SmMIP-tools: a computational toolset for processing and analysis of single-molecule molecular inversion probes-derived data

Jessie J F Medeiros, Jose-Mario Capo-Chichi, Liran I Shlush, John E Dick, Andrea Arruda, Mark D Minden, Sagi Abelson

Research output: Contribution to journalArticlepeer-review

Abstract

Motivation: Single-molecule molecular inversion probes (smMIPs) provide an exceptionally cost-effective and modular approach for routine or large-cohort next-generation sequencing. However, processing the derived raw data to generate highly accurate variants calls remains challenging. Results: We introduce SmMIP-tools, a comprehensive computational method that promotes the detection of single nucleotide variants and short insertions and deletions from smMIP-based sequencing. Our approach delivered near-perfect performance when benchmarked against a set of known mutations in controlled experiments involving DNA dilutions and outperformed other commonly used computational methods for mutation detection. Comparison against clinically approved diagnostic testing of leukaemia patients demonstrated the ability to detect both previously reported variants and a set of pathogenic mutations that did not pass detection by clinical testing. Collectively, our results indicate that increased performance can be achieved when tailoring data processing and analysis to its related technology. The feasibility of using our method in research and clinical settings to benefit from low-cost smMIP technology is demonstrated.

Original languageEnglish
Pages (from-to)2088-2095
Number of pages8
JournalBioinformatics
Volume38
Issue number8
DOIs
StatePublished - 15 Apr 2022

All Science Journal Classification (ASJC) codes

  • Statistics and Probability
  • Biochemistry
  • Molecular Biology
  • Computer Science Applications
  • Computational Theory and Mathematics
  • Computational Mathematics

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