SC2020Top-tier venue
Distributed many-to-many protein sequence alignment using sparse matrices
Oguz Selvitopi, Saliya Ekanayake, Giulia Guidi, Georgios A. Pavlopoulos, Ariful Azad, Aydin Buluç
Abstract
Identifying similar protein sequences is a core step in many computational biology pipelines such as detection of homologous protein sequences, generation of similarity protein graphs for downstream analysis, functional annotation, and gene location. Performance and scalability of protein similarity search have proven to be a bottleneck in many bioinformatics pipelines due to increase in cheap and abundant sequencing data. This work presents a new distributed-memory software PASTIS. PASTIS relies on sparse matrix computations for efficient identification of possibly similar proteins. We use distributed sparse matrices for scalability and show that the sparse matrix infrastructure is a great fit for protein similarity search when coupled with a fully-distributed dictionary of sequences that allow remote sequence requests to be fulfilled. Our algorithm incorporates the unique bias in amino acid sequence substitution in search without altering basic sparse matrix model, and in turn, achieves ideal scaling up to millions of protein sequences.
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Install the CLIlune papers fulltext 7874b940-adf8-4fe0-91df-880223bb04cbCited by top-tier papers2
- Space Efficient Sequence Alignment for SRAM-Based Computing: X-Drop on the Graphcore IPULuk Burchard, Max Xiaohang Zhao, Johannes Langguth, Aydin Buluç et al.SC 2023 · 9 citations
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