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Cascade-heterogated proton nanotransistors for multiplex pH-interval imaging.

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We developed band-pass light-up nanokits (BLINK) that selectively report specific acidic pH ranges in biological environments. This technology enables precise optical imaging for diagnosing and treating pH-related diseases.

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Area of Science:

  • Biomedical Engineering
  • Nanotechnology
  • Molecular Imaging

Background:

  • Strict pH regulation is crucial for organismal homeostasis.
  • Pathological conditions often involve distinct pH dysregulation, presenting diagnostic and therapeutic targets.
  • Existing methods lack selective reporting for specific acidic pH intervals in biological systems.

Purpose of the Study:

  • To design and develop band-pass light-up nanokits (BLINK) for selective reporting of acidic pH intervals.
  • To create a nanodevice capable of gating responses to different proton levels.
  • To enable precise optical imaging of pathophysiological pH dynamics.

Main Methods:

  • Integration of transistor-like polymeric modules for ultra-fast nanophase transitions (<15 ms).
  • Utilizing tandem Förster Resonance Energy Transfer (FRET) relay between encoded fluorophores.
  • Implementing pH heterogating capacity for selective response to specific pH ranges.

Main Results:

  • BLINK nanokits demonstrate selective reporting of acidic intervals with precision up to 0.25 pH units.
  • The nanodevice achieves ultra-fast (<15 ms) and cascade nanophase transitions.
  • Acidic extracellular or intracellular signals are selectively transformed into exponentially amplified fluorescence readouts.

Conclusions:

  • BLINK provides a valuable tool for precise pH sensing in biological environments.
  • This technology enables interval-based optical imaging for disease diagnosis and treatment.
  • The developed nanokits offer a novel approach for monitoring dynamic pH changes in pathophysiological conditions.