Compounds for use in the treatment and prevention of COVID-19
Phenolic and flavonoid compounds, especially stilbene derivatives, effectively inhibit SARS-CoV-2 replication and entry into human cells, providing a safe and accessible treatment for COVID-19.
Patent Information
- Application Number
- JP2023558719
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-03-25
- Filing Date
- 2022-03-14
- Publication Date
- 2025-12-19
- Estimated Expiration
- 2042-03-14
AI Technical Summary
There is a lack of effective and safe treatments for COVID-19, with existing antiviral compounds showing inadequate activity against SARS-CoV-2, necessitating the development of readily available and well-tolerated alternatives that can inhibit the virus from entering human cells.
The use of phenolic and flavonoid compounds, particularly stilbene derivatives with multiple hydroxyl groups, to inhibit SARS-CoV-2 replication and prevent viral entry into human cells, administered through inhalable or aerosol formulations.
These compounds exhibit significant inhibitory activity against SARS-CoV-2, reducing the risk of severe illness from COVID-19 and are readily available without invasive procedures, being generally recognized as safe for human use.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to the treatment and prevention of COVID-19. [Background technology]
[0002] A novel coronavirus (SARS-CoV-2) has been causing a pandemic since early December 2019 in Wuhan, China, that will continue until an effective and safe vaccine is available or causal drug treatment of the disease can help to avoid severe and fatal cases of the disease. To date, a growing number of millions of infected people around the world are waiting for an effective treatment for the disease.
[0003] To date, no specific drugs have been identified to control this disease. The development of new treatments usually takes time, and therefore repurposing broad-spectrum antivirals has generally been regarded as an effective strategy for immediate response. Therefore, the effects of known antiviral compounds have been extensively explored.
[0004] In particular, "repurposing" naturally occurring or previously developed synthetic antiviral compounds with extensive biochemical mechanisms for COVID-19 was considered a promising strategy to combat this pandemic.
[0005] Substances such as Griffithsin, nafamostat (targeting cell entry), disulfiram, lopinavir / ritonavir, danoprevir, nelfinavir (targeting SARS-CoV-2 protease), favipiravir, ribavirin, penciclovir, remdesivir, and galidesivir (targeting RNA-dependent RNA polymerase (RdRp)) have been discussed as promising candidates, but no specific cure for SARS-CoV-2 has been provided in patients with COVID-19 infection (Ghanbari et al., Fut. Microbiol. 15 (2020), 1747-1758; Harrison, Nat. Biotechnol. 38 (2020), 379-381).
[0006] Phenolic compounds are phytochemicals found in abundance and uniformly distributed throughout the tissues of most plant families worldwide, particularly in fruits and vegetables. Based on their chemical structure, phenolic compounds are classified into phenolic acids, flavonoids, tannins, coumarins, lignans, quinones, stilbenes, and curcuminoids. Phenolic compounds are synthesized through the shikimate pathway in plants, as secondary metabolites are commonly involved in plant adaptation to environmental stress conditions. Phenolic and flavonoid compounds are plant secondary metabolites that contain an aromatic ring with at least one hydroxyl group. Among chemically diverse natural therapeutic agents, phenolic and flavonoid compounds were predicted to be the most promising active compounds against SARS-CoV-2 due to their excellent pharmacokinetic properties.
[0007] Phenolic compounds have been reported to possess numerous biological activities, including antioxidant, anticancer, anti-inflammatory, antibacterial, cardioprotective, and immune system-stimulating activities. Several studies have shown that phenolic and flavonoid compounds from medicinal plants promote human health and enhance human immunity. Natural polyphenolic compounds are primarily derived from plant sources. These phenolic and flavonoid compounds have antiviral activity against many viruses, including rhinovirus, hepatitis C virus, HIV, yellow fever, herpes simplex virus, and influenza virus. Today, pharmaceutical companies are rapidly developing potential drug molecules with the aid of bioinformatics tools and applications.
