ACS Pharmacology & Translational Science
● American Chemical Society (ACS)
All preprints, ranked by how well they match ACS Pharmacology & Translational Science's content profile, based on 40 papers previously published here. The average preprint has a 0.03% match score for this journal, so anything above that is already an above-average fit. Older preprints may already have been published elsewhere.
Farmer, J. P.; Mistry, S. N.; Laughton, C. A.; Holliday, N. D.
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G protein coupled receptors (GPCRs) are widely therapeutically targeted, and recent advances in allosteric modulator development at this class of receptors offer further potential for exploitation. In particular GPCR intracellular allosteric modulators (IAM) represent a class of ligands that bind to the receptor-effector interface (e.g. G protein) and so inhibit agonist responses non-competitively. This potentially offers a tailored mode of action and greater selectivity between conserved receptor subtypes compared to classical orthosteric ligands. However, while specific examples of the IAM class of ligands are well described (particularly for chemokine receptors), a more general methodology for assessing compound interactions at the GPCR IAM site is lacking. Here fluorescent labelled peptides based on the G peptide C terminus are developed as novel binding and activation biosensors for the GPCR IAM binding site. In TR-FRET binding studies, unlabelled peptides derived from the GS subunit C-terminus were first characterised for their ability to positively modulate agonist affinity at the {beta}2-adrenoceptor. On this basis, a tetramethylrhodamine (TMR) labelled tracer was synthesized based on the 19 amino acid C terminal GS peptide (TMR-GS19cha18, where cha=cyclohexylalanine). Using NanoBRET technology to detect binding, TMR-GS19cha18 was recruited to Gs coupled {beta}2-adrenoceptor and EP2 receptors in an agonist dependent manner (correlated with ligand efficacy), but not to the Gi coupled CXCR2 receptor. Moreover, NanoBRET competition binding assays using TMR-GS19cha18 enabled direct assessment of the affinity of unlabelled ligands for {beta}2-adrenoceptor IAM site. Thus the NanoBRET platform using fluorescent-labelled G protein peptide mimetics offers novel potential for medium-throughput affinity screens to identify new IAMs, applicable across GPCRs coupled to a G protein class. Using the same platform, Gs peptide biosensors also represent useful tools to probe orthosteric agonist efficacy and the dynamics of receptor activation.
Kotova, P. D.; Dymova, E. A.; Lyamin, O. O.; Rogachevskaja, O. A.; Voronova, E. A.; Kolesnikov, S. S.
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The inhibitory analysis of intracellular signaling pathways is widely employed to gain insight into molecular mechanisms underlying diverse physiological processes. Unfortunately, the essential drawback of this basically effective methodology is that many, if not all, inhibitors, antagonists, modulators, and blockers can affect cellular functions not only acting through specified cellular targets, but also causing off-target effects. In particular, the class I phosphatidylinositol-3-kinase (PI3K) inhibitor LY294002 and its PI3K-inactive structural analog LY303511 have been shown to affect agonist-induced Ca2+ signaling in cells of various types independently of PI3K activity. Here we studied serotonin-induced Ca2+ signaling in HEK293 cells expressing the recombinant mouse 5-HT2C receptor and analyzed the effects of LY294002 and LY303511 on cell responsiveness. As shown with Ca2+ imaging, both LY294002 and LY303511 affected intracellular Ca2+ but via distinct mechanisms. LY294002 suppressed responsiveness of assayed cells to serotonin in a manner suggesting that this substance acted as a competitive antagonist of the 5-HT2C receptor. In turn, LY303511 itself triggered Ca2+ transients in 5-HT2C-positive cells, exhibiting traits of a 5-HT2C agonist. In support of these findings, molecular docking and molecular dynamics simulations validated the binding of both LY294002 and LY303511 to the 5-HT2C receptor and occupying its orthosteric site. Altogether, physiological findings and computational data suggested that the observed effects of these compounds were most likely mediated by extracellular mechanisms associated with the direct interaction of both with the 5-HT2C receptor. This expands the list of non-specified cellular targets of LY294002 and LY303511 with 5-HT2C subtype of serotonin receptors.
Moehle, M. S.; Bender, A. M.; Dickerson, J. W.; Foster, D. J.; Donsante, Y.; Peng, W.; Bryany, Z. K.; Bridges, T. M.; Chang, S.; Watson, K. J.; O'Neill, J. C.; Engers, J. L.; Peng, L.; Rodriguez, A.; Niswender, C. M.; Lindsley, C. W.; Conn, P. J.; Rook, J. M.
