Several members of the adhesion subfamily of G protein-coupled receptors (aGPCRs) are capable of self-activation by an internal agonist sequence (aka the Stachel) that's exposed upon removal or conformational changes of the N-terminal fragment of the receptor. Synthetic peptides derived from the Stachel sequence can be used as exogenous agonists. In the inactive form of the full-length receptor, the Stachel is sequestered as the β13-strand within the GPCR Autoproteolysis-INducing (GAIN) domain, but it engages the seven transmembrane region as a helix when it is either an intramolecular sequence or a synthetic peptide. Little is known about the molecular details underlying this transition, but we hypothesize that a disordered conformation is central to this intermediate state in receptor activation. Despite the primarily helical Stachel AlphaFold3 and PEP-FOLD4 models predicted with high confidence for the entire aGPCR subfamily, computational predictions and biophysical experiments reveal a predominantly disordered conformation in solution. Investigating the ADGRG6 (also known as GPR126) Stachel peptide, circular dichroism (CD) and nuclear magnetic resonance (NMR) experiments reveal a predominantly random coil conformation in aqueous buffer, polar detergent micelles, and zwitterionic lipids. Titration of trifluoroethanol uncovered a two-state equilibrium between an unfolded and helix-containing conformation with NMR localizing a single-turn helix to residues L846-L849. Taken together, these data indicate the ADGRG6 Stachel peptide is primarily disordered with a subset adopting partial helical structures, likely requiring the steric hindrance of the receptor binding pocket to fully induce helix formation in an induced fit mechanism.
Tucker J. Shriver, Sandra Berndt, Scott A. Robson et al.· Biophysical Journal· 0 citations
Ribosomally synthesized and post-translationally modified peptides (RiPPs) are produced by biosynthetic enzymes that modify genetically encoded precursor peptide backbones and side chains. Genome mining and bioinformatics analyses targeting the multinuclear nonheme iron oxidative (MNIO) enzyme family led to the identification of a RiPP biosynthetic gene cluster from Streptomyces thermodiastaticus JCM 4840, the std cluster, which includes multiple biosynthetic enzymes and a precursor peptide containing a conserved SNKEWQE motif. Using in vitro approaches, we elucidated the modifications installed by the std biosynthetic enzymes. First, a YcaO-TfuA pair thioamidates the asparagine backbone. Next, a peptidase with an S8/S53 domain fused to a NodU-like carbamoyltransferase both carbamoylates the ε-amino group of lysine to produce the non-proteinogenic amino acid homocitrulline and cleaves the C-terminal EWQE motif. Finally, a partner protein-MNIO pair bis-hydroxylates the β- and γ-carbon positions of the installed homocitrulline to create dihydroxyhomocitrulline. The formation of homocitrulline and dihydroxyhomocitrulline is unprecedented in RiPP biosynthesis. Moreover, these findings expand the known substrate scope of YcaO-TfuA enzymes and MNIOs and identify new roles for carbamoyltransferases in these pathways.
Dayna P. Hebron, Tucker J. Shriver, Joshua J. Ziarek et al.· Journal of the American Chem...· 0 citations