[0008] Using such in silico predictions and biochemical in vitro binding assays against SARS-CoV-2 components, it has been suggested that many natural compounds, such as polyphenols, that have previously shown inhibitory effects against other pathogens could be used to treat COVID-19 patients, also based on in silico screening (Rathinavel et al., Bioint. Res. Appl. Chem. 11 (2021), 10161-10173; Mhatre et al., Phytomed. (2020), 153286; Chojnacka et al., J. Funct. Food 73 (2020), 104146; Ghosh et al., J. Biom. St. Dyn. (2020), 1-13-doi.org-10.1080-07391102.2020; Islam et al., Phytother. Res. 3 (2020), 2471-2492; WO 2020 / 037095 A1). The advantage of such compounds is that they are "generally regarded as safe" ("GRAS," e.g., under sections 201(s) and 409 of the U.S. Federal Food, Drug, and Cosmetic Act) and therefore can be administered without preclinical testing (e.g., even as a dietary supplement) and used immediately to treat COVID-19 patients and prevent severe disease.
[0009] Wahedi et al. (J. Biomol. Struct. Dyn. 39 (2021): 3225-3234) also suggested resveratrol and 3',4',2,4-tetrahydroxy(-trans-)stilbene as potential drug candidates for COVID-19. Zhang et al. (Cell Discovery 6 (2020), 80) reported that heparan sulfate assists SARS-CoV-2 cell entry and can be targeted by approved drugs in vitro, using mitoxantrone (a potent heparan sulfate inhibitor) and sunitinib and BNTX as possible candidates for such an approach. It has also been reported that piceatannol binds to heparin. Chinese Patent Application Publication No. 111228343 appears to disclose that extracts containing piceatannol can be used to combat infection with "2019-nCoV." Han et al. (J. Med. Virol. 87(2015): 2054-2060) reported the HIV inhibitory activity of 3,3',4,4',5,5'-hexahydroxy-trans-stilbene.
[0010] However, none of these substances have yet been shown to have adequate antiviral activity against SARS-CoV-2 to provide an efficient treatment or prophylactic option for patients infected with SARS-CoV-2.
[0011] Therefore, an object of the present invention is to provide practical and effective repurposed alternatives for the prevention or treatment of COVID-19. These alternatives can effectively prevent or impede SARS-CoV-2 from becoming pathogenic to human patients. Thus, the substances can inhibit SARS-CoV-2 and / or at least partially prevent or impede SARS-CoV-2 from entering human cells, providing patients with a significant benefit of reducing their risk of developing or becoming severely ill from COVID-19. Another object is that these substances be readily available, well tolerated, and capable of being successfully applied to humans without the need for invasive procedures, preferably by inhalation, aerosol delivery, etc.
[0012] Thus, the present invention provides compounds of general formula I for use in the treatment and prevention of COVID-19 in human subjects, in particular in the inhibition of SARS-CoV-2.
[0013] [ka]
[0014] (In the formula, R1 to R6 may be the same or different and are H, OH-, or OR7, and R7 is a C1 to C3 alkyl group or a C1 to C4 acyl group, provided that at least four, preferably at least five, and particularly at least six of R1 to R6 are other than H.)
[0015] During the course of this invention, it was confirmed that the compounds of the present invention exhibit practical and effective inhibitory activity against SARS-CoV-2. Therefore, the compounds of the present invention can effectively prevent or impede SARS-CoV-2 from becoming pathogenic in human patients. Therefore, the compounds of the present invention can inhibit SARS-CoV-2 and / or at least partially prevent or impede SARS-CoV-2 from entering human cells, providing patients with a significant benefit of reducing their risk of developing COVID-19 or becoming severely ill from COVID-19. The compounds of the present invention are readily available, well tolerated, and can be successfully administered to humans without the need for invasive procedures. Furthermore, the compounds of the present invention are considered "GRAS," i.e., "generally recognized as safe (under Sections 201(s) and 409 of the U.S. Federal Food, Drug, and Cosmetic Act)."
