Review of applications of high-throughput sequencing in personalized medicine: barriers and facilitators of future progress in research and clinical application

Author:

Lightbody Gaye1ORCID,Haberland Valeriia2,Browne Fiona1,Taggart Laura3,Zheng Huiru1,Parkes Eileen4,Blayney Jaine K4

Affiliation:

1. School of Computing, Ulster University, Newtownabbey, UK

2. MRC Integrative Epidemiology Unit, Population Health Sciences, Bristol Medical School, University of Bristol, Bristol, UK

3. Almac Diagnostics, Craigavon, UK

4. Centre for Cancer Research & Cell Biology, School of Medicine, Dentistry and Biomedical Sciences, Queen's University, Belfast, UK

Abstract

Abstract There has been an exponential growth in the performance and output of sequencing technologies (omics data) with full genome sequencing now producing gigabases of reads on a daily basis. These data may hold the promise of personalized medicine, leading to routinely available sequencing tests that can guide patient treatment decisions. In the era of high-throughput sequencing (HTS), computational considerations, data governance and clinical translation are the greatest rate-limiting steps. To ensure that the analysis, management and interpretation of such extensive omics data is exploited to its full potential, key factors, including sample sourcing, technology selection and computational expertise and resources, need to be considered, leading to an integrated set of high-performance tools and systems. This article provides an up-to-date overview of the evolution of HTS and the accompanying tools, infrastructure and data management approaches that are emerging in this space, which, if used within in a multidisciplinary context, may ultimately facilitate the development of personalized medicine.

Publisher

Oxford University Press (OUP)

Subject

Molecular Biology,Information Systems

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