Nanopore sequensing: theory and practice
https://doi.org/10.35825/2587-5728-2025-9-4-383-398
Abstract
Highlights
A comparative study was conducted on the suitability of the domestic "Nanoporus" platform and its foreign counterpart, MinION, for solving the tasks of the NBC Protection Corps.
The comparable effectiveness of the "Nanoporus" platform was demonstrated after applying post-processing algorithms.
Key advantages of the "Nanoporus" platform are its cost-effectiveness and capability for autonomous operation.
Relevance. The study is determined by the need to develop domestic technologies for the rapid identification of pathogenic biological agents (PBA) in field conditions by the NBC Protection Corps.
Purpose of the study is a comprehensive review of the theoretical foundations and practical applications of nanopore sequencing technology, as well as the prospects for its implementation in the NBC Protection Corps of the Russian Armed Forces.
Materials and Methods. The quality of genome assemblies from the "Nanoporus" (Nanoporus, Russia) and MinION (Oxford Nanopore Technologies, UK) sequencing systems was compared. The reference strain E. coli XL1-Blue (Evrogen, Russia) was used as the biological model. Experimental nanopore sequencing was performed, including DNA extraction, library preparation, and subsequent bioinformatic data processing using the Flye and Medaka tools. Genome assembly completeness and accuracy were analyzed based on N50 and Q-score metrics.
Results. It was shown that the domestic "Nanoporus" platform provides high genome assembly quality, comparable to the results obtained with the MinION system, but at significantly lower operational costs. The platform is compact and suitable for autonomous operation in field conditions.
Conclusion. The "Nanoporus" platform is promising for integration into the mobile laboratories of the NBC Protection Corps of the Russian Armed Forces and can be used for solving PBA identification tasks.
Keywords
About the Authors
A. A. PetrovRussian Federation
Aleksandr A. Petrov. Head of Research Department, Dr Sci. (Med.).
Oktyabrskaya Street, 11, Sergiev Posad-6 141306
A. M. Ermakov
Russian Federation
Artem M. Ermakov. Head of the Genome Research Laboratory, Cand. Sci. (Biol.).
Sirenevaya Street, 8, Serpukhov 142201, Moscow region
Institutskaya Street, 3, Pushchino 142290, Moscow Region
D. P. Belozerov
Russian Federation
Denis P. Belozerov. Senior Researcher.
Oktyabrskaya Street, 11, Sergiev Posad-6 141306
M. Yu. Pavlyukov
Russian Federation
Mikhail Yu. Pavlyukov. Senior Researcher.
Oktyabrskaya Street, 11, Sergiev Posad-6 141306
M. I. Soldatenkova
Russian Federation
Maria I. Soldatenkova. Junior researcher.
Oktyabrskaya Street, 11, Sergiev Posad-6 141306
D. A. Kutaev
Russian Federation
Dmitriy A. Kutaev. Deputy of Head of 48 Central Research Institute of the Ministry of Defence of the Russian Federation on scientific research, Cand. Sci. (Biol.).
Oktyabrskaya Street, 11, Sergiev Posad-6 141306
S. V. Borisevich
Russian Federation
Sergey V. Borisevich. Head of 48 Central Research Institute of the Ministry of Defence of the Russian Federation, Academician of Russian Academy of Sciences, Dr Sci. (Biol.), Professor.
Oktyabrskaya Street, 11, Sergiev Posad-6 141306
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Review
For citations:
Petrov A.A., Ermakov A.M., Belozerov D.P., Pavlyukov M.Yu., Soldatenkova M.I., Kutaev D.A., Borisevich S.V. Nanopore sequensing: theory and practice. Journal of NBC Protection Corps. 2025;9(4):383-398. (In Russ.) https://doi.org/10.35825/2587-5728-2025-9-4-383-398
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