AI Article Synopsis

  • Surface-enhanced Raman spectroscopy (SERS) is gaining traction in clinical diagnosis and pathology, allowing for real-time monitoring of disease biomarkers in bodily fluids.
  • Advances in micro/nanotechnology are enhancing the capabilities of SERS, with potential applications across multiple scientific fields, including medicine and environmental science.
  • The review discusses the current state of SERS technology, particularly the use of ZnO-based substrates, highlighting its progress towards practical clinical applications for early neurodegenerative disease diagnosis by addressing existing challenges in biomarker detection.

Article Abstract

Surface-enhanced Raman spectroscopy (SERS) applications in clinical diagnosis and spectral pathology are increasing due to the potential of the technique to bio-barcode incipient and differential diseases via real-time monitoring of biomarkers in fluids and in real-time via biomolecular fingerprinting. Additionally, the rapid advancements in micro/nanotechnology have a visible influence in all aspects of science and life. The miniaturization and enhanced properties of materials at the micro/nanoscale transcended the confines of the laboratory and are revolutionizing domains such as electronics, optics, medicine, and environmental science. The societal and technological impact of SERS biosensing by using semiconductor-based nanostructured smart substrates will be huge once minor technical pitfalls are solved. Herein, challenges in clinical routine testing are addressed in order to understand the context of how SERS can perform in real, in vivo sampling and bioassays for early neurodegenerative disease (ND) diagnosis. The main interest in translating SERS into clinical practice is reinforced by the practical advantages: portability of the designed setups, versatility in using nanomaterials of various matter and costs, readiness, and reliability. As we will present in this review, in the frame of technology readiness levels (TRL), the current maturity reached by semiconductor-based SERS biosensors, in particular that of zinc oxide (ZnO)-based hybrid SERS substrates, is situated at the development level TRL 6 (out of 9 levels). Three-dimensional, multilayered SERS substrates that provide additional plasmonic hot spots in the z-axis are of key importance in designing highly performant SERS biosensors for the detection of ND biomarkers.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10216625PMC
http://dx.doi.org/10.3390/bios13050499DOI Listing

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