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result(s) for
"Ribavirin - analogs "
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The Ambiguous Base-Pairing and High Substrate Efficiency of T-705 (Favipiravir) Ribofuranosyl 5′-Triphosphate towards Influenza A Virus Polymerase
by
Deval, Jerome
,
Smith, Lucas K.
,
Rajwanshi, Vivek K.
in
Adenosine
,
Adenosine triphosphate
,
Amides - metabolism
2013
T-705 (Favipiravir) is a broad-spectrum antiviral molecule currently in late stage clinical development for the treatment of influenza virus infection. Although it is believed that T-705 potency is mediated by its ribofuranosyl triphosphate (T-705 RTP) metabolite that could be mutagenic, the exact molecular interaction with the polymerase of influenza A virus (IAVpol) has not been elucidated. Here, we developed a biochemical assay to measure the kinetics of nucleotide incorporation by IAVpol in the elongation mode. In this assay, T-705 RTP was recognized by IAVpol as an efficient substrate for incorporation to the RNA both as a guanosine and an adenosine analog. Compared to natural GTP and ATP, the discrimination of T-705 RTP was about 19- and 30-fold, respectively. Although the single incorporation of the ribonucleotide monophosphate form of T-705 did not efficiently block RNA synthesis, two consecutive incorporation events prevented further primer extension. In comparison, 3'-deoxy GTP caused immediate chain termination but was incorporated less efficiently by the enzyme, with a discrimination of 4,900-fold relative to natural GTP. Collectively, these results provide the first detailed biochemical characterization to evaluate the substrate efficiency and the inhibition potency of nucleotide analogs against influenza virus polymerase. The combination of ambiguous base-pairing with low discrimination of T-705 RTP provides a mechanistic basis for the in vitro mutagenic effect of T-705 towards influenza virus.
Journal Article
Taribavirin and 5-Fluorouracil-Loaded Pegylated-Lipid Nanoparticle Synthesis, p38 Docking, and Antiproliferative Effects on MCF-7 Breast Cancer
by
Abd-Rabou, Ahmed A
,
Mousa, Shaker A
,
Bharali, Dhruba J
in
5-Fluorouracil
,
Antiviral drugs
,
Blood levels
2018
PurposeBreast cancer is the second most common cause of mortality in women in the United States. Targeted delivery of antitumor breast cancer drugs as a drug-delivery strategy may allow direct delivery into the tumor. Currently, chemotherapy is one of the principle strategies for cancer treatment, but it can have toxic side effects. Nanotechnology attempts to resolve these challenges by loading drugs in nanoparticles, such as solid lipid nanoparticles (SLN). In response to the breast cancer drug 5-fluorouracil (5-FU), p38MAPK signaling has been investigated since the 1990s. Ribavirin, a nucleotide derivative, inhibits p38MAPK in infected hepatocytes. A ribavirin prodrug, taribavirin (TBV), was recently synthesized to concentrate in the liver and have minimal concentration in red blood cells.MethodsIn this study, TBV and 5-FU-pegylated SLNs were prepared and characterized. The in vitro cytotoxicity was evaluated against MCF-7 breast cancer cells. Using molecular docking experiments, 5-FU and TBV were docked on p38MAPK protein.ResultsThe TBV nanoformulation had the highest cytotoxic effects, achieving IC50 = 0.690 μM after 24 h, compared with free TBV, which also achieved a good cytotoxic effect (IC50 = 0.756 μM). However, there was a detectable cytotoxic effect and an undetectable IC50 of 5-FU nanoparticles and free 5-FU on MCF-7 cells.ConclusionsThe effect of TBV nanoparticles on MCF-7 cells may be due to its inhibitory effect against p38MAPK protein, where it fits inside the active pocket site of the p38 protein molecular surface, with a minimum binding affinity of −5.5 kcal/mol (rmsd of 1.07), and it formed strong hydrogen bonds with amino acids ASP’168, ILE’166, HIS’148, and ILE’147. Further studies are warranted to investigate the mechanistic details of the proposed approach.
