Related Experiment Video
Updated: Sep 10, 2026

Microbiota Analysis Using Two-step PCR and Next-generation 16S rRNA Gene Sequencing
Published on: October 15, 2019
Integrating multi-omics technologies to decipher microbiome functions
Tim Van Den Bossche1,2, Eunice Adeline Lazau3, Velma T E Aho4
1CompOmics, VIB Center for Medical Biotechnology, VIB, Ghent, Belgium.
Abstract:
Multi-omics approaches have revolutionized our understanding of microbial communities by enabling simultaneous interrogation of genomic, transcriptomic, proteomic, and metabolomic data. The systematic integration and analysis of these deep datasets help decipher the functional roles of microbiomes, providing critical insights into microbial activities, interactions, and dynamics across diverse environments. Biological complexity makes multi-omics analysis of a single, isolated organism demanding but highly informative, yet this complexity increases further when samples comprise hundreds to thousands of individual species. As microbiome research continues to expand into clinical, environmental, and engineered systems, standardized workflows, benchmarked datasets, and community-driven initiatives are essential to ensure reproducibility, standardization and interpretability. Establishing and disseminating best practices for experimental design, data processing, and integrative analyses will be critical for maximizing comparability and scientific rigor across studies. This perspective highlights recent advances in multi-omics microbiome research, outlines key obstacles in data integration and metadata harmonization, and proposes a collaborative roadmap for scalable, FAIR-compliant multi-omics investigations and potentially disruptive Artificial Intelligence (AI) advances comparable to those of AlphaFold in the field of microbiome science.
Related Concept Videos
Modern Molecular Taxonomy
Introduction to the Human Microbiota
Methods to Assess Microbial Communities
MALDI-TOF Mass Spectrometry
Applications of Molecular Taxonomy
Genomics