Influenza outbreaks are associated with substantial morbidity, mortality and economic burden. Next generation antivirals are needed to treat seasonal infections and prepare against zoonotic spillover of avian influenza viruses with pandemic potential. Having previously identified oral efficacy of the nucleoside analog 4'-Fluorouridine (4'-FlU, EIDD-2749) against SARS-CoV-2 and respiratory syncytial virus (RSV), we explored activity of the compound against seasonal and highly pathogenic influenza (HPAI) viruses in cell culture, human airway epithelium (HAE) models, and/or two animal models, ferrets and mice, that assess IAV transmission and lethal viral pneumonia, respectively. 4'-FlU inhibited a panel of relevant influenza A and B viruses with nanomolar to sub-micromolar potency in HAE cells. In vitro polymerase assays revealed immediate chain termination of IAV polymerase after 4'-FlU incorporation, in contrast to delayed chain termination of SARS-CoV-2 and RSV polymerase. Once-daily oral treatment of ferrets with 2 mg/kg 4'-FlU initiated 12 hours after infection rapidly stopped virus shedding and prevented transmission to untreated sentinels. Treatment of mice infected with a lethal inoculum of pandemic A/CA/07/2009 (H1N1)pdm09 (pdmCa09) with 4'-FlU alleviated pneumonia. Three doses mediated complete survival when treatment was initiated up to 60 hours after infection, indicating a broad time window for effective intervention. Therapeutic oral 4'-FlU ensured survival of animals infected with HPAI A/VN/12/2003 (H5N1) and of immunocompromised mice infected with pdmCa09. Recoverees were protected against homologous reinfection. This study defines the mechanistic foundation for high sensitivity of influenza viruses to 4'-FlU and supports 4'-FlU as developmental candidate for the treatment of seasonal and pandemic influenza.
Purpose: Pro-angiogenic and immune cells expressing chemokine receptor CXCR4 traffic along concentration gradients of the chemokine ligand CXCL12, which disseminates from stromal niches. The CXCR4/CXCL12 axis is hijacked by various cancer types characterized by dramatic CXCR4 and/or CXCL12 upregulation. This chemokine network misregulation causes hyperactivation of CXCR4-mediated processes, leading to (1) excessive stimulation of protective tumor-stromal interactions, (2) metastatic expansion of CXCR4+ cancer cells to CXCL12-rich sites, and (3) intratumoral infiltration of CXCR4+ immunosuppressive cells. Accordingly, CXCR4 antagonists have significant therapeutic potential against cancer. While clinical CXCR4 inhibitors are severely limited by suboptimal pharmacokinetic (PK) properties and off-target activities, several of our tetrahydroisoquinoline-based CXCR4 antagonists exhibit superior selectivity and PK profiles to these clinical comparators (e.g., X4P-001). Methods: To test the hypothesis that improved PK profiles would translate to enhanced efficacy, our lead CXCR4 antagonist EMU-116 was compared to X4P-001 head-to-head in three mouse models of genitourinary cancers. First, human 786.0 renal cell carcinoma (RCC) xenograft-bearing female nude mice were treated p.o., q.d. with vehicle, axitinib (30 mg/kg), X4P-001 (100 mg/kg), EMU-116 (3, 10, or 30 mg/kg), X4P + axitinib, or EMU-116 + axitinib. Subcutaneous tumor volume was monitored using calipers. Second, nude male mice bearing intratibial, luciferase-expressing human PC-3 prostate cancer xenografts were treated with vehicle (p.o., q.d.), docetaxel (10 mg/kg i.p. weekly), X4P-001 (10 or 30 mg/kg p.o., q.d.), EMU-116 (10 or 30 mg/kg p.o., q.d.), X4P + axitinib, or EMU + axitinib. Intratibial tumor volume was monitored via luminescence imaging. Third, syngeneic RENCA RCC tumor-bearing female Balb/c mice were treated p.o., q.d. with vehicle, X4P-001 (30 mg/kg), or EMU-116 (30 mg/kg). Subcutaneous tumor volume was