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Humm, A.-S.

Publications and source records attributed to Humm, A.-S..

2 recordsLinked to original sources

Plasticity of the binding pocket in peptide transporters underpins promiscuous substrate recognition

Proton-coupled oligopeptide transporters (POTs) are promiscuous transporters of the Major Facilitator Superfamily, that constitute the main route of entry for a wide range of dietary peptides and orally administrated peptidomimetic drugs. Given their clinical and pathophysiological relevance, several bacterial and mammalian POT homologs have been extensively studied on a structural and molecular level. However, the molecular basis of recognition and transport of the wide range of peptide substrates has remained elusive. Here we present 14 X-ray structures of the bacterial POT DtpB in complex with chemically diverse di- and tripeptides, providing novel insights into the plasticity of the conserved central binding cavity. We analyzed binding affinities for more than 80 peptides and monitored uptake by a fluorescence-based transport assay. To probe if all natural 8400 di- and tripeptides can bind to DtpB, we employed state-of-the-art molecular docking and machine learning and conclude that peptides of a specific subset with compact hydrophobic residues are the best DtpB binders.

biophysics↗

An automated platform for structural analysis of membrane proteins through serial crystallography

Membrane proteins are central to many pathophysiological processes yet remain very difficult to analyze at a structural level. Moreover, high-throughput structure-based drug discovery has not yet been exploited for membrane proteins due to lack of automation. Here, we present a facile and versatile platform for in meso membrane protein crystallization, enabling rapid atomic structure determination at both cryogenic and room temperature and in a single support. We apply this approach to two human integral membrane proteins, which allowed us to capture different conformational states of intramembrane enzyme-product complexes and analyze the structural dynamics of the ADIPOR2 integral membrane protein. Finally, we demonstrate an automated pipeline combining high-throughput microcrystal soaking, automated laser-based harvesting and serial crystallography enabling screening of small molecule libraries with membrane protein crystals grown in meso. This approach brings badly needed automation for this important class of drug targets and enables high-throughput structure-based ligand discovery with membrane proteins. HighlightsO_LIA fully automated, online workflow enables rapid determination of membrane protein structures by serial X-ray crystallography (SSX). C_LIO_LIHigh resolution room temperature and cryogenic structures of ADIPOR2 provide insights into the dynamic nature of receptor:ligand interactions. C_LIO_LIA web-based application allows remote user-guided experimental design and execution. C_LIO_LIAn automated SSX-based ligand discovery pipeline for integral membrane proteins is introduced. C_LI

biochemistry↗