返回
Mining microbial resources from water
DOI:10.1016/j.resconrec.2023.106883.png)
摘要
En 中文
In the past two decades, the concept of microbial resources evolved from the conserved strains in culture collection centers and microbial genome data in databases to functional microbial consortia, strains with superior phenotypes, novel biochemical and signaling systems, highly efficient enzymes, secondary metabolites, and unique genetic traits. Natural and engineered water environments provide diverse ecological niches for microorganisms to evolve and thrive, serving as treasure troves of microbial resources. Compared with that of chemical and energy resources from water, mining of microbial resources is severely underexplored. In this review, we first summarize various approaches (e.g., cultivation, functional metagenomics, and single-cell genomics) that have been employed to mine microbial resources from water, and then discuss their distinctive advantages and limitations. Lastly, we explore future directions on the mining of microbial resources from water.
Keyword:
Aquatic environments
Microbial resources
Cultivation
Functional metagenomics
Single-cell genomics
期刊
R
IF:
10.9
论文数:
7.1K
被引数:
5.3W
机构
引用论文
The Reliability of Metagenome-Assembled Genomes (MAGs) in Representing Natural Populations: Insights from Comparing MAGs against Isolate Genomes Derived from the Same Fecal Sample宏基因组组装基因组 (MAGs) 在代表自然种群中的可靠性: 比较MAGs与来自同一粪便样本的分离基因组的见解
Identification of single bacterial cells in aqueous solution using conflocal laser tweezers Raman spectroscopy
ANALYTICAL CHEMISTRY
IF6.7
High-Throughput Recovery and Characterization of Metagenome-Derived Glycoside Hydrolase-Containing Clones as a Resource for Biocatalyst Development
MSYSTEMS
IF4.6
Identifying the Active Phenanthrene Degraders and Characterizing Their Metabolic Activities at the Single-Cell Level by the Combination of Magnetic-Nanoparticle-Mediated Isolation, Stable-Isotope Probing, and Raman-Activated Cell Sorting (MMI-SIP-RACS)通过结合磁性纳米颗粒介导的隔离,稳定同位素探测和拉曼激活的细胞分选 (mmi-sip-racs),在单细胞水平上鉴定活性菲降解物并表征其代谢活性

