[Methodological breakthroughs and challenges in research of soil phage microecology].

Q4 Biochemistry, Genetics and Molecular Biology
Xiaofang Wang, Shuo Wang, Keming Yang, Yike Tang, Yangchun Xu, Qirong Shen, Zhong Wei
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引用次数: 0

Abstract

Phages, as obligate bacterial and archaeal parasites, constitute a virus group of paramount ecological significance due to their exceptional abundance and genetic diversity. These biological entities serve as critical regulators in Earth's ecosystems, driving biogeochemical cycles, energy fluxes, and ecosystem services across terrestrial and marine environments. Within soil microbiomes, phages function as microbial "dark matter," maintaining the soil-plant system balance through precise modulation of the microbial community structure and functional dynamics. Despite the growing research interests in soil phages in recent years, the proportion of such studies in environmental virology remains disproportionately low, which is primarily attributed to researchers' limited familiarity with the research methodologies for phage microecology, incomplete technical frameworks, and inherent challenges posed by soil environmental complexity. To address these challenges, this review synthesizes cutting-edge methodologies for soil phage investigation from four aspects: (1) tangential flow filtration (TFF)-based phage enrichment strategies; (2) integrated quantification approaches combining double-layer agar plating, epifluorescence microscopy, and flow cytometry; (3) multi-omics analytical pipelines leveraging metagenomics and viromics datasets; and (4) computational frameworks merging machine learning algorithms with eco-evolutionary theory for deciphering phage-host interaction networks. Through comparative analysis of methodological principles, technical merits, and application scopes, we establish a comprehensive workflow for soil phage research. Future research in this field should prioritize: (1) construction of soil phage resource libraries, (2) exploration of RNA phages based on transcriptomes, (3) functional characterization of unknown genes, and (4) deep integration and interaction validation of multi-omics data. This systematic methodological synthesis provides critical technical references for addressing fundamental challenges in characterizing soil phages regarding the community structure, functional potential, and interaction mechanisms with hosts.

[土壤噬菌体微生态学研究的方法论突破与挑战]。
噬菌体作为专性细菌和古细菌寄生虫,由于其异常丰富和遗传多样性,构成了具有重要生态意义的病毒群。这些生物实体是地球生态系统的关键调节者,推动陆地和海洋环境中的生物地球化学循环、能量通量和生态系统服务。在土壤微生物群中,噬菌体作为微生物的“暗物质”,通过精确调节微生物群落结构和功能动态来维持土壤-植物系统的平衡。尽管近年来对土壤噬菌体的研究兴趣日益浓厚,但在环境病毒学方面的研究比例仍然低得不成比例,这主要是由于研究人员对噬菌体微生态学研究方法的熟悉程度有限,技术框架不完整,以及土壤环境复杂性带来的固有挑战。针对这些挑战,本文从四个方面综述了土壤噬菌体研究的前沿方法:(1)基于切向流过滤(TFF)的噬菌体富集策略;(2)双层琼脂电泳、荧光显微镜、流式细胞术相结合的综合定量方法;(3)利用宏基因组学和病毒组学数据集的多组学分析管道;(4)融合机器学习算法和生态进化理论的计算框架,用于破译噬菌体-宿主相互作用网络。通过对方法原理、技术优点和应用范围的比较分析,建立了土壤噬菌体研究的综合工作流程。未来该领域的研究应优先考虑:(1)土壤噬菌体资源库的构建;(2)基于转录组的RNA噬菌体的探索;(3)未知基因的功能表征;(4)多组学数据的深度整合与交互验证。这一系统的方法综合为解决土壤噬菌体在群落结构、功能潜力和与宿主相互作用机制方面的基本挑战提供了关键的技术参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Sheng wu gong cheng xue bao = Chinese journal of biotechnology
Sheng wu gong cheng xue bao = Chinese journal of biotechnology Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
1.50
自引率
0.00%
发文量
298
期刊介绍: Chinese Journal of Biotechnology (Chinese edition) , sponsored by the Institute of Microbiology, Chinese Academy of Sciences and the Chinese Society for Microbiology, is a peer-reviewed international journal. The journal is cited by many scientific databases , such as Chemical Abstract (CA), Biology Abstract (BA), MEDLINE, Russian Digest , Chinese Scientific Citation Index (CSCI), Chinese Journal Citation Report (CJCR), and Chinese Academic Journal (CD version). The Journal publishes new discoveries, techniques and developments in genetic engineering, cell engineering, enzyme engineering, biochemical engineering, tissue engineering, bioinformatics, biochips and other fields of biotechnology.
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