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Vischer, H. F.

Publications and source records attributed to Vischer, H. F..

4 recordsLinked to original sources

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↗

Pharmacological characterization of seven human histamine H3 receptor isoforms

The histamine H3 receptor (H3R) regulates as a presynaptic G protein-coupled receptor the release of histamine and other neurotransmitters in the brain, and is consequently a potential therapeutic target for neuronal disorders. The human H3R encodes for seven splice variants that vary in the length of intracellular loop 3 and/or the C-terminal tail but are all able to induce heterotrimeric Gi protein signaling. The last two decades H3R drug discovery and lead optimization has been exclusively focused on the 445 amino acids-long reference isoform H3R-445. In this study, we pharmacologically characterized for the first time all seven H3R isoforms by determining their binding affinities for reference histamine H3 receptor agonists and inverse agonists. The H3R-453, H3R-415, and H3R-413 isoforms display similar binding affinities for all ligands as the H3R-445. However, increased agonist binding affinities were observed for the three shorter isoforms H3R-329, H3R-365, and H3R-373, whereas inverse agonists such as the approved anti-narcolepsy drug pitolisant (Wakix(R)) displayed significantly decreased binding affinities for the latter two isoforms. This opposite change in binding affinity of agonist versus inverse agonists on H3R-365 and H3R-373 is associated with their higher constitutive activity in a cAMP biosensor assay as compared to the other 5 isoforms. The observed differences in pharmacology between longer and shorter H3R isoforms should be considered in future drug discovery programs.

pharmacology and toxicology↗

Pharmacological characterization and radiolabeling ofVUF15485, a high-affinity small-molecule agonist for theatypical chemokine receptor ACKR3

Atypical chemokine receptor 3 (ACKR3), formerly referred to as CXCR7, is considered to be an interesting drug target. In this study we report on the synthesis, pharmacological characterization and radiolabeling of VUF15485, a new ACKR3 small-molecule agonist, that will serve as an important new tool to study this {beta}-arrestin-biased chemokine receptor. VUF15485 binds with nanomolar affinity (pIC50 = 8.3) to human ACKR3, as measured in [125I]CXCL12 competition binding experiments. Moreover, in a BRET-based {beta}-arrestin2 recruitment assay VUF15485 acts as an ACKR3 agonist with high potency (pEC50 = 7.6) and shows a similar extent of receptor activation compared to CXCL12 when using a newly developed, FRET-based ACKR3 conformational sensor. Moreover, the ACKR3 agonist VUF15485 was tested against a (atypical) chemokine receptor panel (agonist and antagonist mode) and proves to be selective for ACKR3. VUF15485 was subsequently labeled with tritium at one of its methoxy groups affording [3H]VUF15485. The small-molecule agonist radioligand binds saturably and with high affinity to human ACKR3 (Kd = 8.2 nM). [3H]VUF15485 shows rapid binding kinetics and consequently a short residence time (RT < 2 min) for its binding to ACKR3. Displacement of [3H]VUF15485 binding to membranes of HEK293T cells, transiently expressing ACKR3, with a number of CXCR3, CXCR4 or ACKR3 small-molecule ligands confirmed the ACKR3 profile of the [3H]VUF15485 binding site. Interestingly, the chemokine ligands CXCL11 and CXCL12 are not able to displace the binding of [3H]VUF15485 to ACKR3. The radiolabeled VUF15485 was subsequently used to evaluate its binding pocket. Site-directed mutagenesis and docking studies using a recently solved cryo-EM structure propose VUF15485 to bind in the major and the minor binding pocket of ACKR3.

pharmacology and toxicology↗

Genetically encoded sensors for measuring histamine release both in vitro and in vivo

Histamine (HA) is a key biogenic monoamine involved in a wide range of physiological and pathological processes in both the central nervous system and the periphery. Because the ability to directly measure extracellular HA in real-time will provide important insights into the functional role of HA in complex circuits under a variety of conditions, we developed a series of genetically encoded G protein-coupled receptor activation-based (GRAB) HA (GRABHA) sensors. These sensors produce a robust increase in fluorescence upon HA application, with good photostability, sub-second kinetics, nanomolar affinity, and high specificity. Using these GRABHA sensors, we measured electrical stimulation-evoked HA release in acute brain slices with high spatiotemporal resolution. Moreover, we recorded HA release in the preoptic area of the hypothalamus and in the medial prefrontal cortex during the sleep-wake cycle in freely moving mice, finding distinct patterns of HA release in these specific brain regions. Together, these in vitro and in vivo results show that our GRABHA sensors have high sensitivity and specificity for measuring extracellular HA, thus providing a robust new set of tools for examining the role of HA signaling in both health and disease.

neuroscience↗