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Jazayeri, A.

Publications and source records attributed to Jazayeri, A..

2 recordsLinked to original sources

Ligand-induced conformational changes in the β1-Adrenergic Receptor Revealed by Hydrogen-Deuterium Exchange Mass Spectrometry

G-Protein Coupled Receptors (GPCRs) constitute the largest family of signalling proteins responsible for translating extracellular stimuli into intracellular functions. When dysregulated, GPCRs drive numerous diseases and are the most targeted proteins in drug discovery. GPCR structural dynamics and activity can be modulated by a wide range of drugs, including full/partial agonists and antagonists. While crucial for developing novel therapeutics targeting GPCRs, the structural dynamics of the receptors associated with their activity upon drug interactions are not yet fully understood. Here, we employ Hydrogen Deuterium Exchange Mass Spectrometry (HDX-MS), to characterise the structural dynamics of turkey {beta}1-adrenergic receptor (t{beta}1AR) in complex with nine ligands, including agonists, partial agonists and antagonists. We show that dynamic signatures across the GPCR structure can be grouped by compound modality. Surprisingly, we discovered repeated destabilisation of the intracellular loop 1 (ICL1) upon full agonist binding and stabilisation upon antagonist binding, suggesting that increased dynamics in this region are an essential component for G-protein recruitment. Multiple sequence alignments and molecular dynamics simulations indicate that L72 in ICL1 plays important structural role. Differential HDX-MS experiment of t{beta}1AR and t{beta}1AR L72A construct in complex with miniGs, in response to various ligands, suggests involvement of ICL1 in stabilising the GDP bound state by influencing the stability of HG helix of miniGs. Overall, our results provide a platform for determining drug modality and highlight how HDX-MS can be used to dissect receptor ligand interaction properties and GPCR mechanism. Significance statementRecent advances in hydrogen-deuterium exchange mass spectrometry have allowed probing conformational signatures of challenging membrane protein assemblies. We studied the structural dynamics of a class A GPCR, namely t{beta}1AR, in response to diverse ligands including agonists, antagonists and partial agonists. We demonstrate that the functional effect of compounds can be discerned by simply profiling the dynamics induced across the receptor, without the need for downstream interaction partners. We showed that ICL1 undergoes a significant change in dynamics between activated and inhibited states consistent with a role in downstream signaling pathways in class A GPCRs.

biophysics↗

TFEB degradation is regulated by an IKK/β-TrCP2 phosphorylation-ubiquitination cascade

Transcription factor EB (TFEB) is a master regulator of lysosomal biogenesis and autophagy that plays a key role in the regulation of cellular clearance pathways. TFEB is regulated via a complex array of post-translational modifications (PTMs), but the exact molecular mechanism that regulates TFEB stability has remained elusive. Here, we show that TFEB levels are critically regulated by a defined phosphorylation-ubiquitination cascade. A human kinome screen identifies IKK (inhibitor of {kappa}B kinase) as a TFEB modifier, and a combination of phosphorylation assays, mass spectrometry analyses, and site-specific mutagenesis unveils a previously unrecognized TFEB phospho-degron (423SPFPSLS429) as the target of IKK. We show that IKK-mediated phosphorylation of TFEB triggers ubiquitination of adjacent lysine residues (K430 and K431) by the E3 ligase {beta}-TrCP2 ({beta}-Transducin repeat-containing protein 2), thereby tagging TFEB for degradation. Modified TFEB constructs that abolish these PTMs show much increased stability and expression levels but remain equally sensitive to autophagy- or stress- related stimuli while maintaining the capability to promote the expression of TFEB target genes and the clearance of Alzheimers associated tau in a cellular model of disease. Our results therefore uncover an IKK/{beta}-TrCP2 phosphorylation-ubiquitination cascade as a major mechanism that governs TFEB stability independently of other TFEB regulators.

cell biology↗