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Non-selective antagonists of muscarinic acetylcholine receptors (mAChRs) that broadly inhibit all five mAChR subtypes provide an efficacious treatment for some movement disorders, including Parkinson disease and dystonia. Despite their efficacy in these and other central nervous system disorders, anti-muscarinic therapy has limited utility due to severe adverse effects that often limit their tolerability by patients. Recent advances in understanding the roles that each mAChR subtype plays in disease pathology suggest that highly selective ligands for individual subtypes may underlie the anti-parkinsonian and anti-dystonic efficacy observed with the use of non-selective anti-muscarinic therapeutics. Our recent work has indicated that the M4 muscarinic acetylcholine receptor has several important roles in opposing aberrant neurotransmitter release, intracellular signaling pathways, and brain circuits associated with movement disorders. This raises the possibility that selective antagonists of M4 may recapitulate the efficacy of non-selective anti-muscarinic therapeutics and may decrease or eliminate the adverse effects associated with these drugs. However, this has not been directly tested due to lack of selective antagonists of M4. Here we utilize genetic mAChR knockout animals in combination with non-selective mAChR antagonists to confirm that the M4 receptor underlies the locomotor-stimulating and anti-parkinsonian efficacy in rodent models. We also report the synthesis, discovery, and characterization of the first-in-class selective M4 antagonists VU6013720, VU6021302, and VU6021625 and confirm that these optimized compounds have anti-parkinsonian and anti-dystonic efficacy in pharmacological and genetic models of movement disorders.
Tsai, M.-H. M.; Chen, L.; Baumann, M. H.; Canals, M.; Javitch, J. A.; Lane, J. R.; Shi, L.
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Novel synthetic opioids (NSOs), including both fentanyl and non-fentanyl analogs that act as the -opioid receptor (MOR) agonists, are associated with serious intoxication and fatal overdose. Previous studies proposed that G protein biased MOR agonists are safer pain medications, while other evidence indicates that low intrinsic efficacy at MOR better explains reduced opioid side effects. Here, we characterized the in vitro functional profiles of various NSOs at MOR using adenylate cyclase inhibition and {beta}-arrestin2 recruitment assays, in conjunction with the application of the receptor depletion approach. By fitting the concentration-response data to the operational model of agonism, we deduced the intrinsic efficacy and affinity for each opioid in the Gi protein signaling and {beta}-arrestin2 recruitment pathways. Compared to the reference agonist DAMGO, we found that several fentanyl analogs were more efficacious at inhibiting cAMP production, whereas all fentanyl analogs were less efficacious at recruiting {beta}-arrestin2. In contrast, the non-fentanyl 2-benzylbenzimidazole (i.e., nitazene) analogs were highly efficacious and potent in both the cAMP and {beta}-arrestin2 assays. Our findings suggest that the high intrinsic efficacy of the NSOs in Gi protein signaling is a common property that may underlie their high risk of intoxication and overdose, highlighting the limitation of using in vitro functional bias to predict the adverse effects of opioids. Instead, our results show that, regardless of bias, opioids with sufficiently high intrinsic efficacy can be lethal, especially given the extremely high potency of many of these compounds that are now pervading the illicit drug market.
Volf, A.; Brust, T. F.; Kobylski, R. R.; Czekner, K. M.; Stahl, E. L.; Cameron, M. D.; Trojniak, A. E.; Aube, J.; Bohn, L. M.
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Kappa opioid receptor agonists are clinically used to treat pruritis and have therapeutic potential for the treatment of pain and neuropsychiatric disorders. We have previously shown that triazole 1.1 is a G protein signaling-biased KOR agonist, that can suppress itch without producing signs of sedation in mice. This profile was recapitulated in rats and non-human primates however, triazole 1.1 had limited potency as an antipruritic. Here we describe a more potent, G protein signaling-biased agonist, triazole 187. Triazole 187 is a potent antipruritic agent and does not decrease spontaneous locomotor activity; interestingly, it produces anxiolytic-like behaviors in mice, an effect not observed for triazole 1.1. In addition to curbing sedation, triazole 187 produces only mild diuresis, resulting in 30% of urine output induced by U50,488H at dose that is 188-fold the antipruritic potency dose. Compounds like triazole 187 may present a means to treat anxiety accompanied by persistent chronic itch while avoiding sedation and diuresis accompanied by typical KOR agonists. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=107 SRC="FIGDIR/small/638680v1_ufig1.gif" ALT="Figure 1"> View larger version (27K): org.highwire.dtl.DTLVardef@17e9e6aorg.highwire.dtl.DTLVardef@1d27741org.highwire.dtl.DTLVardef@9389dcorg.highwire.dtl.DTLVardef@3fd825_HPS_FORMAT_FIGEXP M_FIG Graphic Abstract C_FIG
Eyal, S.; Dallal, N.; Rainish, A.; Ziaikin, E.; Malach, E.; Niv, M. Y.
