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Surface Enhanced Raman Spectroscopy Detection of Biomolecules Using EBL Fabricated Nanostructured Substrates
Published on: March 20, 2015
Surface enhanced Raman spectroscopy based immunosensor for ultrasensitive and selective detection of wild type p53
Anna Rita Bizzarri1, Ilaria Moscetti1, Salvatore Cannistraro1
1Biophysics & Nanoscience Centre, DEB, Università della Tuscia, Viterbo, Italy.
Abstract:
p53 is a powerful transcription factor playing a pivotal role in the prevention of cancer development and in maintaining genome integrity. This oncosuppressor is found to be functionally inactivated by mutations in many human tumors. Accordingly, wild type p53 and its oncogenic mutants represent valuable cancer biomarkers for diagnostic and prognostic purposes. We developed a highly sensitive biosensor, based on Surface Enhanced Raman Spectroscopy, for detection of wild type p53 and of p53R175H, which is one of the most frequent tumor-associated mutants of p53. Our approach combines the huge Raman signal enhancement, mainly arising from the plasmonic resonance effect on molecules close to gold nanoparticles, with the antigen-antibody biorecognition specificity. By following the enhanced signal of a specific Raman marker, intrinsic to the nanoparticle-antibody bioconjugation, we were able to push the antigen detection level down to the attomolar range in buffer and to the femtomolar range in spiked human serum. The method demonstrated a high reproducibility and a remarkable selectivity in discriminating between wild type p53 and p53R175H mutant, in both buffer and serum. A calibration plot was built and validated by ELISA for a reliable quantification of p53. These findings entitle our SERS-based immunosensor as a powerful and reliable tool for a non-invasive screening in human serum targeting p53 network. The approach could be easily extended to ultrasensitive detection of other markers of general interest, with feasible implementations into multiplex assays, functioning as lab-on-chip devices for several applications.
Insights
A novel biosensor using Surface Enhanced Raman Spectroscopy (SERS) detects wild type p53 and its common cancer mutant p53R175H. This highly sensitive method enables early cancer detection and biomarker quantification in human serum.
Area of Science:
- Biomedical Engineering
- Analytical Chemistry
- Molecular Biology
Background:
- The p53 tumor suppressor is crucial for preventing cancer and maintaining genomic stability.
- Mutations in p53 are common in human cancers, leading to its inactivation.
- Wild type p53 and its mutants are significant cancer biomarkers for diagnosis and prognosis.
Purpose of the Study:
- To develop a highly sensitive biosensor for detecting wild type p53 and the p53R175H mutant.
- To utilize Surface Enhanced Raman Spectroscopy (SERS) for ultrasensitive biomarker detection.
- To enable non-invasive screening of p53 network in human serum.
Main Methods:
- Development of a SERS-based biosensor utilizing gold nanoparticles and antibody bioconjugation.
- Employing antigen-antibody biorecognition for specific p53 detection.
- Measuring enhanced Raman signals of a specific Raman marker for quantification.
Main Results:
- Achieved attomolar detection limits in buffer and femtomolar in spiked human serum.
- Demonstrated high reproducibility and selectivity in distinguishing wild type p53 from p53R175H mutant.
- Validated quantification with ELISA, establishing a reliable calibration plot.
Conclusions:
- The SERS-based immunosensor is a powerful tool for non-invasive screening of p53 in human serum.
- The method offers high sensitivity, reproducibility, and selectivity for cancer biomarker detection.
- The approach is adaptable for ultrasensitive detection of other biomarkers and multiplex assays for lab-on-chip devices.
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