Incorporating CRISPR Techniques with Electrochemical Sensors: From Signal-Off to Signal-On Assays

Electrochemical biosensors integrating the programmable nucleic acid recognition of CRISPR systems with the low-cost and portable electrochemical transduction have emerged as powerful sensing platforms for molecular diagnostics. Early designs mainly relied on turn-off signal transduction, where target-activated CRISPR enzymes cleave probes conjugated to the electrode, resulting in the release of redox reporters from the electrode surface and the consequent signal decrease. Although conceptually straightforward, these turn-off sensors are intrinsically limited by high background, low sensitivity, and large signal variations. To address these limitations, recent efforts have increasingly shifted toward turn-on strategies, in which electrochemical signals are generated in response to target binding. This review highlights recent advances in applying CRISPR technology to electrochemical biosensing, with a focus on the design principles of CRISPR systems and molecular assembly to achieve turn-off and turn-on signal transduction. Nanomaterials, DNA nanotechnology, and amplification strategies facilitate emerging turn-on approaches for sensitive electrochemical sensing. Key challenges and research needs include improving the limit of detection, robustness, and applicability to point-of-care and on-site testing. This review emphasizes the importance of signal-transduction designs and provides perspectives for developing sensitive, specific, and practical CRISPR-based electrochemical biosensors.

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Publication Details

Journal
ACS Sensors
Published
2026-09-04
DOI
https://doi.org/10.1021/acssensors.6c01998
Primary Topic
CRISPR and Genetic Engineering
Type
article
Field-Weighted Citation Impact
0.00

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article

Incorporating CRISPR Techniques with Electrochemical Sensors: From Signal-Off to Signal-On Assays

X. Chris Le, Hongquan Zhang, Chenyang Yang, Jianyu Hu
ACS Sensors
CRISPR and Genetic Engineering
article

Incorporating CRISPR Techniques with Electrochemical Sensors: From Signal-Off to Signal-On Assays

X. Chris Le, Hongquan Zhang, Chenyang Yang, Jianyu Hu
article en

Abstract

Electrochemical biosensors integrating the programmable nucleic acid recognition of CRISPR systems with the low-cost and portable electrochemical transduction have emerged as powerful sensing platforms for molecular diagnostics. Early designs mainly relied on turn-off signal transduction, where target-activated CRISPR enzymes cleave probes conjugated to the electrode, resulting in the release of redox reporters from the electrode surface and the consequent signal decrease. Although conceptually straightforward, these turn-off sensors are intrinsically limited by high background, low sensitivity, and large signal variations. To address these limitations, recent efforts have increasingly shifted toward turn-on strategies, in which electrochemical signals are generated in response to target binding. This review highlights recent advances in applying CRISPR technology to electrochemical biosensing, with a focus on the design principles of CRISPR systems and molecular assembly to achieve turn-off and turn-on signal transduction. Nanomaterials, DNA nanotechnology, and amplification strategies facilitate emerging turn-on approaches for sensitive electrochemical sensing. Key challenges and research needs include improving the limit of detection, robustness, and applicability to point-of-care and on-site testing. This review emphasizes the importance of signal-transduction designs and provides perspectives for developing sensitive, specific, and practical CRISPR-based electrochemical biosensors.

ACS Sensors
University of Alberta (CA)
Canada Research Coordinating Committee, Canada Foundation for Innovation, Alberta Innovates, Canadian Institutes of Health Research, Natural Sciences and Engineering Research Council of Canada
Industry, innovation and infrastructure
Openalex Percentile: Top 17%
CRISPR and Genetic Engineering
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Incorporating CRISPR Techniques with Electrochemical Sensors: From Signal-Off to Signal-On Assays — X. Chris Le, Hongquan Zhang, et al. · ACS Sensors (2026) | TGRS Research Map | TGRS