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Bitter taste receptors (TAS2Rs) are G-protein coupled receptors that detect chemically diverse compounds, including many clinically used drugs. TAS2R14 is expressed in many extraoral tissues and is activated by hundreds of ligands, including pharmaceutical drugs. Recent cryo-EM structures revealed a previously unrecognized intracellular binding pocket in TAS2R14, raising new questions regarding ligand binding modes. Here, we investigated the activation of TAS2R14 by Tamoxifen, Carbimazole, and Lidocaine using cell-based assays measuring proximal G-protein recruitment (BRET2) and downstream signaling (IP-One). Tamoxifen and Carbimazole activated TAS2R14 with EC50 values in the low micromolar range, whereas Lidocaine required substantially higher concentrations. Targeted receptor mutations were used to evaluate the contribution of extracellular and intracellular binding regions to agonist activity. Carbimazole and Lidocaine showed greater dependence on the intracellular and extracellular positions, respectively, while Tamoxifen displayed assay-dependent, but overall modest sensitivity to the tested mutations. Thus, although existing drugs can activate TAS2R14 through distinct binding modes, TAS2R14-directed repurposing will depend on whether effective local receptor concentrations can be achieved through appropriate delivery strategies.
Menzies, S. K.; Clare, R. H.; Xie, C.; Westhorpe, A.; Hall, S. R.; Edge, R. J.; Alsolaiss, J.; Crittenden, E.; Harrison, R. A.; Kool, J.; Casewell, N. R.
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Snakebite envenoming affects more than 250,000 people annually in sub-Saharan Africa. Envenoming by Dispholidus typus (boomslang) results in venom induced consumption coagulopathy, whereby highly abundant prothrombin-activating snake venom metalloproteinases (SVMPs) consume clotting factors and deplete fibrinogen. The only available treatment for D. typus envenoming is the monovalent SAIMR Boomslang antivenom. Treatment options are urgently required because this antivenom is often difficult to source and, at $6,000/vial, typically unaffordable for most snakebite patients. We therefore investigated the in vitro and in vivo preclinical efficacy of four SVMP inhibitors to neutralise the effects of D. typus venom; the matrix metalloproteinase inhibitors marimastat and prinomastat, and the metal chelators dimercaprol and DMPS. The venom of D. typus exhibited an SVMP-driven procoagulant phenotype in vitro. Marimastat and prinomastat demonstrated equipotent inhibition of the SVMP-mediated procoagulant activity of the venom in vitro, whereas dimercaprol and DMPS showed considerably lower potency. However, when tested in preclinical murine models of envenomation, DMPS and marimastat demonstrated partial protection against venom lethality, demonstrated by prolonged survival times of experimental animals, whereas dimercaprol and prinomastat failed to confer any protection at the doses tested. The results presented here demonstrate that DMPS and marimastat show potential as novel small molecule-based therapeutics for D. typus snakebite envenomation. These two drugs have been previously shown to be effective against Echis ocellatus venom induced consumption coagulopathy (VICC) in preclinical models, and thus we conclude that marimastat and DMPS may be valuable early intervention therapeutics to broadly treat VICC following snakebite envenoming in sub-Saharan Africa.
Clark, A.; Mullooly, N.; Safitri, D.; Poyner, D. R.; Gianni, D.; Wigglesworth, M.; Ladds, G.
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Agonist bias at G protein-coupled receptors has attracted considerable interest, although its relevance for physiologically-produced agonists is not always clear. Here, using primary human cells and gene editing techniques, we demonstrate for the first time, endogenous agonist bias with physiological consequences for the calcitonin-like receptor (CLR). We reveal that by switching the accessory protein: receptor activity-modifying protein (RAMP) associated with CLR we can re-route the physiological pathways activated by the stimulating peptide agonists. These results have revealed a unique role in calcium-mediated nitric oxide signalling for the little-understood peptide adrenomedullin 2 and distinct pro-proliferative effects of calcitonin-gene related peptide (CGRP) and adrenomedullin in cardiovascular cells. This work reveals that CLR-based agonist bias occurs naturally in human cells and has a fundamental purpose for its existence. We anticipate this will be a starting point for more studies into RAMP function in native environments and its importance in endogenous GPCR signalling.
