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Seufert, F.

Publications and source records attributed to Seufert, F..

2 recordsLinked to original sources

MutationExplorer - a webserver for mutation of proteins and 3D visualization of energetic impacts

AO_SCPLOWBSTRACTC_SCPLOWThe possible effects of mutations on stability and function of a protein can only be understood in the context of protein 3D structure. The MO_SCPLOWUTATIONC_SCPLOWEO_SCPLOWXPLORERC_SCPLOW webserver maps sequence changes onto protein structures and allows users to study variation by inputting sequence changes. As the user enters variants, the 3D model evolves, and estimated changes in energy are highlighted. In addition to a basic per-residue input format, MO_SCPLOWUTATIONC_SCPLOWEO_SCPLOWXPLORERC_SCPLOW can also upload an entire replacement sequence. Previously the purview of desktop applications, such an upload can back-mutate PDB structures to wildtype sequence in a single step. Another supported variation source is human single nucelotide polymorphisms (SNPs), genomic coordinates input in VCF format. Structures are flexibly colorable, not only by energetic differences, but also by hydrophobicity, sequence conservation, or other biochemical profiling. Coloring by interface score reveals mutation impacts on binding surfaces. MO_SCPLOWUTATIONC_SCPLOWEO_SCPLOWXPLORERC_SCPLOW strives for efficiency in user experience. For example, we have prepared 45,000 PDB depositions for instant retrieval and initial display. All modeling steps are performed by Rosetta. Visualizations leverage MDsrv/Mol*. MO_SCPLOWUTATIONC_SCPLOWEO_SCPLOWXPLORERC_SCPLOW is available at: http://proteinformatics.org/mutation_explorer/

bioinformatics↗

Structural basis of GAIN domain autoproteolysis and cleavage-resistance in the adhesion G-protein coupled receptors

The GAIN domain is a hallmark of adhesion G-protein coupled receptors (aGPCRs) as this extracellular domain contains an integral agonistic sequence (Stachel) for activation via binding to the 7-transmembrane helical (7TM) domain of the receptor. Many aGPCRs are autoproteolytically cleaved at the GPCR proteolysis site (GPS) site within the GAIN domain formed HXS/T sequence motif. However, other aGPCR can be activated without GPS cleavage. We determined the crystal structure of the human ADGRB2/BAI2 hormone receptor (HormR) and GPCR autoproteolysis-inducing (GAIN) domains and found that this aGPCR is resistant to autoproteolysis despite the presence of a canonical HLS sequence motif at the GPS. We used structural comparisons and molecular dynamics (MD) simulations to identify structural determinants that are important for autocleavage beyond the canonical HXS/T motif. These studies characterized a conserved glycine residue and an edge-{pi} interaction of the histidine base of the GPS sequence with a phenylalanine residue that is highly conserved in cleavage-competent aGPCRs. The MD simulations showed that this interaction is important to position the imidazole group of the histidine for deprotonation of the serine or threonine nucleophile. Removal of this interaction reduced autoprote-olytic activity in the ADGRL1 receptor and restored cleavage competence of the ADGRB3 receptor in a R866H/L821F double mutant. Conservation analysis indicates that wild-type ADGRB2 and ADGRB3 are auto-cleavage-incompetent receptors.

biochemistry↗