monitored using calipers, and immune cell subsets in bone marrow, blood, tumor, and tumor-draining lymph nodes were quantified via flow cytometry. Results: In the RCC xenograft model in combination with axitinib, EMU-116 (3 or 10 mg/kg) was equally effective at decreasing tumor burden compared to X4P-001 (100 mg/kg), whereas EMU-116 (30 mg/kg) was more effective. In the bone metastatic prostate cancer xenograft model, EMU-116 was as or more effective than X4P-001 when paired with docetaxel. In the syngeneic RCC model, EMU-116 mobilized T cells more effectively than X4P-001. Conclusion: EMU-116, at the same or lower dose, was more efficacious than X4P-001 in these models. These results highlight EMU-116 as a clinical candidate with significant therapeutic potential to synergize with chemotherapeutics, targeted therapies, and immuno-oncology agents. Citation Format: Eric J. Miller, Carrie Q. Sun, Petra Gregorova, Edgars Jecs, Yesim Altas Tahirovic, Robert J. Wilson, Huy H. Nguyen, Savita K. Sharma, Perry Bartsch, Zachary Sticher, Levi Moellering, Priscilla Davidson, Ryan Jajosky, Michael D'Erasmo, Manohar Saindane, Zafer Sahin, Nicholas S. Akins, Alexander A. Kolykhalov, Lawrence Wilson, Rebecca S. Arnold, John A. Petros, Haydn Kissick, Lingjie Xu, Yi Jiang, Dennis C. Liotta. Orally bioavailable small molecule CXCR4 antagonists with enhanced efficacy in mouse models of genitourinary cancers [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2022; 2022 Apr 8-13. Philadelphia (PA): AACR; Cancer Res 2022;82(12_Suppl):Abstract nr 2649.
Our first-generation CXCR4 antagonist TIQ15 was rationally modified to improve drug-like properties. Introducing a nitrogen atom into the aromatic portion of the tetrahydroisoquinoline ring led to several heterocyclic variants including the 5,6,7,8-tetrahydro-1,6-naphthyridine series, greatly reducing the inhibition of the CYP 2D6 enzyme. Compound 12a demonstrated the best overall properties after profiling a series of isomeric tetrahydronaphthyridine analogues in a battery of biochemical assays including CXCR4 antagonism, CYP 2D6 inhibition, metabolic stability, and permeability. The butyl amine side chain of 12a was substituted with various lipophilic groups to improve the permeability. These efforts culminated in the discovery of compound 30 as a potent CXCR4 antagonist (IC50 = 24 nM) with diminished CYP 2D6 activity, improved PAMPA permeability (309 nm/s), potent inhibition of human immunodeficiency virus entry (IC50 = 7 nM), a cleaner off-target in vitro safety profile, lower human ether a-go-go-related gene channel activity, and higher oral bioavailability in mice (% FPO = 27) compared to AMD11070 and TIQ15.
Coronaviruses (CoVs) traffic frequently between species resulting in novel disease outbreaks, most recently exemplified by the newly emerged SARS-CoV-2, the causative agent of COVID-19. Here, we show that the ribonucleoside analog beta-D-N-4-hydroxycytidine (NHC; EIDD-1931) has broad-spectrum antiviral activity against SARS-CoV-2, MERS-CoV, SARS-CoV, and related zoonotic group 2b or 2c bat-CoVs, as well as increased potency against a CoV bearing resistance mutations to the nucleoside analog inhibitor remdesivir. In mice infected with SARS-CoV or MERS-CoV, both prophylactic and therapeutic administration of EIDD-2801, an orally bioavailable NHC prodrug (beta-D-N-4-hydroxycytidine-5'-isopropyl ester), improved pulmonary function and reduced virus titer and body weight loss. Decreased MERS-CoV yields in vitro and in vivo were associated with increased transition mutation frequency in viral, but not host cell RNA, supporting a mechanism of lethal mutagenesis in CoV. The potency of NHC/EIDD-2801 against multiple CoVs and oral bioavailability highlights its potential utility as an effective antiviral against SARS-CoV-2 and other future zoonotic CoVs.
