Microfluidic-Integrated CRISPR-Cas Biosensor for Marine Pollutant and Pathogen Monitoring: A Review
Marine ecosystems face escalating threats from heavy metals, harmful algal bloom tox-ins, pathogens, and antibiotic resistance genes, yet conventional detection methods re-main laboratory-dependent and incapable of real-time, multiplexed field monitoring. CRISPR-Cas diagnostics, leveraging programmable Cas12a/Cas13a trans-cleavage for attomolar-level sensitivity, offers a transformative solution when integrated with mi-crofluidic platforms that provide the automation and miniaturisation required for field deployment. This review systematically examines this emerging convergence across four marine target classes: heavy metals, biotoxins, pathogens, and resistance genes alongside integration architectures, signal readout strategies, and comparative performance benchmarking. We identify that only a small fraction of reported platforms have been validated in authentic seawater, with cross-class multiplexing, biofouling resistance during autonomous deployment, and regulatory standardisation remaining largely unaddressed. By synthesising this rapidly developing literature and articulating these unresolved challenges, this review provides a foundational reference and research agenda for translating microfluidic-CRISPR biosensors from laboratory proof-of-concept to operational marine environmental surveillance.
Authors
- Yuting Xiao (ORCID: https://orcid.org/0000-0003-3085-4405)
- Youquan Zhao
- Natalia Binti Ali
- Kuiyu Jin
- Yixuan Wang
Publication Details
- Journal
- Biosensors
- Published
- 2026-09-01
- DOI
- https://doi.org/10.3390/bios16090483
- Primary Topic
- CRISPR and Genetic Engineering
- Type
- article
- Field-Weighted Citation Impact
- 0.00