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Quantification of Plasmid-Mediated Antibiotic Resistance in an Experimental Evolution Approach
Published on: December 14, 2019
Evolutionary, ecological and biotechnological perspectives on plasmids resident in the human gut mobile metagenome
Lesley A Ogilvie1, Sepinoud Firouzmand, Brian V Jones
1Centre for Biomedical and Health Science Research, School of Pharmacy and Biomolecular Sciences, University of Brighton, Brighton, UK.
Abstract:
Numerous mobile genetic elements (MGE) are associated with the human gut microbiota and collectively referred to as the gut mobile metagenome. The role of this flexible gene pool in development and functioning of the gut microbial community remains largely unexplored, yet recent evidence suggests that at least some MGE comprising this fraction of the gut microbiome reflect the co-evolution of host and microbe in the gastro-intestinal tract. In conjunction, the high level of novel gene content typical of MGE coupled with their predicted high diversity, suggests that the mobile metagenome constitutes an immense and largely unexplored gene-space likely to encode many novel activities with potential biotechnological or pharmaceutical value, as well as being important to the development and functioning of the gut microbiota. Of the various types of MGE that comprise the gut mobile metagenome, plasmids are of particular importance since these elements are often capable of autonomous transfer between disparate bacterial species, and are known to encode accessory functions that increase bacterial fitness in a given environment facilitating bacterial adaptation. In this article current knowledge regarding plasmids resident in the human gut mobile metagenome is reviewed, and available strategies to access and characterize this portion of the gut microbiome are described. The relative merits of these methods and their present as well as prospective impact on our understanding of the human gut microbiota is discussed.
Insights
The human gut mobile metagenome, especially plasmids, holds unexplored genes crucial for microbial community function and host co-evolution. Researching these mobile genetic elements offers potential biotechnological and pharmaceutical discoveries.
Area of Science:
- Microbiology
- Genomics
- Bioinformatics
Background:
- The human gut microbiome contains numerous mobile genetic elements (MGEs), collectively termed the gut mobile metagenome.
- MGEs contribute to microbial community development and function, with some reflecting host-microbe co-evolution.
- The mobile metagenome represents a vast, unexplored gene pool with potential biotechnological and pharmaceutical applications.
Purpose of the Study:
- To review current knowledge of plasmids within the human gut mobile metagenome.
- To describe methods for accessing and characterizing these plasmids.
- To discuss the impact of these methods on understanding the gut microbiome.
Main Methods:
- Literature review of existing studies on gut plasmids.
- Analysis of current techniques for MGE identification and characterization.
- Discussion of the implications of these methods for microbiome research.
Main Results:
- Plasmids are key MGEs in the gut, facilitating bacterial adaptation and horizontal gene transfer.
- Various strategies exist to access and characterize the gut mobile metagenome, each with specific merits.
- Understanding these elements is crucial for comprehending gut microbial community dynamics.
Conclusions:
- The gut mobile metagenome, particularly plasmids, is a rich source of novel genes and functions.
- Further exploration of MGEs is essential for advancing our knowledge of gut microbial ecology and host-microbe interactions.
- Characterization methods are critical for unlocking the potential of the mobile metagenome.
Related Concept Videos
Evolution of Microbial Genome
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Introduction to the Human Microbiota
Evolutionary Processes in Microbes
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