Completed Cells, Biochemistry & Physiology Infection & Immunity

Understanding small molecule uptake by the Bacteroidetes

In plain English

AI plain-English summary

The outer membrane of gut bacteria is a gatekeeper that decides which small molecules get in and which stay out—and scientists know almost nothing about how it works in one of the two dominant groups of gut microbes, the Bacteroidetes. This matters because the composition of the human gut microbiome—and therefore its influence on health—depends on how individual bacterial species compete for nutrients. Bacteroidetes make up a large fraction of the gut community, yet the proteins that control what crosses their outer membrane remain largely uncharacterised. The researchers will map these proteins in a representative *Bacteroides* species using quantitative proteomics, then determine the atomic structures of the active transporters and passive diffusion channels using X-ray crystallography and cryo-electron microscopy, and measure how they function using electrophysiology. This is fundamental science. It will not produce a drug or a diagnostic test. But understanding how Bacteroidetes take up nutrients could eventually suggest ways to manipulate the gut microbiota—for example, by designing molecules that selectively feed beneficial species or starve harmful ones. Similar fundamental work on outer-membrane transport in other bacteria has already informed antibiotic design and revealed how pathogens evade immune defences.

View original technical description
The human gut microbiome has a profound influence on virtually all aspects of human health. The composition and therefore collective function of the colonic microbiota depends on the ability of individual micro-organisms to acquire nutrients in a highly competitive environment. While very diverse at the species level, the gut microbiome is dominated by just two bacterial phyla, Gram-positive Firmicutes and Gram-negative Bacteroidetes. In the Bacteroidetes, the outer membrane (OM) is the first, and for hydrophobic molecules only, barrier for cell entry. Therefore, the intracellular fate (metabolism, bioconversion) of any small molecule is linked to its ability to traverse the OM via active transporters and diffusion channels. While extensively characterized in Proteobacteria, OM transport in the phylogenetically distant Bacteroidetes is terra incognita. In this proposal we will define the OM protein landscape of an abundant and representative member of the genus Bacteroides via quantitative proteomics under various conditions. We will also gain a thorough mechanistic understanding of (i) active import via TonB-dependent transporters and (ii) passive uptake via OM diffusion channels, using X-ray crystallography, cryo-EM and electrophysiology. The work will transform our understanding of nutrient acquisition by Bacteroidetes and will suggest ways for microbiota manipulation to benefit human health.

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Researchers

Bert VAN DEN BERG (EPMC Awardee)

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Original classification

Investigator Award in Science

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