Eastman, R. T.; Rusinova, R.; Herold, K. F.; Huang, X.-P.; Dranchak, P.; Voss, T. C.; Rana, S.; Shrimp, J. H.; White, A. D.; Hemmings, H. C.; Roth, B. L.; Inglese, J.; Andersen, O. S.; Dahlin, J. L.
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Since it was proposed as a potential host-directed antiviral agent for SARS-CoV-2, the antiparasitic drug ivermectin has been investigated thoroughly in clinical trials, which have provided insufficient support for its clinical efficacy. To examine the potential for ivermectin to be repurposed as an antiviral agent, we therefore undertook a series of preclinical studies. Consistent with early reports, ivermectin decreased SARS-CoV-2 viral burden in in vitro models at low micromolar concentrations, five-to ten-fold higher than the reported toxic clinical concentration. At similar concentrations, ivermectin also decreased cell viability and increased biomarkers of cytotoxicity and apoptosis. Further mechanistic and profiling studies revealed that ivermectin nonspecifically perturbs membrane bilayers at the same concentrations where it decreases the SARS-CoV-2 viral burden, resulting in nonspecific modulation of membrane-based targets such as G-protein coupled receptors and ion channels. These results suggest that a primary molecular mechanism for the in vitro antiviral activity of ivermectin may be nonspecific membrane perturbation, indicating that ivermectin is unlikely to be translatable into a safe and effective antiviral agent. These results and experimental workflow provide a useful paradigm for performing preclinical studies on (pandemic-related) drug repurposing candidates. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=61 SRC="FIGDIR/small/563088v1_ufig1.gif" ALT="Figure 1"> View larger version (18K): org.highwire.dtl.DTLVardef@a21f94org.highwire.dtl.DTLVardef@1c76751org.highwire.dtl.DTLVardef@500930org.highwire.dtl.DTLVardef@8b6c05_HPS_FORMAT_FIGEXP M_FIG Graphical abstract C_FIG
Ippolito, A.; Vasudevan, S.; Hurley, S.; Gilmour, G.; Westhorpe, F.; Churchill, G. C.; Sharp, T.
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Background and PurposeSerotonergic psychedelic drugs are under renewed investigation for the potential treatment of several psychiatric disorders. While all serotonergic psychedelics have 5-HT2A receptor activity, the explanation for why some 5-HT2A receptor agonists are not psychedelic is unknown. To address this question, we investigated the 5-HT2A receptor signalling bias and efficacy of a panel of psychedelics and non-psychedelics. Experimental ApproachG -coupled (Ca2+ and IP) and {beta}-arrestin2 signalling effects of eight chemically diverse psychedelics (psilocin, 5-MeO-DMT, LSD, mescaline, 25B-NBOMe and DOI) and non-psychedelics (lisuride and TBG) were characterised using SH-SY5Y cells expressing recombinant human 5-HT2A receptors. Measurements of signalling efficacy and bias were derived from dose-responses curves for each agonist, compared to 5-HT. Follow-up experiments sought to confirm the generality of findings using rat C6 cells expressing endogenous 5-HT2A receptors. Key ResultsIn SH-SY5Y cells, all psychedelics were partial agonists at both 5-HT2A receptor signalling pathways and none showed significant signalling bias. In comparison, in SH-SY5Y cells the non-psychedelics lisuride and TBG were not distinguishable from psychedelics in terms of biased agonist properties, but both exhibited the lowest 5-HT2A receptor signalling efficacy of all drugs tested, a result confirmed in C6 cells. Conclusion and ImplicationsIn summary, all psychedelics tested were unbiased, partial 5-HT2A receptor agonists. Importantly, the non-psychedelics lisuride and TBG were discriminated from psychedelics, not through biased signalling but rather by relatively low efficacy. Thus, 5-HT2A receptor signalling efficacy and not bias provides a possible explanation for why some 5-HT2A receptor agonists are not psychedelic.
Darragh, A. C.; Hanna, A. M.; Lipner, J. H.; King, A. J.; Servant, N. B.; Jahic, M.
