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  4. Sub-Nanomolar Detection and Discrimination of Microcystin Congeners Using Aerolysin Nanopores
 
preprint

Sub-Nanomolar Detection and Discrimination of Microcystin Congeners Using Aerolysin Nanopores

Agerova, Alissa  
•
Bada Juarez, Juan Francisco  
•
Abriata, Luciano Andres  
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July 18, 2025

Climate-driven disruptions in aquatic ecosystems are amplifying cyanotoxin production, threatening drinking and recreational water safety. Monitoring of these toxins is challenged by requirements of the low µg/L detections limits and structural diversity. Here, we employ aerolysin nanopores to distinguish seven of the most prevalent microcystin congeners, both individually and in mixtures, at environmentally relevant concentrations. Importantly, we showed that aerolysin enables the detection of microcystins in different lake water samples at concentrations below the World Health Organization's intervention thresholds, reaching picomolar sensitivity. Moreover, combining experiments and molecular dynamics simulations, we further investigated the microcystin sensing mechanism, suggesting that the ionic current blockage is primarily governed by K238 in aerolysin, while dwell time is regulated by R220 constriction site. Our results open the way to use the nanopore sensing technology for real-time monitoring of microcystins in drinking water sources and surface waters.

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Type
preprint
DOI
10.1101/2025.07.15.664886
Author(s)
Agerova, Alissa  

EPFL

Bada Juarez, Juan Francisco  

EPFL

Abriata, Luciano Andres  

EPFL

Marcaida Lopez, Maria Josefina  

EPFL

Carratala, Anna  

EPFL

Janssen, Elizabeth
Cao, Chan
Kohn, Tamar  

EPFL

Dal Peraro, Matteo  

EPFL

Date Issued

2025-07-18

Publisher

bioRxiv

Written at

EPFL

EPFL units
UPDALPE  
LEV  
Available on Infoscience
August 4, 2025
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/252803
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