Coronaviruses (CoVs) traffic frequently between species resulting in novel disease outbreaks, most recently exemplified by the newly emerged SARS-CoV-2. Herein, we show that the ribonucleoside analog β-D-N 4 -hydroxycytidine (NHC, EIDD-1931) has broad spectrum antiviral activity against SARS-CoV 2, MERS-CoV, SARS-CoV, and related zoonotic group 2b or 2c Bat-CoVs, as well as increased potency against a coronavirus bearing resistance mutations to another nucleoside analog inhibitor. In mice infected with SARS-CoV or MERS-CoV, both prophylactic and therapeutic administration of EIDD-2801, an orally bioavailable NHC-prodrug (b-D-N 4 -hydroxycytidine-5’-isopropyl ester), improved pulmonary function, and reduced virus titer and body weight loss. Decreased MERS-CoV yields in vitro and in vivo were associated with increased transition mutation frequency in viral but not host cell RNA, supporting a mechanism of lethal mutagenesis. The potency of NHC/EIDD-2801 against multiple coronaviruses, its therapeutic efficacy, and oral bioavailability in vivo , all highlight its potential utility as an effective antiviral against SARS-CoV-2 and other future zoonotic coronaviruses.
The emergence of coronaviruses (CoVs) into human populations from animal reservoirs has demonstrated their epidemic capability, pandemic potential, and ability to cause severe disease. However, no antivirals have been approved to treat these infections. Here, we demonstrate the potent antiviral activity of a broad-spectrum ribonucleoside analogue, β-d-N4-hydroxycytidine (NHC), against two divergent CoVs. Viral proofreading activity does not markedly impact sensitivity to NHC inhibition, suggesting a novel interaction between a nucleoside analogue inhibitor and the CoV replicase. Further, passage in the presence of NHC generates only low-level resistance, likely due to the accumulation of multiple potentially deleterious transition mutations. Together, these data support a mutagenic mechanism of inhibition by NHC and further support the development of NHC for treatment of CoV infections. ABSTRACT Coronaviruses (CoVs) have emerged from animal reservoirs to cause severe and lethal disease in humans, but there are currently no FDA-approved antivirals to treat the infections. One class of antiviral compounds, nucleoside analogues, mimics naturally occurring nucleosides to inhibit viral replication. While these compounds have been successful therapeutics for several viral infections, mutagenic nucleoside analogues, such as ribavirin and 5-fluorouracil, have been ineffective at inhibiting CoVs. This has been attributed to the proofreading activity of the viral 3′-5′ exoribonuclease (ExoN). β-d-N4-Hydroxycytidine (NHC) (EIDD-1931; Emory Institute for Drug Development) has recently been reported to inhibit multiple viruses. Here, we demonstrate that NHC inhibits both murine hepatitis virus (MHV) (50% effective concentration [EC50] = 0.17 μM) and Middle East respiratory syndrome CoV (MERS-CoV) (EC50 = 0.56 μM) with minimal cytotoxicity. NHC inhibited MHV lacking ExoN proofreading activity similarly to wild-type (WT) MHV, suggesting an ability to evade or overcome ExoN activity. NHC inhibited MHV only when added early during infection, decreased viral specific infectivity, and increased the number and proportion of G:A and C:U transition mutations present after a single infection. Low-level NHC resistance was difficult to achieve and was associated with multiple transition mutations across the genome in both MHV and MERS-CoV. These results point to a virus-mutagenic mechanism of NHC inhibition in CoVs and indicate a high genetic barrier to NHC resistance. Together, the data support further development of NHC for treatment of CoVs and suggest a novel mechanism of NHC interaction with the CoV replication complex that may shed light on critical aspects of replication. IMPORTANCE The emergence of coronaviruses (CoVs) into human populations from animal reservoirs has demonstrated their epidemic capability, pandemic potential, and ability to cause severe disease. However, no antivirals have been approved to treat these infections. Here, we demonstrate the potent antiviral activity of a broad-spectrum ribonucleoside analogue, β-d-N4-hydroxycytidine (NHC), against two divergent CoVs. Viral proofreading activity does not markedly impact sensitivity to NHC inhibition, suggesting a novel interaction between a nucleoside analogue inhibitor and the CoV replicase. Further, passage in the presence of NHC generates only low-level resistance, likely due to the accumulation of multiple potentially deleterious transition mutations. Together, these data support a mutagenic mechanism of inhibition by NHC and further support the development of NHC for treatment of CoV infections.
