Enhancing aquatic ecosystem environmental DNA capture, preservation and analysis with magnetic spiky silica nanoparticles

Abstract Environmental DNA analysis has transformed the way we monitor aquatic ecosystems, but its large-scale implementation is often limited by extraction methods that are costly, inefficient, and difficult to standardize across different environments. Here we present a solution based on engineered magnetic spiky silica nanoparticles that can overcome these challenges. The material features a high-surface-area, amine-modified spiky silica shell with tunable morphology and porosity, and a magnetic core, enabling efficient capture and purification of environmental DNA directly from water samples. Our optimized workflow outperforms commercial kits in environmental DNA yield, purity, and fragment recovery, while also preserving the DNA at room temperature for easy transport and storage. The method is compatible with standard sequencing approaches and offers a scalable, cost-effective solution for robust environmental DNA-based ecological monitoring in aquatic systems.

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Publication Details

Journal
Communications Earth & Environment
Published
2026-08-31
DOI
https://doi.org/10.1038/s43247-026-03870-9
Primary Topic
Environmental DNA in Biodiversity Studies
Type
article
Field-Weighted Citation Impact
0.00

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article

Enhancing aquatic ecosystem environmental DNA capture, preservation and analysis with magnetic spiky silica nanoparticles

Meng Qiu, Changxiang Hao, 刘维志, Jiexi Chen et al.
Communications Earth & Environment
Environmental DNA in Biodiversity Studies
article

Enhancing aquatic ecosystem environmental DNA capture, preservation and analysis with magnetic spiky silica nanoparticles

Meng Qiu, Changxiang Hao, 刘维志, Jiexi Chen, Wei Wang, Weiqiang Zheng, Li Li, Xudong Liu, Wenlian Cui, Xin Wang, Yuwei Wang, Xue Zhang
article en

Abstract

Abstract Environmental DNA analysis has transformed the way we monitor aquatic ecosystems, but its large-scale implementation is often limited by extraction methods that are costly, inefficient, and difficult to standardize across different environments. Here we present a solution based on engineered magnetic spiky silica nanoparticles that can overcome these challenges. The material features a high-surface-area, amine-modified spiky silica shell with tunable morphology and porosity, and a magnetic core, enabling efficient capture and purification of environmental DNA directly from water samples. Our optimized workflow outperforms commercial kits in environmental DNA yield, purity, and fragment recovery, while also preserving the DNA at room temperature for easy transport and storage. The method is compatible with standard sequencing approaches and offers a scalable, cost-effective solution for robust environmental DNA-based ecological monitoring in aquatic systems.

Communications Earth & EnvironmentVol. 7(1)
Hainan University (CN), Ocean University of China (CN), Hainan Medical University (CN)
Taishan Scholar Foundation of Shandong Province, National Natural Science Foundation of China, Natural Science Foundation of Shandong Province, Servier, National Key Research and Development Program of China, Fundamental Research Funds for the Central Universities
Life in Land
Openalex Percentile: Top 10%
Environmental DNA in Biodiversity Studies
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