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The cultivation of environmental microorganisms has long been hindered by the inability to replicate complex native conditions in vitro. The isolation chip (iChip) addresses this limitation by facilitating the growth of previously uncultivable microorganisms through in situ incubation. Designed for high-throughput microbial cultivation, the iChip comprises hundreds of microchambers, each capable of housing a single microbial cell. These microchambers are loaded with a mixture of molten agar and...
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Microfluidic Paper-Based Lab-on-a-Chip Chemiluminescence Sensing for Healthcare and Environmental Applications: A

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Microfluidic paper-based lab-on-a-chip (μPLOC) systems combined with chemiluminescence (CL) sensing offer sensitive, portable analysis. These systems are ideal for decentralized healthcare and environmental monitoring in resource-limited settings.

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Area of Science:

  • Analytical Chemistry
  • Biomedical Engineering
  • Materials Science

Background:

  • Microfluidic paper-based lab-on-a-chip (μPLOC) systems leverage paper's properties for portable diagnostics.
  • Chemiluminescence (CL) sensing provides high sensitivity and low background noise for detection.
  • Integrating μPLOCs with CL enables excitation-free signal generation, crucial for resource-limited environments.

Purpose of the Study:

  • To review recent advancements in μPLOC-CL sensing platforms.
  • To highlight applications in healthcare and environmental monitoring.
  • To discuss challenges and future prospects of μPLOC-CL technology.

Main Methods:

  • Device configurations and fabrication approaches for μPLOC-CL systems.
  • Development of nanomaterial-based signal amplification and novel CL probes.
  • Integration with information and communication technologies (ICT) for enhanced diagnostics.

Main Results:

  • Demonstrated μPLOC-CL platforms for sensitive detection in diverse settings.
  • Advancements in multiplexing capabilities and smartphone-based readouts.
  • Progress in applying μPLOC-CL for healthcare and environmental monitoring.

Conclusions:

  • μPLOC-CL sensing offers a promising avenue for point-of-care diagnostics and point-of-need monitoring.
  • Addressing challenges like reagent stability and standardization is key for real-world adoption.
  • Future developments focus on material integration and digitalization for improved performance and sustainability.