New insights into structural features and optimal detection of circulating tumor DNA determined by single-strand DNA

Cynthia Sanchez1,2,3,4, Matthew W Snyder5, Rita Tanos1,2,3,4

  • 11IRCM - Institut de Recherche en Cancérologie de Montpellier, Montpellier, 34298 France.

NPJ Genomic Medicine
|November 28, 2018
PubMed

Insights

This study reveals that nearly half of circulating cell-free DNA (cfDNA) fragments are smaller than 120 nucleotides, a size missed by standard methods. These findings validate specific Q-PCR and single-stranded DNA sequencing for cfDNA analysis.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Genomics

Background:

  • Circulating cell-free DNA (cfDNA) shows promise in diagnostics and personalized medicine.
  • The precise size distribution of cfDNA fragments remains poorly understood, with conflicting reports in existing literature.

Purpose of the Study:

  • To characterize the size distribution of cfDNA fragments in cancer patient plasma.
  • To reconcile discrepancies in cfDNA size profiling between different analytical methods.

Main Methods:

  • Employed ultra-deep sequencing with single-stranded DNA library preparation (SSP-S) and quantitative PCR (Q-PCR) in a blinded study of 11 cancer patients.
  • Compared cfDNA fragment size distribution obtained by SSP-S and Q-PCR with standard double-stranded DNA library preparation (DSP) methods.

Main Results:

  • SSP-S revealed that nearly half of cfDNA fragments are less than 120 nucleotides, undetectable by DSP.
  • Both SSP-S and Q-PCR showed similar fractional size distributions, with high molecular weight cfDNA (>350 bp) comprising only ~2%.
  • Detected small cfDNA fragments likely result from DNA strand nicks revealed during denaturation; most cfDNA exhibits a nucleosome footprint (∼10-bp periodicity).

Conclusions:

  • Nucleosomes appear to be the most stabilizing structure for DNA in circulation.
  • cfDNA is released from cells and dynamically degraded in blood, influenced by nucleosome packing.
  • Validated SSP-S and a specific Q-PCR method for optimal cfDNA analysis, harmonizing sequencing and Q-PCR findings.

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