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AbstractUncovering a drugs mechanism of action and possible adverse effects are critical components in drug discovery and development. Moreover, it provides evidence for why some drugs prove more effective than others, and how to design better drugs altogether. Here we demonstrate the utility of a high- throughput in vitro screening platform along with a comprehensive panel to aid in the characterization of fifteen BTK inhibitors that are either approved by the FDA or presently under clinical evaluation. To compare the potency of these drugs, we measured the binding affinity of each to wild-type BTK, as well as a clinically relevant resistance mutant of BTK (BTK C481S). In doing so, we discovered a considerable difference in the selectivity and potency of these BTK inhibitors to the wild-type and mutant proteins. Some of this potentially contributes to the adverse effects experienced by patients undergoing therapy using these drugs. Overall, non-covalent BTK inhibitors showed stronger potency for both the wild-type and mutant BTK when compared with that of covalent inhibitors, with the majority demonstrating a higher specificity and less off-target modulation. Additionally, we compared biological outcomes for four of these inhibitors in human cell-based models. As expected, we found different phenotypic profiles for each inhibitor. However, the two non-covalent inhibitors had fewer off-target biological effects when compared with the two covalent inhibitors. This and similar in-depth preclinical characterization of drug candidates can provide critical insights into the efficacy and mechanism of action of a compound that may affect its safety in a clinical setting. Table of Contents/Abstract Graphic O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=101 SRC="FIGDIR/small/611550v1_ufig1.gif" ALT="Figure 1"> View larger version (32K): org.highwire.dtl.DTLVardef@744cf2org.highwire.dtl.DTLVardef@167cf2forg.highwire.dtl.DTLVardef@5326c4org.highwire.dtl.DTLVardef@1163b29_HPS_FORMAT_FIGEXP M_FIG C_FIG
Nguyen, A. M.; Semeano, A.; Quach, V.; Inoue, A.; Nichols, D. E.; Yano, H.
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The dopamine D1 receptor (D1R) couples to Gs and Golf and plays a crucial role in regulating voluntary movement and other cognitive functions, making it a potential therapeutic target for several neurological and neuropsychiatric disorders, such as Parkinsons disease and schizophrenia. In the central nervous system, Gs is widely expressed in the cortex and Golf is predominantly found in the striatum. We used two different configurations of bioluminescence resonance energy transfer (BRET) assays and a fluorescence-based cyclic AMP (cAMP) production functional assay to test a series of tetracyclic catechol (dihydrexidine, methyl-dihydrexidine, doxanthrine) and non-catechol (tavapadon, PF-8294, PF-6142) D1R agonists for their activity at these G proteins. We discovered that these tetracyclic catechol compounds, PF-8294 and PF-6142 exerted full agonism when D1R coupled to Gs but partial agonism when D1R coupled to Golf. In contrast, tavapadon acted as a full agonist at Golf and a partial agonist at Gs. The effects of these compounds on the cortical and nigral electrophysiological events agree with their selectivity profiles. This suggests the possibility of achieving region-specific pharmacology and opens new directions for developing D1R drugs to treat relevant neurological and neuropsychiatric disorders.
Lynch, K. R.; Kharel, Y.; Huang, T.; Dunnavant, K.; Foster, D.; Santos, W.; Xu, W.; Gaultier, A.; Merchak, A.; Leitinger, N.; Pavelec, C.; Abbott, S. B.; Souza, G. M.; Nimchuk, K. T.; Shin, J.-B.
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S1P (sphingosine 1-phosphate) receptor modulator (SRM) drugs interfere with lymphocyte trafficking by downregulating lymphocyte S1P receptors. While the immunosuppressive activity of SRM drugs has proved useful in treating autoimmune diseases such as multiple sclerosis, that drug class is beset by on-target liabilities such as initial dose bradycardia. The S1P that binds to cell surface lymphocyte S1P receptors is provided by S1P transporters. Mice born deficient in one of these, spinster homolog 2 (Spns2), are lymphocytopenic and have low lymph S1P concentrations. Such observations suggest that inhibition of Spns2-mediated S1P transport might provide another therapeutically beneficial method to modulate immune cell positioning. We report here results using a novel S1P transport blocker (STB), SLF80821178, to investigate the consequences of S1P transport inhibition in rodents. We found that SLF80821178 is efficacious in a multiple sclerosis model but - unlike the SRM fingolimod - neither decreases heart rate nor compromises lung endothelial barrier function. Notably, although Spns2 null mice have a sensorineural hearing defect, mice treated chronically with SLF80821178 have normal hearing acuity. STBs such as SLF80821178 evoke a dose-dependent decrease in peripheral blood lymphocyte counts, which affords a reliable pharmacodynamic marker of target engagement. However, the maximal reduction in circulating lymphocyte counts in response to SLF80821178 is substantially less than the response to SRMs such as fingolimod (50% vs. 90%) due to a lesser effect on T lymphocyte sub-populations by SLF80821178. Finally, in contrast to results obtained with Spns2 deficient mice, lymph S1P concentrations were not significantly changed in response to administration of STBs at doses that evoke maximal lymphopenia, which indicates that current understanding of the mechanism of action of S1P transport inhibitors is incomplete.
