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1.
Proc Natl Acad Sci U S A ; 120(22): e2220979120, 2023 05 30.
Article in English | MEDLINE | ID: mdl-37216510

ABSTRACT

The hypothesis that sustained G protein-coupled receptor (GPCR) signaling from endosomes mediates pain is based on studies with endocytosis inhibitors and lipid-conjugated or nanoparticle-encapsulated antagonists targeted to endosomes. GPCR antagonists that reverse sustained endosomal signaling and nociception are needed. However, the criteria for rational design of such compounds are ill-defined. Moreover, the role of natural GPCR variants, which exhibit aberrant signaling and endosomal trafficking, in maintaining pain is unknown. Herein, substance P (SP) was found to evoke clathrin-mediated assembly of endosomal signaling complexes comprising neurokinin 1 receptor (NK1R), Gαq/i, and ßarrestin-2. Whereas the FDA-approved NK1R antagonist aprepitant induced a transient disruption of endosomal signals, analogs of netupitant designed to penetrate membranes and persist in acidic endosomes through altered lipophilicity and pKa caused sustained inhibition of endosomal signals. When injected intrathecally to target spinal NK1R+ve neurons in knockin mice expressing human NK1R, aprepitant transiently inhibited nociceptive responses to intraplantar injection of capsaicin. Conversely, netupitant analogs had more potent, efficacious, and sustained antinociceptive effects. Mice expressing C-terminally truncated human NK1R, corresponding to a natural variant with aberrant signaling and trafficking, displayed attenuated SP-evoked excitation of spinal neurons and blunted nociceptive responses to SP. Thus, sustained antagonism of the NK1R in endosomes correlates with long-lasting antinociception, and domains within the C-terminus of the NK1R are necessary for the full pronociceptive actions of SP. The results support the hypothesis that endosomal signaling of GPCRs mediates nociception and provides insight into strategies for antagonizing GPCRs in intracellular locations for the treatment of diverse diseases.


Subject(s)
Endosomes , Receptors, Neurokinin-1 , Mice , Humans , Animals , Receptors, Neurokinin-1/genetics , Aprepitant/pharmacology , Substance P/pharmacology , Receptors, G-Protein-Coupled , Pain/drug therapy
2.
Science ; 377(6614): eabn7065, 2022 09 30.
Article in English | MEDLINE | ID: mdl-36173843

ABSTRACT

Because nonopioid analgesics are much sought after, we computationally docked more than 301 million virtual molecules against a validated pain target, the α2A-adrenergic receptor (α2AAR), seeking new α2AAR agonists chemotypes that lack the sedation conferred by known α2AAR drugs, such as dexmedetomidine. We identified 17 ligands with potencies as low as 12 nanomolar, many with partial agonism and preferential Gi and Go signaling. Experimental structures of α2AAR complexed with two of these agonists confirmed the docking predictions and templated further optimization. Several compounds, including the initial docking hit '9087 [mean effective concentration (EC50) of 52 nanomolar] and two analogs, '7075 and PS75 (EC50 4.1 and 4.8 nanomolar), exerted on-target analgesic activity in multiple in vivo pain models without sedation. These newly discovered agonists are interesting as therapeutic leads that lack the liabilities of opioids and the sedation of dexmedetomidine.


Subject(s)
Adrenergic alpha-2 Receptor Agonists , Analgesics, Non-Narcotic , Drug Discovery , Pain Management , Pain , Adrenergic alpha-2 Receptor Agonists/chemistry , Adrenergic alpha-2 Receptor Agonists/pharmacology , Adrenergic alpha-2 Receptor Agonists/therapeutic use , Analgesics, Non-Narcotic/chemistry , Analgesics, Non-Narcotic/pharmacology , Analgesics, Non-Narcotic/therapeutic use , Animals , Dexmedetomidine/chemistry , Dexmedetomidine/pharmacology , Dexmedetomidine/therapeutic use , Drug Design , Drug Discovery/methods , Humans , Ligands , Mice , Molecular Docking Simulation/methods , Structure-Activity Relationship
3.
J Microbiol Methods ; 119: 154-62, 2015 Dec.
Article in English | MEDLINE | ID: mdl-26598414

ABSTRACT

Interactions between photoautotrophic diatoms and heterotrophic bacteria are important for the biogeochemical C-cycle in the oceans. Additionally, biofilms formed by diatoms and bacteria are the initiating step of biofouling processes, which causes high costs in shipping. Despite this ecological and economical importance, the knowledge about biochemical and molecular mechanisms underlying these interkingdom interactions is relatively small. For analyzing these mechanisms, laboratory model systems are required. In this study, an efficient screening method for isolating bacteria influencing photoautotrophic diatom growth was established. First, diatom cultures of Phaeodactylum tricornutum and Thalassiosira pseudonana were made axenic by applying ß-lactam antibiotics. Second, a non-invasive method for measuring growth of multiple parallel diatom cultures by chlorophyll fluorescence was established. This method allowed semi-quantitative chlorophyll determination of cultures with up to 3 µg (chlorophyll) ml(-1). Axenic diatom cultures were then used for enriching bacteria and led to the isolation of 24 strains influencing growth of both diatom strains in various ways. For example, Rheinheimera sp. strain Tn16 inhibited growth of T. pseudonana, while it stimulated growth and cell aggregation of P. tricornutum. Thus, this screening method is appropriate for isolating heterotrophic bacteria showing different interactions with different diatom species ranging from synergistic to antagonistic. In consecutive applications, this method will be useful to screen for bacterial mutants with altered phenotypes regarding the influence on diatom growth.


Subject(s)
Bacteria/isolation & purification , Diatoms/growth & development , Diatoms/microbiology , Fluorometry/methods , Autotrophic Processes/radiation effects , Bacteria/genetics , Bacteria/metabolism , Bacteria/radiation effects , Chlorophyll/metabolism , Diatoms/chemistry , Diatoms/metabolism , Heterotrophic Processes/radiation effects , Light
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