Naked-Eye Detection of Rare Point Mutations in DNA

Gayatri Udayan1, Alessandra Marsella1, Paola Valentini2

  • 1Center for Bio-Molecular Nanotechnologies, Istituto Italiano di Tecnologia (IIT); Department of Engineering for Innovation, University of Salento.

Insights

This study introduces a simple, one-hour colorimetric test for detecting rare somatic mutations in DNA, aiding cancer diagnostics. The assay identifies specific mutations like BRAF^V600E, crucial for personalized cancer therapy.

Area of Science:

  • Molecular Biology
  • Genetics
  • Oncology

Background:

  • Somatic point mutations in DNA are critical biomarkers for cancer diagnostics and personalized therapy.
  • Detecting rare mutations in circulating cell-free DNA (cfDNA) from liquid biopsies presents a significant challenge.
  • Targeted therapies, such as BRAF inhibitors for melanoma, require accurate identification of specific mutations.

Purpose of the Study:

  • To develop a naked-eye colorimetric assay for detecting somatic point mutations in excess wild-type DNA.
  • To establish a proof-of-concept for identifying the BRAF^V600E mutation relevant to melanoma treatment.
  • To create a versatile method adaptable for detecting various clinically relevant somatic mutations.

Main Methods:

  • A novel naked-eye colorimetric detection protocol was designed.
  • The assay utilizes universal detection probes for broad applicability.
  • The method involves a one-tube reaction with minimal instrumentation, following standard PCR or isothermal amplification.

Main Results:

  • The developed test demonstrates a sensitivity of 0.5% for detecting BRAF^V600E in an excess of wild-type DNA.
  • This sensitivity is comparable to existing commercial instrumental assays.
  • The assay provides a clear, naked-eye readout within one hour.

Conclusions:

  • The colorimetric test offers a rapid, accessible, and sensitive method for somatic mutation detection.
  • Its potential application in liquid biopsies for cancer diagnostics and patient stratification is significant.
  • The assay's adaptability and minimal requirements facilitate translation to clinical settings for personalized oncology.