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Updated: Dec 11, 2025

Rare Event Detection Using Error-corrected DNA and RNA Sequencing
Published on: August 3, 2018
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.
Abstract:
The protocol describes a naked-eye colorimetric test for the detection of somatic point mutations in an excess of wild type DNA. The future foreseen application of the method is the identification of rare mutations in circulating cell-free DNA from liquid biopsies, with a relevance in cancer diagnostics and stratification of oncological patients for personalized therapy. As a proof of concept, the test has been designed to detect the BRAFV600E mutation in the BRAF gene, which is important to identify the sub-group of melanoma patients that can benefit from targeted therapies with BRAF inhibitors. However, this colorimetric test can be easily generalized to other somatic mutations of clinical relevance due to the use of universal detection probes, thus providing strong potential in oncological diagnostics. The test detects 0.5% of BRAFV600E in an excess of BRAFWT DNA, which matches the sensitivity of some commercial instrumental assays. Such sensitivity is clinically relevant for diagnostic purposes, allowing the early identification of drug-sensitive patients. In contrast to commercial assays based on real-time PCR, this test requires minimal instrumentation and processing, as it can be performed on DNA amplified with a standard PCR (or isothermal techniques) and provides a naked-eye readout with a one-tube reaction of a few steps in only one hour. At present, the test has been used only on synthetic DNA samples. However, the latter have been designed to mimic a real sample amplified from circulating cell-free DNA, to favor the translation of the test to clinical diagnostics.
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.
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