Journal Article
Viramidine-Loaded Galactosylated Nanoparticles Induce Hepatic Cancer Cell Apoptosis and Inhibit Angiogenesis
by
Abd-Rabou, Ahmed A
,
Mousa, Shaker A
,
Bharali, Dhruba J
in
5-Fluorouracil
,
Anemia
,
Angiogenesis
2020
Current estimates indicate that hepatocarcinoma is the leading cause of death globally. There is interest in utilizing nanomedicine for cancer therapy to overcome side effects of chemo-interventions. Ribavirin, an antiviral nucleoside inhibitor, accumulates inside red blood cells, causing anemia. Its analog, viramidine, can concentrate within hepatocytes and spare red blood cells, thus limiting anemia. Hepatocarcinoma cells have a large number of asialoglycoprotein receptors on their membranes that can bind galactosyl-terminating solid lipid nanoparticles (Gal-SLN) and internalize them. Here, viramidine, 5-fluorouracil, and paclitaxel-loaded Gal-SLN were characterized inside cells. Cytotoxicities of free-drug, nano-void, and drug-loaded Gal-SLN were evaluated using HepG2 cells; over 3 days, cell viability was measured. To test the mechanistic pathway, we investigated in vitro apoptosis using flow cytometry and in ovo angiogenesis using the CAM assay. Results showed that 1 and 2 μM of the viramidine-encapsulated Gal-SLN had the highest cytotoxic effect, achieving 80% cell death with a steady increase over 3 days, with induction of apoptosis and reduction of necrosis and angiogenesis, compared to free-drugs. Gal-SLN application on breast cancer MCF-7 cells confirmed its specificity against liver cancer HepG2 cells. We conclude that viramidine-encapsulated Gal-SLN has anticancer and anti-angiogenic activities against hepatocarcinoma.
Journal Article
The broad-spectrum antiviral ribonucleoside ribavirin is an RNA virus mutagen
by
Crotty, Shane
,
Cameron, Craig E.
,
Zhong, Weidong
in
Antiviral Agents - pharmacology
,
Biomedical and Life Sciences
,
Biomedicine
2000
The ribonucleoside analog ribavirin (1-β-D-ribofuranosyl-1,2,4-triazole-3-carboxamide) shows antiviral activity against a variety of RNA viruses and is used in combination with interferon-α to treat hepatitis C virus infection. Here we show
in vitro
use of ribavirin triphosphate by a model viral RNA polymerase, poliovirus 3D
pol
. Ribavirin incorporation is mutagenic, as it templates incorporation of cytidine and uridine with equal efficiency. Ribavirin reduces infectious poliovirus production to as little as 0.00001% in cell culture. The antiviral activity of ribavirin correlates directly with its mutagenic activity. These data indicate that ribavirin forces the virus into `error catastrophe'. Thus, mutagenic ribonucleosides may represent an important class of anti-RNA virus agents.
Journal Article
Antivirally Active Ribavirin Analogues – 4,5-disubstituted 1,2,3-triazole Nucleosides: Biological Evaluation against Certain Respiratory Viruses and Computational Modelling
by
Kulinski, Tadeusz
,
Hurst, Brett L
,
Januszczyk, Piotr
in
Adenosine triphosphate
,
Animals
,
Anion exchange
2014
Background:
Ribavirin is a broad-spectrum antiviral agent that derives some of its activity from inhibition of cellular inosine monophosphate dehydrogenase (IMPDH), resulting in lower guanosine triphosphate (GTP) levels. Here we report the biological activities of three ribavirin analogues.
Methods:
Antiviral activities of test compounds were performed by in vitro cytopathic effect inhibition assays against influenza A (H1N1, H3N2 and H5N1), influenza B, measles, parainfluenza type 3 (PIV-3) and respiratory syncytial viruses. Compounds were modelled into the ribavirin 5‘-monophosphate binding site of the crystallographic structure of the human type II IMPDH (hIMPDH2) ternary complex. Effects of compounds on intracellular GTP levels were performed by strong anion exchange HPLC analysis.
Results:
Of the three compounds evaluated, the 5-ethynyl nucleoside (ETCAR) exhibited virus-inhibitory activities (at 1.2–20 μM, depending upon the virus) against most of the viruses, except for weak activity against PIV-3 (62 μM). Antiviral activity of ETCAR was similar to ribavirin; however, cytotoxicity of ETCAR was greater than ribavirin. Replacing the 5-ethynyl group with a 5-propynyl or bromo substituent (BrCAR) considerably reduced antiviral activity. Computational studies of ternary complexes of hIMPDH2 enzyme with 5‘-monophosphates of the compounds helped rationalize the observed differences in biological activity. All compounds suppressed GTP levels in cells; additionally, BrCAR suppressed adenosine triphosphate and elevated uridine triphosphate levels.