Charwat, V.; Ramirez, A.; Jaeger, K. H.; Kandalaft, B.; Finsberg, H.; Siemons, B.; Tveito, A.; Healy, K.; Wall, S. T.
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Background and PurposeCardiotoxicity is a major cause for drug failure throughout the drug development process, with particular concern for action potential prolongation and arrhythmia. Hence, such liabilities are heavily considered during the early phases of drug design to pre vent dangerous compounds from progressing. New approach methodologies (NAMs) that efficiently examine this risk early in the discovery pipeline should help streamline drug development programs. We developed a cardiac NAM, a 384-well open bath platform consisting of cardiac tissue derived from human induced pluripotent stem cell (hiPSC)-derived cardiomyocytes, enabling high-throughput drug screening while maintaining the structural and functional complexity of 3D cardiac micromuscles. MethodsWe dramatically increased throughput without compromising physiological relevance provided by the 3D micromuscle structure. Our 384-well open bath high-throughput platform allowed evaluation of multiple compounds at a time, enabling us to study the CiPA (comprehensive in vitro proarrhythmia assay) drug panel for proarrhythmia screening. We obtained phenotypic fingerprints of all 28 compounds (9 low, 11 intermediate, and 8 high arrhythmia risk; https://cipaproject.org) in dose-escalation studies around their respective clinical concentrations. The analysis was augmented with an in silico pipeline that used phenotypic biomarkers to invert data into a mathematical model of cellular currents to infer which ion channels were affected upon drug exposure, and then trained a ML model to predict channel block. Results and ConclusionsWe found accurate detection of arrhythmic potential for most of the compounds, and the in silico model inversions were consistent with published values of compound channel block. All the high risk compounds showed action potential duration (APD) prolongation coupled with either action potential abnormalities, early afterdepolarizations (EADs), or beat cessation. For the intermediate risk group, 9 out of 11 compounds caused APD prolongation alone or in combination with EADs while 2 others showed either beat cessation or beat rate change. Augmentation of APD analysis with detailed biophysical modeling and ML tools provided meaningful insight into the mechanisms involved in APD changes. Overall, our cardiac NAM allowed for fast and relevant screening for mechanistic understanding of APD prolongation and proarrhythmic activity, at massively increased throughput compared to other 3D micromuscle models. SummaryCardiotoxicity testing is critical in drug development to prevent arrhythmogenic side effects. Current stringent regulations have greatly reduced market withdrawals; however, these strict evaluations often lead to costly late-stage failures and loss of promising candidates as false positives. We developed a cardiac new approach methodology (NAM), a 384-well open bath cardiac micromuscle platform created from hiPSC-derived cardiomyocytes, enabling high-throughput drug screening while maintaining the structural and functional complexity of 3D cardiac micromuscles. Using the comprehensive in vitro proarrhythmia assay (CiPA) drug panel, we validated the system to accurately detect proarrhythmic potential. Our assay provided phenotypic fingerprints based on mechanical and electrophysiological biomarkers. Integration with computational modeling offered insights into multi-ion channel effects (MICE). Particularly, we identified sodium channel block contributions as a significant factor for poor risk prediction based on traditional parameters. The combined experimental and computational platform can enhance early drug screening, thereby reducing late-stage failures and promoting the progression of low-risk compounds with complex electrophysiological profiles.
Diez, J.; Rajendrarao, S.; Baajour, S.; Sripadhan, P.; Spicer, T.; Scampavia, L.; Minond, D.
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Despite recent advances in melanoma drug discovery, the average overall survival of patients with late stage metastatic melanoma is approximately 3 years, suggesting a need for new approaches and melanoma therapeutic targets. Previously we identified heterogeneous nuclear ribonucleoprotein H2 as a potential target of anti-melanoma compound 2155-14 (Palrasu et al, Cell Physiol Biochem 2019;53:656-86). In the present study, we endeavored to develop an assay to enable a high throughput screening campaign to identify drug-like molecules acting via down regulation of heterogeneous nuclear ribonucleoprotein H that can be used for melanoma therapy and research. ResultsWe established a cell-based platform using metastatic melanoma cell line WM266-4 expressing hnRNPH2 conjugated with green fluorescent protein to enable assay development and screening. High Content Screening assay was developed and validated in 384 well plate format, followed by miniaturization to 1,536 well plate format. All plate-based QC parameters were acceptable: %CV = 6.7{+/-}0.3, S/B = 21{+/-}2.1, Z = 0.75{+/-}0.04. Pilot screen of FDA-approved drug library (n=1,400 compounds) demonstrated hit rate of 0.5%. Two compounds demonstrated pharmacological response and were authenticated by western blot analysis. ConclusionsWe developed a highly robust HTS-amenable high content screening assay capable of monitoring down regulation of hnRNPH2. This assay is thus capable of identifying authentic down regulators of hnRNPH1 and 2 in a large compound collection and, therefore, is amenable to a large-scale screening effort.
