Amplification-free colorimetric detection of exosomal miRNA using a CRISPR/Cas13a-activated HRP/Au/MoS2 nanobiohybrid catalyst

CRISPR-based, amplification-free colorimetric sensing has emerged as a powerful approach for exosomal miRNA (Exo-miR) analysis, offering high specificity, simple operation, and direct visual readout suitable for point-of-care diagnostics. However, the sensitivity of existing systems is limited because conventional colorimetric probes generate inherently weak signals, making the reliable detection of ultralow-abundance Exo-miRs difficult without amplification. Here, we firstly report an amplification-free colorimetric biosensor based on a horseradish peroxidase (HRP)/gold nanoparticle (Au)/molybdenum disulfide (MoS 2 ) nanobiohybrid catalyst (HRP/Au/MoS 2 ) that generates intense chromogenic signals via synergistic catalytic interactions. In this nanoparticle, MoS 2 provides a high-surface-area scaffold with intrinsic peroxidase-like activity, Au nanoparticles facilitate efficient electron transfer, and HRP contributes to high catalytic turnover. Together, these features markedly enhance the oxidation of 3,3′,5,5′-tetramethylbenzidine (TMB) and the resulting blue coloration. Using this signal-amplifying HRP/Au/MoS 2 , a magnet-based sensing system was constructed by immobilizing the HRP/Au/MoS 2 onto magnetic nanobeads (MNBs) through biotinylated single-stranded RNA linkers (MNB–ssRNA–HRP/Au/MoS 2 ). This construction was then integrated into a CRISPR/Cas13a assay, in which the target miR-155 activates Cas13a, which cleaves the ssRNA linkers, releasing the HRP/Au/MoS 2 into solution for colorimetric readout. The resulting biosensor exhibits a detection range of 1 fM–1 nM (LOD = 0.82 fM), and single-nucleotide specificity without nucleic acid amplification. Furthermore, our system enables detection of Exo-miR-155 in both cell-derived exosomes and clinical samples, distinguishing cancer patients from healthy donors. Therefore, this platform represents a promising approach for highly sensitive, selective, simple, and time-efficient detection of Exo-miR, which can be used for liquid biopsy-based early cancer detection.

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Journal
Nano Convergence
Published
2026-09-30
DOI
https://doi.org/10.1186/s40580-026-00580-y
Primary Topic
Advanced Nanomaterials in Catalysis
Type
article
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Amplification-free colorimetric detection of exosomal miRNA using a CRISPR/Cas13a-activated HRP/Au/MoS2 nanobiohybrid catalyst

Minkyu Shin, Ha Rim Ahn, Li Chenzhong, Jeong‐Woo Choi et al.
Nano Convergence
Advanced Nanomaterials in Catalysis
article

Amplification-free colorimetric detection of exosomal miRNA using a CRISPR/Cas13a-activated HRP/Au/MoS2 nanobiohybrid catalyst

Minkyu Shin, Ha Rim Ahn, Li Chenzhong, Jeong‐Woo Choi, Joungpyo Lim, Jin-Ha Choi, Sangeun Lee, Shan Liu, Dain Jung
article en

Abstract

CRISPR-based, amplification-free colorimetric sensing has emerged as a powerful approach for exosomal miRNA (Exo-miR) analysis, offering high specificity, simple operation, and direct visual readout suitable for point-of-care diagnostics. However, the sensitivity of existing systems is limited because conventional colorimetric probes generate inherently weak signals, making the reliable detection of ultralow-abundance Exo-miRs difficult without amplification. Here, we firstly report an amplification-free colorimetric biosensor based on a horseradish peroxidase (HRP)/gold nanoparticle (Au)/molybdenum disulfide (MoS 2 ) nanobiohybrid catalyst (HRP/Au/MoS 2 ) that generates intense chromogenic signals via synergistic catalytic interactions. In this nanoparticle, MoS 2 provides a high-surface-area scaffold with intrinsic peroxidase-like activity, Au nanoparticles facilitate efficient electron transfer, and HRP contributes to high catalytic turnover. Together, these features markedly enhance the oxidation of 3,3′,5,5′-tetramethylbenzidine (TMB) and the resulting blue coloration. Using this signal-amplifying HRP/Au/MoS 2 , a magnet-based sensing system was constructed by immobilizing the HRP/Au/MoS 2 onto magnetic nanobeads (MNBs) through biotinylated single-stranded RNA linkers (MNB–ssRNA–HRP/Au/MoS 2 ). This construction was then integrated into a CRISPR/Cas13a assay, in which the target miR-155 activates Cas13a, which cleaves the ssRNA linkers, releasing the HRP/Au/MoS 2 into solution for colorimetric readout. The resulting biosensor exhibits a detection range of 1 fM–1 nM (LOD = 0.82 fM), and single-nucleotide specificity without nucleic acid amplification. Furthermore, our system enables detection of Exo-miR-155 in both cell-derived exosomes and clinical samples, distinguishing cancer patients from healthy donors. Therefore, this platform represents a promising approach for highly sensitive, selective, simple, and time-efficient detection of Exo-miR, which can be used for liquid biopsy-based early cancer detection.

Nano ConvergenceVol. 13(1)
Hankyong National University (KR), Sogang University (KR), Chinese University of Hong Kong (HK), Chinese University of Hong Kong, Shenzhen (CN), Sichuan Academy of Medical Sciences & Sichuan Provincial People's Hospital (CN), Jeonbuk National University Hospital (KR), Jeonbuk National University (KR)
Openalex Percentile: Top 26%
Advanced Nanomaterials in Catalysis
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