Conclusions:
Three compounds related to ribavirin inhibited IMPDH and had weak to moderate antiviral activity. Cytotoxicity adversely affected the antiviral selectivity of ETCAR. As with ribavirin, reduction in intracellular GTP may play a role in virus inhibition.
Journal Article
Strategies for Managing Anemia in Hepatitis C Patients Undergoing Antiviral Therapy
by
Shiffman, Mitchell L.
,
Brown, Robert S.
,
Manns, Michael P.
in
Anemia - chemically induced
,
Anemia - drug therapy
,
Anemias. Hemoglobinopathies
2007
Anemia is a common side effect that begins soon after the initiation of peginterferon/ribavirin in the treatment of hepatitis C virus (HCV) infection. It can cause symptoms that negatively impact quality of life (QOL) and is the most common reason for reducing the dose and temporarily or permanently discontinuing ribavirin. Such dose modifications have been shown to reduce the efficacy of treatment. Administering erythropoietin can improve anemia caused by peginterferon and ribavirin therapy and is more effective than dose reduction at improving QOL during treatment. However, erythropoietin, which is not approved by the U.S. Food and Drug Administration (FDA) for use in patients with HCV infection, adds another parenteral drug to the patient's treatment regimen, and is associated with additional costs, inconvenience, and potential side effects. A new ribavirin analog, viramidine, is expected to be associated with a lower incidence of anemia and, if proven effective, may eventually be substituted for ribavirin in combination with peginterferon to treat chronic hepatitis C. In the meantime, physicians must make the best possible use of the available options for managing anemia, especially in select patient groups who are most at risk for anemia and its complications.
Journal Article
Counteracting Quasispecies Adaptability: Extinction of a Ribavirin-Resistant Virus Mutant by an Alternative Mutagenic Treatment
by
Domingo, Esteban
,
Agudo, Rubén
,
Perales, Celia
in
5-Fluorouracil
,
Adaptability
,
Amino Acid Substitution
2009
Lethal mutagenesis, or virus extinction promoted by mutagen-induced elevation of mutation rates of viruses, may meet with the problem of selection of mutagen-resistant variants, as extensively documented for standard, non-mutagenic antiviral inhibitors. Previously, we characterized a mutant of foot-and-mouth disease virus that included in its RNA-dependent RNA polymerase replacement M296I that decreased the sensitivity of the virus to the mutagenic nucleoside analogue ribavirin.
Replacement M296I in the viral polymerase impedes the extinction of the mutant foot-and-mouth disease virus by elevated concentrations of ribavirin. In contrast, wild type virus was extinguished by the same ribavirin treatment and, interestingly, no mutants resistant to ribavirin were selected from the wild type populations. Decreases of infectivity and viral load of the ribavirin-resistant M296I mutant were attained with a combination of the mutagen 5-fluorouracil and the non-mutagenic inhibitor guanidine hydrocloride. However, extinction was achieved with a sequential treatment, first with ribavirin, and then with a minimal dose of 5-fluorouracil in combination with guanidine hydrochloride. Both, wild type and ribavirin-resistant mutant M296I exhibited equal sensitivity to this combination, indicating that replacement M296I in the polymerase did not confer a significant cross-resistance to 5-fluorouracil. We discuss these results in relation to antiviral designs based on lethal mutagenesis.
(i) When dominant in the population, a mutation that confers partial resistance to a mutagenic agent can jeopardize virus extinction by elevated doses of the same mutagen. (ii) A wild type virus, subjected to identical high mutagenic treatment, need not select a mutagen-resistant variant, and the population can be extinguished. (iii) Extinction of the mutagen-resistant variant can be achieved by a sequential treatment of a high dose of the same mutagen, followed by a combination of another mutagen with an antiviral inhibitor.
Journal Article
In Vivo Inhibition of Trans-Plasma Membrane Electron Transport by Antiviral Drugs in Grapevine
by
Rinaldelli, E.
,
Triolo, E.
