Scinovex
articleTop 1% cited

Quantitative and sensitive detection of rare mutations using droplet-based microfluidics

Lab on a Chip · 2011 · Vol. 11(13) · pp. 2156–2156
Deniz PekinYousr SkhiriJean‐Christophe BaretDelphine Le CorreLinas MažutisC. Ben SalemFlorian MillotAbdeslam El HarrakJ. Brian HutchisonJonathan W. LarsonDarren R. LinkPierre Laurent‐PuigAndrew D. GriffithsValérie Taly

Abstract

Somatic mutations within tumoral DNA can be used as highly specific biomarkers to distinguish cancer cells from their normal counterparts. These DNA biomarkers are potentially useful for the diagnosis, prognosis, treatment and follow-up of patients. In order to have the required sensitivity and specificity to detect rare tumoral DNA in stool, blood, lymph and other patient samples, a simple, sensitive and quantitative procedure to measure the ratio of mutant to wild-type genes is required. However, techniques such as dual probe TaqMan(®) assays and pyrosequencing, while quantitative, cannot detect less than ∼1% mutant genes in a background of non-mutated DNA from normal cells. Here we describe a procedure allowing the highly sensitive detection of mutated DNA in a quantitative manner within complex mixtures of DNA. The method is based on using a droplet-based microfluidic system to perform digital PCR in millions of picolitre droplets. Genomic DNA (gDNA) is compartmentalized in droplets at a concentration of less than one genome equivalent per droplet together with two TaqMan(®) probes, one specific for the mutant and the other for the wild-type DNA, which generate green and red fluorescent signals, respectively. After thermocycling, the ratio of mutant to wild-type genes is determined by counting the ratio of green to red droplets. We demonstrate the accurate and sensitive quantification of mutated KRAS oncogene in gDNA. The technique enabled the determination of mutant allelic specific imbalance (MASI) in several cancer cell-lines and the precise quantification of a mutated KRAS gene in the presence of a 200,000-fold excess of unmutated KRAS genes. The sensitivity is only limited by the number of droplets analyzed. Furthermore, by one-to-one fusion of drops containing gDNA with any one of seven different types of droplets, each containing a TaqMan(®) probe specific for a different KRAS mutation, or wild-type KRAS, and an optical code, it was possible to screen the six common mutations in KRAS codon 12 in parallel in a single experiment.

Innovative Microfluidic and Catalytic Techniques InnovationCancer Genomics and DiagnosticsMicrofluidic and Capillary Electrophoresis ApplicationsMutantgenomic DNADNATaqManDigital polymerase chain reactionSomatic cellBiologyMolecular biologyKRASGene

MeSH terms

AllelesCodonDNA Mutational AnalysisHumansMutationGenes, rasSensitivity and SpecificityReproducibility of ResultsPolymerase Chain ReactionCell Line, TumorMicrofluidic Analytical Techniques

Funding

  • Royal Society
  • Royal Society of Chemistry
  • National Institutes of Health
Citations
522
FWCI
23.42
field-weighted impact
References
75
Percentile
100%
vs. same field & year
Citations per year
References
Formation of dispersions using “flow focusing” in microchannels
Applied Physics Letters · 2003 · 2,229 citations
Cancer genes and the pathways they control
Nature Medicine · 2004 · 4,243 citations
Soft Lithography
Angewandte Chemie International Edition · 1998 · 4,197 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.