The orally bioavailable 1-deoxy-sphingosine analog, Enigmol, has demonstrated anticancer activity in numerous in vivo settings. However, as no Enigmol analog with enhanced potency in vitro has been identified, a new strategy to improve efficacy in vivo by increasing tumor uptake was adopted. Herein, synthesis and biological evaluation of two novel fluorinated Enigmol analogs, CF3-Enigmol and CF2-Enigmol, are reported. Each analog was equipotent to Enigmol in vitro, but achieved higher plasma and tissue levels than Enigmol in vivo. Although plasma and tissue exposures were anticipated to trend with fluorine content, CF2-Enigmol absorbed into tissue at strikingly higher concentrations than CF3-Enigmol. Using mouse xenograft models of prostate cancer, we also show that CF3-Enigmol underperformed Enigmol-mediated inhibition of tumor growth and elicited systemic toxicity. By contrast, CF2-Enigmol was not systemically toxic and demonstrated significantly enhanced antitumor activity as compared to Enigmol.
AbstractTwelve ketones such as (I) are converted into the enolates by reaction with LDA (II).
ChemInformVolume 19, Issue 31 Preparative Organic Chemistry ChemInform Abstract: Trajectories of Proton-Transfer Reactions. Experimental Determination of the Magnitude of Primary Deuterium Isotope Effects for Proton Transfers Occurring at Acute Angles. D. LIOTTA, D. LIOTTA Dep. Chem., Emory Univ., Atlanta, GA 30322, USASearch for more papers by this authorM. SAINDANE, M. SAINDANE Dep. Chem., Emory Univ., Atlanta, GA 30322, USASearch for more papers by this authorL. WAYKOLE, L. WAYKOLE Dep. Chem., Emory Univ., Atlanta, GA 30322, USASearch for more papers by this authorJ. STEPHENS, J. STEPHENS Dep. Chem., Emory Univ., Atlanta, GA 30322, USASearch for more papers by this authorJ. GROSSMAN, J. GROSSMAN Dep. Chem., Emory Univ., Atlanta, GA 30322, USASearch for more papers by this author D. LIOTTA, D. LIOTTA Dep. Chem., Emory Univ., Atlanta, GA 30322, USASearch for more papers by this authorM. SAINDANE, M. SAINDANE Dep. Chem., Emory Univ., Atlanta, GA 30322, USASearch for more papers by this authorL. WAYKOLE, L. WAYKOLE Dep. Chem., Emory Univ., Atlanta, GA 30322, USASearch for more papers by this authorJ. STEPHENS, J. STEPHENS Dep. Chem., Emory Univ., Atlanta, GA 30322, USASearch for more papers by this authorJ. GROSSMAN, J. GROSSMAN Dep. Chem., Emory Univ., Atlanta, GA 30322, USASearch for more papers by this author First published: August 2, 1988 https://doi.org/10.1002/chin.198831101Read the full textAboutPDF ToolsRequest permissionExport citationAdd to favoritesTrack citation ShareShare Give accessShare full text accessShare full-text accessPlease review our Terms and Conditions of Use and check box below to share full-text version of article.I have read and accept the Wiley Online Library Terms and Conditions of UseShareable LinkUse the link below to share a full-text version of this article with your friends and colleagues. Learn more.Copy URL Share a linkShare onFacebookTwitterLinked InRedditWechat No abstract is available for this article. Volume19, Issue31August 2, 1988 RelatedInformation
AbstractThe α‐alkyl‐α‐phenylselenenyl cycloalkanones (I) undergo sodium hydride induced rearrangement, forming the αα'‐substituted ketones (II).
