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Updated: Feb 10, 2026

Design and Development of Aptamer–Gold Nanoparticle Based Colorimetric Assays for In-the-field Applications
Published on: June 23, 2016
Rapid colorimetric detection of p53 protein function using DNA-gold nanoconjugates with applications for drug
Enock Assah1, Walter Goh2, Xin Ting Zheng3
1Institute of Materials Research and Engineering, Agency for Science, Technology and Research (A*STAR), 2 Fusionopolis Way, Innovis #08-03, 138634, Singapore; Department of Biomedical Engineering, Faculty of Engineering, National University of Singapore, 7 Engineering Drive 1, Singapore, 117574, Singapore.
Abstract:
The tumor suppressor protein p53 plays a central role in preventing cancer through interaction with DNA response elements (REs) to regulate target gene expression in cells. Due to its significance in cancer biology, relentless efforts have been directed toward understanding p53-DNA interactions for the development of cancer therapeutics and diagnostics. In this paper, we report a rapid, label-free and versatile colorimetric assay to detect wildtype p53 DNA-binding function in complex solutions. The assay design is based on a concept that alters interparticle-distances between RE-AuNPs from a crosslinking effect induced through tetramerization of wildtype p53 protein (p53-WT) upon binding to canonical DNA motifs modified on gold nanoparticles (RE-AuNPs). This leads to a visible solution color change from red to blue, which is quantifiable by the UV- visible absorption spectra with a detection limit of 5 nM. Contrastingly, no color change was observed for the binding-deficient p53 mutants and non-specific proteins due to their inability to crosslink RE-AuNPs. Based on this sensing principle, we further demonstrate its utility for fast detection of drug-induced DNA binding function to cancer-associated Y220C mutant p53 protein using well-established reactivating compounds. By exploiting the dominant-negative property of mutant p53 over p53-WT and interactions with RE-AuNPs, this assay is configurable to detect low numbers of mutant p53 expressing cells in miniscule sample fractions obtained from typical core needle biopsy-sized tissues without signal attrition, alluding to the potential for biopsy sampling in cancer diagnostics or for defining cancer margins. This nanogold enabled colorimetric assay provides a facile yet robust method for studying important parameters influencing p53-DNA interactions with great promises for clinically pertinent applications.
Insights
A new colorimetric assay detects wildtype p53 DNA-binding function using gold nanoparticles. This method can also identify reactivated mutant p53, showing promise for cancer diagnostics and biopsy analysis.
Area of Science:
- Biochemistry
- Nanotechnology
- Molecular Biology
Background:
- The tumor suppressor protein p53 is crucial in cancer prevention by regulating gene expression through DNA interactions.
- Understanding p53-DNA interactions is vital for developing cancer therapeutics and diagnostics.
- Existing methods for studying p53-DNA binding can be complex and time-consuming.
Purpose of the Study:
- To develop a rapid, label-free, and versatile colorimetric assay for detecting wildtype p53 DNA-binding function.
- To demonstrate the assay's utility in detecting drug-induced reactivation of mutant p53.
- To explore the assay's potential for cancer diagnostics using biopsy samples.
Main Methods:
- A colorimetric assay utilizing DNA-motif-modified gold nanoparticles (RE-AuNPs) and p53 tetramerization.
- Detection of interparticle distance changes via UV-visible spectroscopy, indicated by a color shift from red to blue.
- Application of the assay to detect drug-induced binding of reactivating compounds to cancer-associated Y220C mutant p53.
Main Results:
- The assay successfully detected wildtype p53 DNA-binding function with a detection limit of 5 nM.
- A visible color change from red to blue quantified p53-DNA interactions.
- The assay demonstrated the ability to detect drug-induced reactivation of mutant p53 and identify mutant p53-expressing cells in small tissue samples.
Conclusions:
- The developed nanogold colorimetric assay offers a facile and robust method for studying p53-DNA interactions.
- The assay shows significant potential for clinical applications in cancer diagnostics, including biopsy analysis and defining cancer margins.
- This method provides a valuable tool for advancing cancer therapeutics and diagnostics by enabling precise study of p53 function.
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