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Zarzycka, B.

Publications and source records attributed to Zarzycka, B..

3 recordsLinked to original sources

Characterization of AZ12464237 as a high affinity, non-nucleotide antagonist radioligand for the P2Y12 receptor

The purinergic receptor P2Y12 (P2Y12R) is a well-recognized target for anti-thrombotic agents. This receptor is also expressed in microglia, where it plays a key role in neuroinflammation and microglia activation. To investigate P2Y12R-mediated actions in the central nervous system (CNS), the development of novel brain-penetrant ligands is essential, along with further in vitro studies. A radiolabeled, easily accessible tool compound would significantly advance such drug discovery efforts. Herein, we describe the 3H-labeling of a non-nucleotide P2Y12R antagonist AZ12464237, and its in vitro binding properties to the receptor in membrane preparations form transfected cells, as well as on mouse brain tissues. The radioligand shows high affinity toward both the human and rat P2Y12R in transfected cells, with Kd values of 3.12 {+/-} 0.70 nM (human) and 16.6 {+/-} 3.4 nM (rat), as determined by saturation binding studies. The binding kinetics of [3H]AZ12464237 are rapid with a short target residence time ([~]1 min). We further confirmed the selectivity of the radioligand by performing competitive displacement studies, in which reported P2Y12R ligands and other P2Y receptors ligands were tested for binding against [3H]AZ12464237. Additionally, the radioligand proved useful for in vitro autoradiography studies on mouse brain tissues, although a small amount of off-target binding was observed in P2Y12R knock-out mice. This could be traced to glycogen synthase kinase 3 . Considering the growing interest in P2Y12R as a biomarker for microglia activation, [3H]AZ12464237 represents a promising tool for in vitro studies, including screening assays aimed at identifying novel P2Y12R ligands for CNS applications.

pharmacology and toxicology↗

Design, synthesis and pharmacological characterization of the first photoswitchable small-molecule agonist for the Atypical Chemokine Receptor 3

1.Photopharmacology offers the promise of optical modulation of cellular signaling in a spatially and temporally controlled fashion with light-sensitive molecules. This study presents the first small-molecule photoswitchable agonist for an atypical G protein-coupled receptor (GPCR), the atypical chemokine receptor 3 (ACKR3). Inspired by a known benzylpiperidine-based ACKR3 agonist scaffold, 12 photoswitchable azobenzene-containing analogs were synthesized and characterized for their interaction with ACKR3. After analysis of Structure-Photochemistry and Structure-Affinity Relationships (SAR), compound 3e was selected as the best photoswitchable ACKR3 agonist in the series. Compound 3e can be effectively switched from its thermodynamically stable trans state to the less active cis-isomer with a PhotoStationary State of 96 %. The thermodynamically less stable cis-3e only slowly switches back to the trans state (t1/2,37 {degrees}C = 15 days), and trans-3e binds and activates ACKR3 at 10-fold lower concentrations compared to its cis-isomer. Compound 3e demonstrates selectivity for ACKR3 within in a panel of chemokine receptors. Using the recently published ACKR3 cryo-EM structures in computational studies, a binding mode for trans-3e is proposed and is perfectly in line with the observed SAR and the loss of interaction with ACKR3 upon photoswitching. ACKR3 agonist 3e (VUF25471) is the first photoswitchable ligand for an atypical GPCR and will be a useful tool to investigate the role of ACKR3 in biological settings.

pharmacology and toxicology↗

Conformational dynamics underlying Atypical Chemokine Receptor 3 activation

Atypical Chemokine Receptor 3 (ACKR3) is a G protein-coupled receptor that does not signal through G proteins. It is known as a chemokine scavenger involved in various pathologies, making it an appealing yet intriguing therapeutic target. Indeed, the structural properties that govern ACKR3 functional selectivity and the overall conformational dynamics of ACKR3 activation are poorly understood. Here we combined Hydrogen/Deuterium exchange mass spectrometry (HDX-MS) and molecular dynamics simulations to examine the binding mode and mechanism of action of various small-molecule ACKR3 ligands of different efficacy for {beta}-arrestin recruitment. Our results show that activation or inhibition of ACKR3 is largely governed by intracellular conformational changes of helix 6, intracellular loop 2 and helix 7, while the DRY motif becomes protected during both processes. Moreover, HDX-MS identifies the binding sites and the allosteric modulation of ACKR3 upon {beta}-arrestin 1 binding. In summary, this study highlights the structure-function relationship of small-molecule ligands, the overall activation dynamics of ACKR3, the binding mode of {beta}-arrestin 1 and the atypical dynamic features in ACKR3 that may contribute to its inability to activate G proteins.

biochemistry↗