogeneous networks. A screening of algorithms resulted in seven representative algorithms to be benchmarked. Performance of algorithms was assessed using both leave-one-out cross-validation (LOOCV) and external validation with MEGASTROKE genome-wide association study (GWAS). We found that random walk with restart on the heterogeneous network (RWRH) showed best LOOCV performance, with median LOOCV rediscovery rank of 185.5 (out of 19 463 genes). The GenePanda algorithm had most GWAS-confirmable genes in top 200 predictions, while RWRH had best ranks for small vessel stroke-associated genes confirmed in GWAS. In conclusion, RWRH has overall better performance for application in cSVD despite its susceptibility to bias caused by degree centrality. Choice of algorithms should be determined before applying to specific disease. Current pure network-based gene prioritization algorithms are unlikely to find novel disease-associated genes that are not associated with known ones. The tools for implementing and benchmarking algorithms have been made available and can be generalized for other diseases.
© The Author(s) 2021. Published by Oxford University Press.

Entities:  

Keywords:  benchmarking; cerebral small vessel disease; disease gene association; network-based gene prioritization; protein–protein interaction

Mesh:

Year:  2021        PMID: 33634312      PMCID: PMC8425308          DOI: 10.1093/bib/bbab006

Source DB:  PubMed          Journal:  Brief Bioinform        ISSN: 1467-5463            Impact factor:   13.994


  25 in total

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Authors:  Rui Jiang
Journal:  J Mol Cell Biol       Date:  2015-02-13       Impact factor: 6.216

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Review 3.  CNS small vessel disease: A clinical review.

Authors:  Rocco J Cannistraro; Mohammed Badi; Benjamin H Eidelman; Dennis W Dickson; Erik H Middlebrooks; James F Meschia
Journal:  Neurology       Date:  2019-05-29       Impact factor: 9.910

Review 4.  Cerebral small vessel disease: from pathogenesis and clinical characteristics to therapeutic challenges.

Authors:  Leonardo Pantoni
Journal:  Lancet Neurol       Date:  2010-07       Impact factor: 44.182

5.  A DIseAse MOdule Detection (DIAMOnD) algorithm derived from a systematic analysis of connectivity patterns of disease proteins in the human interactome.

Authors:  Susan Dina Ghiassian; Jörg Menche; Albert-László Barabási
Journal:  PLoS Comput Biol       Date:  2015-04-08       Impact factor: 4.475

6.  Arete - candidate gene prioritization using biological network topology with additional evidence types.

Authors:  Artem Lysenko; Keith Anthony Boroevich; Tatsuhiko Tsunoda
Journal:  BioData Min       Date:  2017-07-06       Impact factor: 2.522

7.  FocusHeuristics - expression-data-driven network optimization and disease gene prediction.

Authors:  Mathias Ernst; Yang Du; Gregor Warsow; Mohamed Hamed; Nicole Endlich; Karlhans Endlich; Hugo Murua Escobar; Lisa-Madeleine Sklarz; Sina Sender; Christian Junghanß; Steffen Möller; Georg Fuellen; Stephan Struckmann
Journal:  Sci Rep       Date:  2017-02-16       Impact factor: 4.379

Review 8.  A Survey of Gene Prioritization Tools for Mendelian and Complex Human Diseases.

Authors:  Olga Zolotareva; Maren Kleine
Journal:  J Integr Bioinform       Date:  2019-09-09

9.  A reference map of the human binary protein interactome.

Authors:  Katja Luck; Dae-Kyum Kim; Luke Lambourne; Kerstin Spirohn; Bridget E Begg; Wenting Bian; Ruth Brignall; Tiziana Cafarelli; Francisco J Campos-Laborie; Benoit Charloteaux; Dongsic Choi; Atina G Coté; Meaghan Daley; Steven Deimling; Alice Desbuleux; Amélie Dricot; Marinella Gebbia; Madeleine F Hardy; Nishka Kishore; Jennifer J Knapp; István A Kovács; Irma Lemmens; Miles W Mee; Joseph C Mellor; Carl Pollis; Carles Pons; Aaron D Richardson; Sadie Schlabach; Bridget Teeking; Anupama Yadav; Mariana Babor; Dawit Balcha; Omer Basha; Christian Bowman-Colin; Suet-Feung Chin; Soon Gang Choi; Claudia Colabella; Georges Coppin; Cassandra D'Amata; David De Ridder; Steffi De Rouck; Miquel Duran-Frigola; Hanane Ennajdaoui; Florian Goebels; Liana Goehring; Anjali Gopal; Ghazal Haddad; Elodie Hatchi; Mohamed Helmy; Yves Jacob; Yoseph Kassa; Serena Landini; Roujia Li; Natascha van Lieshout; Andrew MacWilliams; Dylan Markey; Joseph N Paulson; Sudharshan Rangarajan; John Rasla; Ashyad Rayhan; Thomas Rolland; Adriana San-Miguel; Yun Shen; Dayag Sheykhkarimli; Gloria M Sheynkman; Eyal Simonovsky; Murat Taşan; Alexander Tejeda; Vincent Tropepe; Jean-Claude Twizere; Yang Wang; Robert J Weatheritt; Jochen Weile; Yu Xia; Xinping Yang; Esti Yeger-Lotem; Quan Zhong; Patrick Aloy; Gary D Bader; Javier De Las Rivas; Suzanne Gaudet; Tong Hao; Janusz Rak; Jan Tavernier; David E Hill; Marc Vidal; Frederick P Roth; Michael A Calderwood
Journal:  Nature       Date:  2020-04-08       Impact factor: 49.962

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Journal:  BMC Pulm Med       Date:  2021-09-04       Impact factor: 3.317

Review 2.  Network approaches for modeling the effect of drugs and diseases.

Authors:  T J Rintala; Arindam Ghosh; V Fortino
Journal:  Brief Bioinform       Date:  2022-07-18       Impact factor: 13.994

  2 in total

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