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.

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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