AbstractAdditionsreaktionen von Organo‐Lithiumverbindungcn (II) an die Endione (I) bzw. (V) werden untersucht.
Chemischer InformationsdienstVolume 17, Issue 9 Reviews ChemInform Abstract: Synthetic Applications of 2-Phenylselenenylenones. Part 3. An Overview D. LIOTTA, D. LIOTTASearch for more papers by this authorM. SAINDANE, M. SAINDANESearch for more papers by this authorC. BARNUM, C. BARNUMSearch for more papers by this authorG. ZIMA, G. ZIMASearch for more papers by this author D. LIOTTA, D. LIOTTASearch for more papers by this authorM. SAINDANE, M. SAINDANESearch for more papers by this authorC. BARNUM, C. BARNUMSearch for more papers by this authorG. ZIMA, G. ZIMASearch for more papers by this author First published: March 4, 1986 https://doi.org/10.1002/chin.198609358Read the full textAboutPDF ToolsRequest permissionExport citationAdd to favoritesTrack citation ShareShare Give accessShare full text accessShare full-text accessPlease review our Terms and Conditions of Use and check box below to share full-text version of article.I have read and accept the Wiley Online Library Terms and Conditions of UseShareable LinkUse the link below to share a full-text version of this article with your friends and colleagues. Learn more.Copy URL Share a linkShare onFacebookTwitterLinked InRedditWechat No abstract is available for this article. Volume17, Issue9March 4, 1986 RelatedInformation
1,3-rearrangements of phenylselenenylketones which lack steric bulk at the α-carbon can be conveniently achieved by taking advantage of the greater reactivity of sodium enolates relative to their lithium counterparts.
ADVERTISEMENT RETURN TO ISSUEPREVArticleNEXTNew organoselenium methodologyDennis LiottaCite this: Acc. Chem. Res. 1984, 17, 1, 28–34Publication Date (Print):January 1, 1984Publication History Published online1 May 2002Published inissue 1 January 1984https://pubs.acs.org/doi/10.1021/ar00097a005https://doi.org/10.1021/ar00097a005research-articleACS PublicationsRequest reuse permissionsArticle Views677Altmetric-Citations161LEARN ABOUT THESE METRICSArticle Views are the COUNTER-compliant sum of full text article downloads since November 2008 (both PDF and HTML) across all institutions and individuals. These metrics are regularly updated to reflect usage leading up to the last few days.Citations are the number of other articles citing this article, calculated by Crossref and updated daily. Find more information about Crossref citation counts.The Altmetric Attention Score is a quantitative measure of the attention that a research article has received online. Clicking on the donut icon will load a page at altmetric.com with additional details about the score and the social media presence for the given article. Find more information on the Altmetric Attention Score and how the score is calculated. Share Add toView InAdd Full Text with ReferenceAdd Description ExportRISCitationCitation and abstractCitation and referencesMore Options Share onFacebookTwitterWechatLinked InRedditEmail Other access optionsGet e-Alertsclose Get e-Alerts
Substituted δ2-butenolides may be prepared from furan equivalents by regiospecific metallation, sulfenylation and/or silylation, removal of the sulfur group and peracid oxidation.
Phenole (I) werden durch Chromsäure nach einem verbesserten, in größeren Mengen möglichen Verfahren zu den Chinonen (II) oxidiert.