Mass spectrometric detection of KRAS protein mutations using molecular imprinting

Rachel L Norman1, Rajinder Singh1, Frederick W Muskett2,3

  • 1Leicester Cancer Research Centre, Leicester Royal Infirmary, University of Leicester, Leicester, LE1 5WW, UK. Djlj1@le.ac.uk.

Nanoscale
|December 2, 2021
PubMed

Insights

Novel nano molecularly imprinted polymers (nanoMIPs) efficiently capture KRAS oncogene mutations. This method enables precise cancer genotyping and epitope discovery, paving the way for improved diagnostics and therapies.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Oncology

Background:

  • Cancer involves genetic mutations impacting protein function.
  • Identifying cancer-driving mutations and antibody binding sites (epitopes) is crucial for therapy development.
  • Nano molecularly imprinted polymers (nanoMIPs) offer a novel alternative to antibodies for specific molecular capture.

Purpose of the Study:

  • To utilize nanoMIPs for capturing the KRAS oncogene to identify cancer-indicative mutations.
  • To investigate the combined capabilities of nanoMIPs and LC-MS for mutation assignment and epitope discovery.
  • To demonstrate the diagnostic potential of nanoMIPs in cancer research.

Main Methods:

  • Development of nanoMIPs targeting the KRAS protein.
  • Coupling nanoMIPs (capture) with liquid chromatography-mass spectrometry (LC-MS) for detection.
  • Tryptic digestion of captured KRAS to release peptides for mutation analysis.

Main Results:

  • Successfully identified three KRAS epitopes using nanoMIPs, a faster method than traditional protocols.
  • Determined mutation status of KRAS using LC-MS after nanoMIP capture and digestion.
  • Demonstrated effective genotyping of a KRAS cell line and precise mutational status diagnosis in cancer patient plasma.

Conclusions:

  • NanoMIPs coupled with LC-MS provide an efficient method for KRAS mutation detection and epitope discovery.
  • This approach shows significant potential for translation into clinical diagnostics and cancer therapy.
  • The study highlights a clear pathway for the clinical utility of nanoMIPs in oncology.

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