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用于土壤环境中微生物直接评估的磁响应纳米培养物

Magnetically Responsive Nanocultures for Direct Microbial Assessment in Soil Environments.

作者信息

Usman Huda, Molaei Mehdi, House Stephen, Haase Martin F, Dennis Cindi L, Niepa Tagbo H R

出版信息

bioRxiv. 2025 May 18:2025.05.17.654660. doi: 10.1101/2025.05.17.654660.

Abstract

UNLABELLED

Cultivating microorganisms in native-like conditions is vital for bioprospecting and accessing currently unculturable species. However, there remains a gap in scalable tools that can both mimic native microenvironments and enable targeted recovery of microbes from complex settings. Such approaches are essential to advance our understanding of microbial ecology, predict community functions, and discover novel biotherapeutics. We present magnetic nanocultures-a high-throughput microsystem for isolating and growing environmental microbes under near-native conditions. These nanoliter-scale bioreactors are encapsulated in semi-permeable membranes that form magnetic polymeric microcapsules using iron oxide nanoparticles within polydimethylsiloxane-based shells. This design offers mechanical stability and magnetic actuation, enabling efficient retrieval from soil-like environments. The nanocultures are optimized for optical and biological properties to support microbial encapsulation, growth, and sorting. Our study demonstrates the feasibility of using magnetically responsive microenvironments to cultivate elusive microbes, offering a promising platform for discovering previously uncultured or unknown microbial species.

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摘要

未标注

在类似天然的条件下培养微生物对于生物勘探和获取目前无法培养的物种至关重要。然而,在可扩展工具方面仍存在差距,这些工具既要能模拟天然微环境,又要能从复杂环境中实现对微生物的靶向回收。此类方法对于增进我们对微生物生态学的理解、预测群落功能以及发现新型生物疗法至关重要。我们展示了磁性纳米培养物——一种用于在近乎天然条件下分离和培养环境微生物的高通量微系统。这些纳升级生物反应器封装在半透膜中,该半透膜利用聚二甲基硅氧烷基壳内的氧化铁纳米颗粒形成磁性聚合物微胶囊。这种设计提供了机械稳定性和磁驱动能力,能够从类似土壤的环境中高效回收。纳米培养物针对光学和生物学特性进行了优化,以支持微生物的封装、生长和分选。我们的研究证明了使用磁响应微环境培养难以捉摸的微生物的可行性,为发现先前未培养或未知的微生物物种提供了一个有前景的平台。

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