[0016] Preferably, the compound for use according to the invention is 3,3',5,5'-tetramethoxystilbene, 3,4,4',5-tetramethoxystilbene, 3,3',4,5'-tetramethoxystilbene, 3,3',4,5,5'-pentamethoxystilbene, 3,3',5,5'-tetrahydroxystilbene, 3,4,4',5-tetrahydroxystilbene, 3,3',4,5'-tetrahydroxystilbene, 3,3',4,4',5-pentahydroxystilbene, 3,3',4,5,5'-pentahydroxystilbene, 3,3',4,5,5'-pentahydroxystilbene, 3,3',4 and 3,3',4,4',5,5'-pentahydroxystilbene, and 3,3',4,4',5,5'-hexahydroxystilbene, preferably 3,3',4,5,5'-pentamethoxystilbene, 3,3',4,4',5-pentahydroxystilbene, 3,3',4,5,5'-pentahydroxystilbene, 3,4,4',5,5'-pentahydroxystilbene, 3,3',4',5,5'-pentahydroxystilbene, and 3,3',4,4',5,5'-hexahydroxystilbene, with 3,3',4,4',5,5'-hexahydroxystilbene being particularly preferred.
[0017] The compounds according to the present invention were surprisingly found to be significantly more active in inhibiting SARS-CoV-2 than comparable polyphenolic substances that have been shown to be virus-inhibitory. Although (-)-epigallocatechin gallate or (-)-gallocatechin gallate also exhibit significant inhibitory effects on SARS-CoV-2 compared to other polyphenols, particularly other compounds derived from green tea and black tea, the compounds according to the present invention have significantly enhanced inhibitory effects compared to these substances.
[0018] The compounds according to the invention preferably inhibit the replication of SARS-CoV-2 and / or prevent the cytopathic effects of active viral replication of SARS-CoV-2 and / or prevent viral infection by SARS-CoV-2 via the airborne route of transmission.
[0019] In the course of this invention, we tested the in vitro antiviral effects of nine polyphenolic plant compounds and a synthetic polyphenolic compound, 3,3',4,4',5,5'-hexahydroxy-trans-stilbene, synthesized as an analog of the wine component resveratrol. Nine naturally occurring compounds suggested in the prior art as potential antiviral compounds—gallic acid, (-)-catechin, (-)-catechin gallate, (-)-epigallocatechin gallate, (-)-epicatechin, (-)-epicatechin gallate, (-)-epigallocatechin, (-)-gallocatechin gallate, and ellagic acid—as well as hexahydroxy-trans-stilbene (a representative example of a synthetic resveratrol (trans-3,5,4'-trihydroxystilbene) analog)—were investigated for their ability to inhibit viral replication in vitro.
[0020] Stilbene derivatives according to the invention have been previously disclosed, for example, in WO 02 / 50007 A2, WO 02 / 057219 A1, WO 2005 / 016860 A1 and WO 2007 / 002973 A2.
[0021] These (poly)hydroxylated phenols have been described to have increased anti-cancer and anti-inflammatory effects compared to resveratrol due to the increased number of OH groups at the para-positions on the polyhydroxylated stilbenes. Hexahydroxystilbene has shown the most potent anti-inflammatory and anti-cancer activity in vitro and in animal studies, and has been shown to inhibit HIV infection at a very early stage in vitro. These substances have also been described as regulators of T cells, neutrophils, macrophages, and corresponding cytokines.
[0022] In Chinese Patent Application Publication No. 1736986, stilbene derivatives were proposed as antiviral substances against SARS-CoV-1, but the compounds disclosed therein as having antiviral activity were pyridine group-containing compounds, 2,2'-OH or CHO- substituted compounds, and 3,3'-methyl-butenyl substituted compounds. Furthermore, the properties of the compounds with actual anti-SARS activity were not disclosed.
[0023] All tested compounds are excellent free radical scavengers and exhibit a wide range of biochemical effects, including inhibiting key enzymes in DNA synthesis or inflammation. Furthermore, some of them have been shown to inhibit different viral infections through nonspecific inhibition of viral entry or replication. The compounds were selected based on their chemical structure and availability in natural sources such as tea or fruit.
[0024] All compounds were examined for their inhibitory effects on viral infection using an in vitro cell culture model.
[0025] The receptor for SARS-CoV-2 docking to cells is the ACE 2 receptor. Binding studies were performed on the three compounds that showed the most effective antiviral effects.
[0026] In contrast to other suggestions in the prior art, in which some polyphenolic substances from green and black tea are described as having potential anti-SARS-CoV-2 properties, it has been found in the present invention that polyphenolic substances are highly variable in their effects against SARS-CoV-2, with only a few of these substances being effective.