Obeng, B.; Bennett, L. J.; West, B. E.; Wagner, D. J.; Fleming, P. J.; Tasker, M. N.; Lorenger, M. K.; Smith, D. R.; Systuk, T.; Plummer, S. M.; Eom, J.; Paine, M. D.; Frangos, C. T.; Wilczek, M. P.; Shim, J. K.; Maginnis, M. S.; Gosse, J. A.
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Cetylpyridinium chloride (CPC) is a quaternary ammonium antimicrobial used in numerous personal care products, human food, cosmetic products, and cleaning solutions. Yet, there is minimal published data on CPC effects on eukaryotes, immune signaling, and human health. Previously, we showed that low-micromolar CPC inhibits rat mast cell function by inhibiting antigen (Ag)-stimulated Ca2+ mobilization, microtubule polymerization, and degranulation. In this study, we extend the findings to human mast cells (LAD2) and present data indicating that CPCs mechanism of action centers on its positively-charged quaternary nitrogen in its pyridinium headgroup. CPCs inhibitory effect is independent of signaling platform receptor architecture. Tyrosine phosphorylation events are a trigger of Ca2+ mobilization necessary for degranulation. CPC inhibits global tyrosine phosphorylation in Ag-stimulated mast cells. Specifically, CPC inhibits tyrosine phosphorylation of specific key players Syk kinase and LAT, a substrate of Syk. In contrast, CPC does not affect Lyn kinase phosphorylation. Thus, CPCs root mechanism is electrostatic disruption of particular tyrosine phosphorylation events essential for signaling. This work outlines the biochemical mechanisms underlying the effects of CPC on immune signaling and allows the prediction of CPC effects on cell types, like T cells, that share similar signaling elements.
Olaleye, O. A.; Kaur, M.; Onyenaka, C. C.
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Severe Acute Respiratory Syndrome Coronavirus 2 (SARS-CoV-2), the causative agent of coronavirus disease 2019 (COVID-19), enters the host cells through two main pathways, both involving key interactions between viral envelope-anchored spike glycoprotein of the novel coronavirus and the host receptor, angiotensin-converting enzyme 2 (ACE2). To date, SARS-CoV-2 has infected up to 26 million people worldwide; yet, there is no clinically approved drug or vaccine available. Therefore, a rapid and coordinated effort to re-purpose clinically approved drugs that prevent or disrupt these critical entry pathways of SARS-CoV-2 spike glycoprotein interaction with human ACE2, could potentially accelerate the identification and clinical advancement of prophylactic and/or treatment options against COVID-19, thus providing possible countermeasures against viral entry, pathogenesis and survival. Herein, we discovered that Ambroxol hydrochloride (AMB), and its progenitor, Bromhexine hydrochloride (BHH), both clinically approved drugs are potent effective modulators of the key interaction between the receptor binding domain (RBD) of SARS-CoV-2 spike protein and human ACE2. We also found that both compounds inhibited SARS-CoV-2 infection-induced cytopathic effect at micromolar concentrations. Therefore, in addition to the known TMPRSS2 activity of BHH; we report for the first time that the BHH and AMB pharmacophore has the capacity to target and modulate yet another key protein-protein interaction essential for the two known SARS-CoV-2 entry pathways into host cells. Altogether, the potent efficacy, excellent safety and pharmacologic profile of both drugs along with their affordability and availability, makes them promising candidates for drug repurposing as possible prophylactic and/or treatment options against SARS-CoV-2 infection.
Fuchs, N.; Yuan, S.; Kuncewicz, K.; Elhamouly, M.; El gaamouch, F.; Gabr, M.
