4.6 Article

Prospects of Surface-Enhanced Raman Spectroscopy for Biomarker Monitoring toward Precision Medicine

Journal

ACS PHOTONICS
Volume 9, Issue 2, Pages 333-350

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsphotonics.1c01934

Keywords

biosensors; plasmonics; SERS; personalized medicine; clinical monitoring

Funding

  1. Spanish Ministry of Science, Innovation and Universities
  2. European Research Council [819242, 787510]
  3. Maria de Maeztu Units of Excellence Program from the Spanish State Research Agency [MDM-2017-0720]
  4. MICINN [PID2019-108787RB-I00]
  5. Gipuzkoa Foru Aldundia (Gipuzkoa Fellowship Program) [2021-FELL-000018-01]
  6. European Research Council (ERC) [787510, 819242] Funding Source: European Research Council (ERC)

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Future precision medicine relies on the detection of validated biomarkers to classify patients accurately and predict disease risk, prognosis, and treatment response. Surface-enhanced Raman scattering (SERS) spectroscopy, with its high sensitivity and label-free operation, is recognized as a promising technology for clinical monitoring and biomarker discovery. However, there are several variables that need to be considered for accurate SERS monitoring, especially when dealing with biological sources.
Future precision medicine will be undoubtedly sustained by the detection of validated biomarkers that enable a precise classification of patients based on their predicted disease risk, prognosis, and response to a specific treatment. Up to now, genomics, transcriptomics, and immunohistochemistry have been the main clinically amenable tools at hand for identifying key diagnostic, prognostic, and predictive biomarkers. However, other molecular strategies, including metabolomics, are still in their infancy and require the development of new biomarker detection technologies, toward routine implementation into clinical diagnosis. In this context, surface-enhanced Raman scattering (SERS) spectroscopy has been recognized as a promising technology for clinical monitoring thanks to its high sensitivity and label-free operation, which should help accelerate the discovery of biomarkers and their corresponding screening in a simpler, faster, and less-expensive manner. Many studies have demonstrated the excellent performance of SERS in biomedical applications. However, such studies have also revealed several variables that should be considered for accurate SERS monitoring, in particular, when the signal is collected from biological sources (tissues, cells or biofluids). This Perspective is aimed at piecing together the puzzle of SERS in biomarker monitoring, with a view on future challenges and implications. We address the most relevant requirements of plasmonic substrates for biomedical applications, as well as the implementation of tools from artificial intelligence or biotechnology to guide the development of highly versatile sensors.

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