Search bioRxiv⌕ Search

Biology subjects

Pani, B.

Publications and source records attributed to Pani, B..

4 recordsLinked to original sources

β-Arrestin Condensates Regulate G Protein-Coupled Receptor Function

G protein-coupled receptors (GPCRs) are the largest class of receptors in the genome and control many signaling cascades essential for survival. GPCR signaling is regulated by {beta}-arrestins, multifunctional adapter proteins that direct receptor desensitization, internalization, and signaling. While at many GPCRs, {beta}-arrestins interact with a wide array of signaling effectors, it is unclear how {beta}-arrestins promote such varied functions. Here we show that {beta}-arrestins undergo liquid-liquid phase separation (LLPS) to form condensates that regulate GPCR function. We demonstrate that {beta}-arrestin oligomerization occurs in proximity to the GPCR and regulates GPCR functions such as internalization and signaling. This model is supported by a cryoEM structure of the adhesion receptor ADGRE1 in a 2:2 complex with {beta}-arrestin 1, with a {beta}-arrestin orientation that can promote oligomerization. Our work provides a paradigm for {beta}-arrestin condensates as regulators of GPCR function, with LLPS serving as an important promoter of signaling compartmentalization at GPCRs.

cell biology↗

Beta-arrestin 1 mediated Src activation via Src SH3 domain revealed by cryo-electron microscopy

Beta-arrestins ({beta}arrs) are key regulators and transducers of G-protein coupled receptor signaling; however, little is known of how {beta}arrs communicate with their downstream effectors. Here, we report the first structural insights into the fundamental mechanisms driving {beta}arr-mediated signal transduction. Using cryo-electron microscopy, we elucidate how {beta}arr1 recruits and activates the non-receptor tyrosine kinase Src, the first identified signaling partner of {beta}arrs. {beta}arr1 engages Src SH3 through two distinct sites, each employing a different recognition mechanism: a polyproline motif in the N-domain and a non-proline-based interaction in the central crest region. At both sites {beta}arr1 interacts with the aromatic surface of SH3, disrupting the autoinhibited conformation of Src and directly triggering its allosteric activation. This structural evidence establishes {beta}arr1 as an active regulatory protein rather than a passive scaffold and suggests a potentially general mechanism for {beta}arr-mediated signaling across diverse effectors.

biochemistry↗

Molecular insights into G protein specificity and biased agonism at the β2-adrenergic receptor

G protein coupled receptors (GPCRs) exhibit varying degrees of selectivity for different G protein isoforms. Despite the abundant structures of GPCR-G protein complexes, little is known about the mechanism of G protein coupling specificity. The {beta}2-adrenergic receptor is an example of GPCR with high selectivity for Gs, the stimulatory G protein for adenylyl cyclase, and much weaker for the Gi family of G proteins inhibiting adenylyl cyclase. By developing a Gi-biased agonist (LM189), we provide structural and biophysical evidence supporting that distinct conformations at ICL2 and TM6 are required for coupling of the different G protein subtypes Gs and Gi. These results deepen our understanding of G protein specificity and bias and can accelerate the design of ligands that select for preferred signaling pathways.

molecular biology↗

Rho and a riboswitch regulate mntP expression evading manganese stress and membrane toxicity

The trace metal ion manganese in excess is toxic. Therefore, a small subset of factors tightly maintains its cellular level, among which an efflux protein MntP is the champion. Multiple transcriptional regulators and a manganese-dependent translational riboswitch regulate the MntP expression. As riboswitches are untranslated RNAs, they are often associated with the Rho-dependent transcription termination in bacteria. Here we demonstrate that Rho efficiently terminates transcription at the mntP riboswitch region. The addition of manganese activates the riboswitch, thereby restoring the coupling between transcription and translation to evade Rho-dependent transcription termination partially. Deletion of the riboswitch abolishes Rho-dependent termination and renders bacteria sensitive to manganese due to overexpression of mntP. The high mntP expression is associated with reactive oxygen species (ROS) production, slow growth, and cell filamentation phenotypes. We posit that manganese-dependent transcriptional activation in the absence of Rho-dependent termination leads to the observed toxicity arising from excessive MntP expression, a membrane protein. Thus, we identified a novel regulatory role of Rho in preventing membrane protein toxicity by terminating at the riboswitch element.

biochemistry↗