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Triggering receptor expressed on myeloid cells 2 (TREM2) is a key regulator of microglial function and a promising therapeutic target in Alzheimers disease. While current strategies have largely focused on antibody-based agonists, alternative modalities capable of modulating TREM2 signaling remain underexplored. Here, we report the discovery of TREM2-binding cyclic peptides using a disulfide-constrained phage display library. Screening and biophysical validation identified multiple binders, with TREM2-6 and TREM2-12 exhibiting micromolar affinity. Both peptides modulated microglial responses in human iPSC-derived model of amyloid stress and in neuron-microglia co-cultures. Molecular dynamics simulations supported stable peptide-TREM2 interactions, with TREM2-12 displaying a more constrained binding mode. In vitro pharmacokinetic profiling revealed favorable plasma and intestinal stability but limited permeability, consistent with cyclic peptide scaffolds. Together, these findings establish cyclic peptides as a viable modality for targeting TREM2 and provide a foundation for the development of tunable neuroimmune therapeutics. Insert Table of Contents artwork here O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=135 SRC="FIGDIR/small/720287v1_ufig1.gif" ALT="Figure 1"> View larger version (43K): org.highwire.dtl.DTLVardef@1977a2aorg.highwire.dtl.DTLVardef@1d571c1org.highwire.dtl.DTLVardef@1f6a22org.highwire.dtl.DTLVardef@70eea7_HPS_FORMAT_FIGEXP M_FIG C_FIG
Cho, S.; Gabr, M.
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The interaction between neuronal nitric oxide synthase (NOS1) and its adaptor protein CAPON (NOS1AP) plays a critical role in various neurological processes and has been implicated in cardiovascular and neuropsychiatric disorders. Disruption of this protein-protein interaction represents a potential therapeutic strategy, yet identifying small molecule inhibitors has been challenging. Here, we present the development and validation of a NanoBiT-based luminescence complementation assay optimized for high-throughput screening (HTS) of NOS1-NOS1AP interaction inhibitors. We engineered NOS1 and NOS1AP fusion proteins with HiBiT and LgBiT complementary subunits, respectively, and established stable CHO-K1 cell lines for robust signal generation. The assay demonstrated excellent performance characteristics with a signal-to-background ratio exceeding 240-fold, and was validated using TAT-GESV, a known peptide inhibitor that showed time- and dose-dependent inhibition. We successfully screened a diverse library of 10,240 compounds and identified 19 validated hits with IC50 values ranging from 2.54 to greater than 30 M, with the majority exhibiting IC50 values below 30 M. The top three compounds exhibited potent inhibitory activity with IC50 values of less than 5 M. This NanoBiT-based assay provides a reliable and efficient platform for discovering novel NOS1-NOS1AP interaction inhibitors and can be adapted for other protein-protein interaction studies.
Powell, A. J.; Griggs, N.; Iniguez-Lluhi, J.; Traynor, J. R.
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The simple two-state conformational selection model of G-protein coupled receptor (GPCR) activation suggests that, by binding to a high affinity site, an agonist will shift receptor equilibrium in favor of active state (R*) conformations that recruit heterotrimeric G proteins over inactive state (R) conformations. Agonist binding to the -opioid receptor is highly sensitive to Na+ ions which stabilize an inactive receptor state. Higher efficacy opioid agonists, such as DAMGO and fentanyl, are sensitive to Na+ compared to lower efficacy ligands at the -opioid receptor. However, the binding of the highly potent oripavine agonists etorphine and dihydroetorphine are less sensitive to Na+ than expected such that the prevailing models fail to explain their pharmacology. To explain this discrepancy, experiments were performed to evaluate the binding properties and G protein activation of the highly potent agonists carfentanil, BU72, etorphine, etonitazene and similarly potent opioid peptidomimetics in comparison to the standard agonists DAMGO, fentanyl, and morphine in the presence or absence of Na+ or K+ ions. Several of the superagonists retained high affinity and potency in both ionic conditions, whereas DAMGO, fentanyl and morphine displayed enhanced binding and signaling in K+, compared to Na+ ions. These functional parameters were used to determine an intrinsic efficacy value, determined as [Formula]. Comparison of affinity shifts with intrinsic efficacy afforded a negative correlation in which superagonists with the highest intrinsic efficacy are least sensitive to Na+. These data suggest that select -opioid receptor superagonists have high affinity for the Na+ bound receptor states (R) and shift these species into active receptor conformations (R*) that efficiently couple to G proteins. Significance StatementThe simple theory of conformational selection suggests the binding affinities of high efficacy -opioid receptor ligands, such as fentanyl and DAMGO, are more sensitive to Na+ and guanine nucleotide which stabilize inactive receptor states than lower efficacy agonists and antagonists. Here, we show that ligands with high intrinsic efficacy (superagonists) are much less sensitive to Na+ and guanine nucleotide. This work demonstrates that highly potent ligands can engage a low affinity Na+-bound receptor state that may then convert to a receptor species that efficiently couples to G protein - i.e. a conformational induction.