4.4 Article

Somatic Mutation Screening Using Archival Formalin-Fixed, Paraffin-Embedded Tissues by Fluidigm Multiplex PCR and Illumina Sequencing

Journal

JOURNAL OF MOLECULAR DIAGNOSTICS
Volume 17, Issue 5, Pages 521-532

Publisher

ELSEVIER SCIENCE INC
DOI: 10.1016/j.jmoldx.2015.04.008

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Funding

  1. Leukaemia & Lymphoma Research [LLR10006, LLR13006]
  2. Kay Kendal Leukaemia Fund [KKL649, KKL582]
  3. Medical Research Council, Department of Pathology, University of Cambridge
  4. Addenbrooke's Charitable Trust
  5. Pathological Society of UK Ireland
  6. China Scholarship Council, Ministry of Education, China
  7. Kay Kendal Leukemia Fund [KKL649]
  8. Addenbrooke's Charitable Trust fellowship
  9. Cancer Research UK [22310] Funding Source: researchfish

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High-throughput somatic mutation screening using FFPE tissues is a major challenge because of a Lack of established methods and validated variant calling algorithms. We aimed to develop a targeted sequencing protocol by Fluidigm multiplex PCR and Illumina sequencing and to establish a companion variant calling algorithm. The experimental protocol and variant calling algorithm were first developed and optimized against a series of somatic mutations (147 substitutions, 12 indels ranging from 1 to 33 bp) in seven genes, previously detected by Sanger sequencing of DNA from 163 FFPE lymphoma biopsy specimens. The optimized experimental protocol and variant calling algorithm were further ascertained in two separate experiments by including the seven genes as a part of Larger gene panels (22 or 13 genes) using FFPE and high-molecular-weight lymphoma DNAs, respectively. We found that most false-positive variants were due to DNA degradation, deamination, and Taq polymerase errors, but they were nonreproducible and could be efficiently eliminated by duplicate experiments. A small fraction of false-positive variants appeared in duplicate, but they were at low alternative allele frequencies and could be separated from mutations when appropriate threshold value was used. In conclusion, we established a robust practical approach for high-throughput mutation screening using archival FFPE tissues.

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