The TryptoBoost project has achieved remarkable progress beyond the state of the art, advancing research in UV fluorescence enhancement, label-free protein detection, and related fields. These achievements hold promises for diverse practical applications.
- Single Protein UV Fluorescence Enhancement: We broke new ground by demonstrating single protein UV fluorescence enhancement using aluminum zero-mode waveguide nanoapertures, enabling observation of proteins without external fluorescent markers—a pioneering feat in UV plasmonics.
- Enhanced Protein Photostability: Our innovative approach, involving oxygen scavengers and reducing agents, significantly improved protein photostability in the UV range, marking the first quantitative assessment of photostability improvement strategies for label-free UV proteins.
- Optical Horn Antenna Platform: The novel optical horn antenna platform offers unprecedented sensitivity and resolution for label-free UV protein detection. It enables real-time monitoring of protein behavior, advancing biochemical assays with single protein resolution.
- Single Tryptophan Detection: Advancements in the UV horn antenna design push sensitivity to the single tryptophan level, allowing the study of proteins with only a few tryptophan residues.
- UV Resonant Nanogap Antennas: Rhodium nanocubes-based UV resonant nanogap antennas significantly amplify UV autofluorescence, enhancing brightness by up to 120-fold and enabling UV autofluorescence correlation spectroscopy at high concentrations.
In related fields:
- Fluorescence Spectroscopy and Nanophotonics: Aluminum nanoapertures advance single molecule Förster resonance energy transfer studies and DNA-peptide interactions in visible spectral ranges.
- Nano-Optical Tweezers: Research quantifying temperature increases in nano-optical trapping optimizes thermal force for plasmonic trapping, achieving remarkable capabilities for nano-objects.
- Nanophotonic Devices Fabrication: Strategies counter UV photocorrosion of aluminum, exploring alternative materials and designs in nanophotonic device fabrication.
This interdisciplinary project, bridging physics, chemistry, and nanosciences, fosters collaboration and innovation at their intersection. These achievements underscore the remarkable progress made in the TryptoBoost project, promising transformative impact across scientific disciplines and applications.