[0027] These experiments conducted in the course of this invention showed that the synthetic resveratrol analogues according to the invention, preferably their tetrahydroxy, pentahydroxy and hexahydroxy forms, and in particular hexahydroxystilbene, exhibit inhibitory activity against SARS-CoV-2 that is significantly superior to other natural polyphenolic compounds, the few natural polyphenolic compounds that have also been found to have real-world antiviral activity against SARS-CoV-2 (as opposed to optimistic predictions based on similarity to other viruses or computational predictions).
[0028] The compounds of the present invention are known as pharmaceutical substances in principle. Therefore, formulations already known and proven to be effective in delivering these compounds to human subjects are also applicable to the present invention. The administration route can be classified into enteral, such as oral, sublingual, intramuscular, subcutaneous, nasal, oral mucosal, cutaneous, peritoneal, or rectal, or parenteral, preferably oral, sublingual, or nasal, particularly inhalable and / or aerosol compositions. The compounds of the present invention or pharmaceutical compositions containing them can be administered in unit dosage form. The dosage form for administration can be a liquid dosage form or a solid dosage form. For example, the liquid dosage form can be a true solution form, a colloidal form, a microparticle dosage form, an emulsion form, or a suspension form. Examples of dosage forms include tablets, capsules, capsules such as hard gelatin capsules and soft elastic gelatin capsules, cachets, troches, lozenges, dispersions, suppositories, ointments, capsulas (patches), pastes, powders, dressings, creams, plasters, solutions, patches, aerosols (e.g., nasal sprays or inhalation preparations), sublingual films or sublingual tablets, lollipops, gels, liquid dosage forms suitable for oral or mucosal administration to patients, including suspensions (e.g., aqueous or non-aqueous liquid suspensions, oil-in-water emulsions or water-in-oil emulsions), solutions, and elixirs. The compounds of the present invention can be formulated into conventional formulations, and can also be sustained-release formulations, controlled-release formulations, targeted formulations, and various particulate drug delivery systems.
[0029] The present invention therefore relates to the use of pharmaceutical formulations comprising the compounds according to the invention together with a pharmaceutically acceptable excipient, which may be any formulation excipient known to be suitable for use with the compounds according to the invention, in particular a carrier or diluent.
[0030] A wide variety of carriers known in the art can be used to create unit dosage forms.
[0031] Examples of the carrier or diluent include absorbents such as starch, dextrin, calcium sulfate, lactose, mannitol, sucrose, sodium chloride, glucose, urea, kaolin, microcrystalline cellulose, and aluminum silicate; wetting agents and binders such as water, glycerin, polyethylene glycol, ethanol, propanol, starch syrup, dextrin, syrup, honey, glucose solution, acacia syrup, gelatin syrup, sodium carboxymethylcellulose, purple gum, methylcellulose, potassium phosphate, and polyvinylpyrrolidone; disintegrating agents such as dry starch, alginate, agar powder, alginate, sodium bicarbonate, calcium carbonate, polyoxyethylene sorbitol fatty acid ester, sodium lauryl sulfonate, methylcellulose, and ethylcellulose; and disintegration inhibitors such as sucrose, glyceryl tristearate, cocoa butter, and hydrogenated oils. Ingredients include: absorption enhancers such as quaternary ammonium salts and sodium lauryl sulfate; and lubricants such as talc, silicon dioxide, corn starch, stearic acid, boric acid, liquid paraffin, and polyethylene glycol. Other carriers include polyacrylic resins, liposomes, water-soluble carriers such as PEG4000 and PEG6000, and PVP. The tablets may also be prepared as sugar-coated tablets, film-coated tablets, enteric-coated tablets, or coated tablets such as bilayer tablets and multilayer tablets. For example, various carriers known in the art can be widely used to form dosage units into pills. Carriers include diluents and absorbents such as glucose, lactose, starch, cocoa butter, hydrogenated vegetable oil, polyvinylpyrrolidone, kaolin, and talc; binders such as acacia, tragacanth, gelatin, ethanol, honey, liquid sugar, rice paste, or butter; and disintegrants such as agar powder, dry starch, alginates, sodium lauryl sulfonate, methylcellulose, and ethylcellulose. For example, to prepare a dosage unit capsule, the compound of the present invention as an active ingredient is mixed with any of the above-mentioned carriers, and the resulting mixture is placed in a hard gelatin capsule or a soft capsule.The active ingredients of the compounds of the present invention may also be prepared into microcapsules, suspended in an aqueous medium to form a suspension, or filled into hard capsules, or prepared into injections, inhalants, or aerosols for administration. For example, the compounds of the present invention may be prepared into injections, inhalants, or aerosols, such as solutions, suspensions, emulsions, or lyophilized powders, and the preparations may be aqueous or non-aqueous.