,
Luvisi, A.
in
Antiviral Agents - pharmacology
,
Biochemistry
,
Biomedical and Life Sciences
2013
Electrophysiological techniques were applied to investigate the action of antiviral drugs during trans-plasma events in in vivo grapevine cells infected by GLRaV-1 and GLRaV-3. Carbon fiber microelectrodes and redox-sensitive dyes were used to measure trans-plasma membrane electron transport (t-PMET) activity in healthy and infected samples treated with ribavirin, tiazofurin and oseltamivir. Each drug caused a reduction in oxidation current (expressed as Δ[Fe
2+
]) in healthy samples, indicating t-PMET inhibition. In almost all infected samples, the effect of drugs on t-PMET activity was significantly lower, suggesting that higher content of NADH in infected plants can interfere with t-PMET inhibition caused by drugs. Moreover, virus-infected samples exhibited elevated t-PMET activity compared to healthy samples. Analogous effects were observed by dye tests. Considering the effects of drugs on trans-plasma membrane potential, tests showed the activity of a proton pump during drug treatments with no significant difference with regard to health status.
Journal Article
Nicotinamide mononucleotide adenylyltransferase2 overexpression enhances colorectal cancer cell-kill by Tiazofurin
2013
Colorectal cancer cells exhibit limited cytotoxicity towards Tiazofurin, a pro-drug metabolized by cytosolic nicotinamide mononucleotide adenylyltransferase2 (NMNAT2) to thiazole-4-carboxamide adenine dinucleotide, a potent inhibitor of inosine 5′-monophosphate dehydrogenase required for cellular guanylate synthesis. We tested the hypothesis that colorectal cancer cells that exhibit low levels of NMNAT2 and are refractory to Tiazofurin can be rendered sensitive to Tiazofurin by overexpressing NMNAT2. Transfection of hNMNAT2 resulted in a six- and threefold cytoplasmic overexpression in Caco2 and HT29 cell lines correlating with Tiazofurin-induced enhanced cell-kill. Folate receptors expressed on the cell surface of 30–50% colorectal carcinomas were exploited for cellular targeting with Tiazofurin encapsulated in folate-tethered nanoparticles. Our results indicated that in wild-type colorectal cancer cells, free Tiazofurin-induced EC
50
cell-kill was 1500–2000 μ
M,
which was reduced to 66–156 μ
M
in hNMNAT2-overexpressed cells treated with Tiazofurin encapsulated in non-targeted nanoparticles. This efficacy was improved threefold by encapsulating Tiazofurin in folate-tethered nanoparticles to obtain an EC
50
cell-kill of 22–59 μ
M
, an equivalent of 100–300 mg m
−2
(one-tenth of the approved dose of Tiazofurin in humans), which will result in minimal toxicity leading to cancer cell-kill. This proof-of-principle study suggests that resistance of colorectal cancer cell-kill to Tiazofurin can be overcome by sequentially overexpressing hNMNAT2 and then facilitating the uptake of Tiazofurin by folate-tethered nanoparticles, which enter cells via folate receptors.
Journal Article
Viramidine, a Prodrug of Ribavirin, Shows Better Liver-Targeting Properties and Safety Profiles Than Ribavirin in Animals
2003
Ribavirin, part of the current first line combination therapy for the treatment of chronic hepatitis C, may cause haemolytic anaemia and poses a significant challenge to the clinical management of the disease. Viramidine, a prodrug of ribavirin, is currently under development. In-vitro partition demonstrated that viramidine had less association with RBCs than ribavirin in rat, monkey and man, and thus has less liability for haemolytic anaemia than ribavirin. In a whole body autoradiography study in rats following oral dosing (30 mg/kg) of [14C]ribavirin or [14C]viramidine to monkeys, viramidine produced 32% higher radioactivity in the liver than ribavirin, indicating a better liver-targeting properties. In portal vein-cannulat-ed cynomolgus monkeys following single oral dosing (30 mg/kg) of [3H]viramidine or [3H]rib-avirin, viramidine retained 3X higher radioactivity in the liver than ribavirin. Viramidine dosing also produced a higher viramidine to ribavirin ratio in portal plasma than in systemic plasma, indicating that the liver was the main site for the viramidine conversion to ribavirin and subsequent trapping of the drug. After multiple oral dosing (10 mg/kg) of [14C]ribavirin or [14C]viramidine to monkey, viramidine yielded three times the drug level in the liver but only half in RBCs compared to rib-avirin. Viramidine and ribavirin had comparable toxicity profiles in a 28-day toxicity study in rats. In contrast, viramidine had much better safety profiles than ribavirin in a 28-day toxicity study in monkeys. In conclusion, viramidine has better liver-targeting properties and safety profiles than ribavirin in animals.
Journal Article