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Challenges and Perspective in Integrated Multi-Omics in Gut Microbiota Studies.

Eric Banan-Mwine Daliri1, Fred Kwame Ofosu1, Ramachandran Chelliah1

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Multi-omic technologies are essential for studying the gut microbiome, revealing microbial interactions in health and disease. Combining multiple omics approaches overcomes limitations of single techniques for a comprehensive understanding.

Keywords:
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Area of Science:

  • Microbiology
  • Genomics
  • Metabolomics

Background:

  • Omic technologies enable identification of previously unculturable gut microorganisms.
  • Understanding gut microbiome interactions is crucial for health and disease research.
  • Challenges exist in identifying the origin and function of detected proteins and metabolites.

Purpose of the Study:

  • To review current knowledge on multi-omic techniques in gut microbiome studies.
  • To discuss the challenges associated with single and multi-omic approaches.
  • To explore future perspectives in the field.

Main Methods:

  • Review of existing literature on multi-omic technologies.
  • Analysis of challenges in applying single omic techniques.
  • Synthesis of information on combining different omics approaches.

Main Results:

  • Multi-omic strategies provide a comprehensive view of gut microbial communities.
  • Integration of multiple omics data aids in elucidating microbial and host-microbial interactions.
  • Challenges in metabolite and protein origin identification can be addressed by multi-omic integration.

Conclusions:

  • Multi-omic technologies are invaluable for advancing gut microbiome research.
  • Combining diverse omics techniques is key to overcoming current limitations.
  • Future research should focus on integrated multi-omic approaches for deeper insights.