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Garces, A. M.

Publications and source records attributed to Garces, A. M..

4 recordsLinked to original sources

A biased allosteric modulator functions as a molecular glue to induce β2AR dimerization

Family A G-protein coupled receptors (GPCRs) are typically described as monomers, yet growing evidence suggests they can form dimers with distinct signaling properties1-3. The mechanisms and therapeutic potential of such dimerization, however, remain poorly understood. Here, we show that AP-7-168, an optimized derivative of a {beta}-arrestin-biased negative allosteric modulator of the {beta}2-adrenergic receptor ({beta}2AR) that sustains bronchorelaxation in cell and tissue models4, functions as a molecular glue to promote {beta}2AR homodimerization. Cryo-EM structures reveal a unique binding mode in which two AP-7-168 molecules pack within a pocket formed by transmembrane helices 3, 4, and 5 of two protomers, stabilizing a dimeric conformation that selectively prevents {beta}-arrestin coupling. In cells, AP-7-168 robustly induces {beta}2AR dimerization and drives enlarged nanocluster formation. Combined with extensive functional studies, our findings unveil a novel allosteric mechanism by which a small molecule biases {beta}2AR signaling through dimerization, highlighting ligand-induced dimerization as a strategy for GPCR modulation.

biochemistry↗

The role of intrinsically disordered domains in regulating G protein coupled receptor signaling

The 2A adrenergic receptor (2AAR) is a clinically important target for various diseases including hypertension, diabetes and chronic pain. Here, using single-molecule fluorescence resonance energy transfer imaging, we show how agonist-specific activation dynamics in both structured transmembrane domain (TMD) and intrinsically disorders regions (IDRs) of 2AAR lead to diverse signaling profiles. Through seven pairs of strategically designed fluorophore labels, we systematically investigate the real-time conformational changes of 2AAR. Our study reveals unique TM6 dynamics in 2AAR, featured by a high energy barrier for agonist-induced outward movements essential for activation. In contrast, we identify agonist-specific conformational dynamics of a partially disordered extracellular loop (ECL2), highlighting its role as a dynamic regulatory module that controls receptor function. Moreover, we characterize the conformational landscapes of the long third intracellular loop (ICL3), revealing its compact structural features and membrane-proximal localization in the basal state, where it acts as a negative allosteric regulator in transducer coupling. Furthermore, we identify multiful functional sub-states of ICL3 that are dynamically modulated by both kinase phosphorylation and drug efficacy. These findings offer previously underappreciated structural and dynamic insights into 2AAR function governed by both TMD and IDRs, and may open up new avenues for the development of better therapeutics.

biophysics↗

Improved EPR sensitivity for aqueous biological samples using low-volume multi-channel cells and dielectric resonators

Reducing sample volumes for electron paramagnetic resonance (EPR) spectroscopy applications places increasing demands on hardware design to preserve or enhance EPR signal intensity. In this work, the design, fabrication, and testing of dielectric resonators and multi-channel aqueous sample cells for applications in X-band (nominally 9.5 GHz) EPR is presented. Our aim was to maximize the EPR signal intensity for sample sizes of 3-4 L and 200 nL. These advances are summarized as follows: single-crystal sapphire and rutile dielectric resonators with very low loss tangent and high resonator efficiency; minimum dielectric resonator coupling to radiation shield to reduce ohmic losses; 3D printed aqueous sample cells with thin multi-channel construction to minimize radio-frequency dissipation in the sample; and a Gordon coupler for maximum coupling range and minimum stored energy to eliminate frequency shifts during tuning. Sample cell geometries were designed by leveraging insights gained from analytic theory to inform finite-element modeling of electromagnetic fields. Experimental comparisons of multi-channel sample cells using a sapphire resonator exhibited a 2.2-fold increase in EPR signal intensity compared with a standard capillary at 3-4 L, while simulations predict an additional 23% improvement with further 3D printing advances. For samples at 200 nL, a rutile dielectric resonator with a multi-channel sample cell was simulated to improve EPR sensitivity by a 2.7-fold increase compared with a capillary at the same volume.

biophysics↗

A High-Sensitivity Stopped-Flow EPR System to Monitor Millisecond Conformational Kinetics in Spin-Labeled Proteins

Electron paramagnetic resonance (EPR) spectroscopy is a powerful tool for studying biological systems, with applications in drug discovery, protein dynamics, membrane biology, and enzyme mechanisms. However, sample volume requirements and sensitivity limitations have historically constrained time-resolved measurements of protein dynamics using stopped-flow (SF) EPR spectroscopy. To address these challenges, we developed a high-sensitivity SF EPR system featuring a custom dielectric resonator, an optimized low-volume sample tube geometry design, and the SF mixer assembly integrated into the resonator housing. This system significantly reduces sample requirements for the investigation of protein conformational dynamics on the millisecond timescale. We demonstrate its capabilities through two applications: the analysis of T4 lysozyme unfolding kinetics, which revealed site-specific variations in the folding pathway, and the measurement of ligand-induced conformational changes in the {beta}2 adrenergic receptor, a challenging membrane-protein system. This advancement broadens the applicability of SF EPR to complex, biomedically relevant proteins, facilitating studies of protein-protein and protein-ligand interactions in diverse biological processes.

biophysics↗