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Biology subjects

Peters, G. H. J.

Publications and source records attributed to Peters, G. H. J..

3 recordsLinked to original sources

Uptake of fucosylated type I human milk oligosaccharide blocks by Bifidobacterium longum subsp. infantis

Human milk oligosaccharides (HMOs) are uniquely rich in the type 1 building block disaccharide lacto-N-biose I (LNB, Gal{beta}1,3GlcNAc), as compared to other mammals. Most HMOs are fucosylated, e.g., 1,2 and 1,4 fucosylations on LNB blocks, resulting in H type 1 (H1) and Lewis a (Lea) epitopes, respectively. The dominance of Bifidobacterium in breastfed infant guts hinges on efficient uptake of HMOs by specific ATP-binding cassette (ABC) importers. However, molecular insight into uptake of fucosylated LNB blocks is lacking. Here, we analyzed the uptake of LNB and its fucosylated H1 and Lea trisaccharides, as well as the mucin-derived disaccharide galacto-N-biose (GNB, Gal{beta}1,3GalNAc) by an ABC importer form the HMO-utilization specialist Bifidobacterium longum subsp. infantis. Structural analyses and molecular dynamics simulations explained how fucosylated and non-fucosylated LNB forms are recognized with similar affinities by the binding protein of this importer. Strikingly, we showed that two ABC importers confer to the uptake of LNB, while the Lea trisaccharide is efficiently internalized by a single importer in B. infantis. Phylogenetic and structural analyses of bifidobacterial ABC-associated binding proteins showed that the Lea clade harbors homologues possessing internal cavities, which allows for the accommodation of branched oligosaccharides. Our work provides unique insight into the evolution and molecular basis of capture and uptake of key HMO and host-derived saccharide blocks, highlighting these compounds as hitherto unexplored candidates for fortification of infant formula. ImportanceThe assembly of the gut microbiota in early life is critical to the health trajectory of human hosts. Breast feeding selects for a Bifidobacterium-rich community, adapted to efficiently utilize HMOs from mothers milk. Industrial scale production of HMOs for infant formula fortification has mainly considered fucosyllactoses, whereas fucosylated type 1 HMO blocks have hitherto not been explored. Our work sheds light on the uptake facet, central to the utilization of fucosylated HMOs with type 1 LNB building blocks. These type I blocks are efficiently internalized and assimilated by B. infantis, which has been recently shown to secrete immune-modulatory aromatic-lactate metabolites that mediate immune-priming of hosts in early life. This study contributes to our understanding of the utilization of HMOs and highlights fucosylated LNB blocks, as hitherto unexplored prebiotic candidates that support the growth of B. infantis and other beneficial bacteria in early life.

microbiology↗

Structural characterization of human tryptophanhydroxylase 2 reveals L-Phe as the superior regulatorydomain ligand relevant for serotonin biosynthesis

Tryptophan hydroxylase 2 (TPH2) catalyzes the rate-limiting step in the biosynthesis of serotonin in the brain. Consequently, regulation of TPH2 is relevant for serotonin related diseases, yet, the regulatory mechanism of TPH2 is poorly understood and structural as well as dynamical insights are missing. Here, we use NMR spectroscopy to determine the structure of a 47 N-terminally truncated variant of the regulatory domain (RD) dimer of human TPH2 in complex with L-Phe, and show that L-Phe is the superior RD ligand compared to the natural substrate, L-Trp. Using cryo-EM we obtain a low-resolution structure of a similarly truncated variant of the complete tetrameric enzyme with dimerized RDs. The cryo-EM 2D class averages additionally indicate that the RDs are dynamic in the tetramer and likely exist in a monomer-dimer equilibrium. Our results provide structural information on the RD both as an isolated domain and in the TPH2 tetramer, which will facilitate future elucidation of TPH2s regulatory mechanism affecting serotonin regulation.

biophysics↗

Nirmatrelvir Resistant SARS-CoV-2 Variants with High Fitness in Vitro

The oral protease inhibitor nirmatrelvir is expected to play a pivotal role for prevention of severe cases of coronavirus disease 2019 (COVID-19). To facilitate monitoring of potentially emerging resistance, we studied severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) escape from nirmatrelvir. Resistant variants selected in cell culture harbored different combinations of substitutions in the SARS-CoV-2 main protease (Mpro). Reverse genetic studies in a homologous infectious cell culture system revealed up to 80-fold resistance conferred by the combination of substitutions L50F and E166V. Resistant variants had high fitness increasing the likelihood of occurrence and spread of resistance. Molecular dynamics simulations revealed that E166V and L50F+E166V weakened nirmatrelvir-Mpro binding. The SARS-CoV-2 polymerase inhibitor remdesivir retained activity against nirmatrelvir resistant variants and combination of remdesivir and nirmatrelvir enhanced treatment efficacy compared to individual compounds. These findings have implications for monitoring and ensuring treatment programs with high efficacy against SARS-CoV-2 and potentially emerging coronaviruses.

microbiology↗