[0032] The pharmaceutical formulation of the present invention may contain one or more pharmacodynamically acceptable formulation additives, such as carriers, diluents, binders, lubricants, preservatives, surfactants, or dispersants. For example, the diluent may be selected from water, ethanol, polyethylene glycol, 1,3-propanediol, ethoxylated isostearyl alcohol, polyoxylated isostearyl alcohol, polyoxyethylene sorbitol fatty acid esters, etc. Furthermore, to prepare isotonic inhalation solutions / suspensions, aerosols, and injections, an appropriate amount of sodium chloride, glucose, or glycerin may be added to the injection. Furthermore, conventional solubilizers, buffers, pH adjusters, etc. may also be added. These auxiliary materials are commonly used in this field. In addition, if necessary, colorants, preservatives, flavors, sweeteners, or other materials may also be added to the pharmaceutical formulation.
[0033] To achieve the goal of drug therapy and enhance the therapeutic effect, the drug or pharmaceutical composition of the present invention can be administered by any known administration method. The dosage of the extract, compound, or pharmaceutical composition of the present invention depends on many factors, such as the nature and severity of the disease to be prevented or treated, the sex, age, weight, personality, and individual response of the patient or animal, the route of administration, the number of administrations, and the purpose of treatment. Therefore, the therapeutic dose of the present invention may vary widely. Generally speaking, the dosage of the pharmacodynamic components of the present invention is well known to those skilled in the art. Depending on the actual amount of drug contained in the final formulation of the compound composition of the present invention, appropriate adjustments can be made to meet the requirements for a therapeutically effective dose, most preferably a dose of 0.1 to 20 mg / kg body weight of the compound of the present invention.
[0034] The dosages mentioned above may be administered in a single dosage form or may be divided into several, for example, two, three, or four dosage forms, as limited by the clinical experience of the administering physician and the dosing regimen, including the use of other therapeutic means.
[0035] In a preferred embodiment, the polyphenol compounds according to the present invention are formulated for delivery to the upper respiratory system. Exemplary formulations include nasal, bronchial, oral, and pulmonary formulations. However, the compounds according to the present invention can also be formulated for topical administration, including as a liquid, gel, wax, or paste. It is particularly preferred to formulate the composition as an aerosol. The aerosol may be a liquid aerosol or a powdered aerosol. In some embodiments, the composition contains one or more pharmaceutically acceptable formulation additives, such as glycerol. The composition may contain 0.01% to 20% w / v of the active ingredient according to the present invention and 10% to 20% glycerol.
[0036] The pharmaceutical compositions and unit dosage forms of the present disclosure typically also include one or more pharmaceutically acceptable formulation additives, particularly carriers or diluents. Advantages offered by certain compounds of the present disclosure, such as increased solubility and / or properties such as increased flowability, purity, or stability (e.g., hygroscopicity), can make them more suitable for pharmaceutical formulation and / or administration to patients than prior art.
[0037] Suitable formulation additives are well known to those skilled in the art of pharmacy or pharmaceutical science. Whether a particular formulation additive is suitable for incorporation into a pharmaceutical composition or formulation depends on various factors well known in the art, including the method by which the dosage form is administered to a patient. For example, oral dosage forms such as tablets or capsules may contain formulation additives that are not suitable for use in parenteral dosage forms. The suitability of a particular formulation additive may also depend on the specific active ingredient in the dosage form. For example, the decomposition of some active ingredients may be accelerated by some formulation additives, such as lactose, or when exposed to water. Active ingredients containing primary or secondary amines are particularly susceptible to such accelerated decomposition.
[0038] Particularly preferred pharmaceutically acceptable formulation additives are antioxidants (reducing agents). Antioxidants commonly used in pharmaceutical compositions include citric acid and its salts (E330-E333), tartaric acid and its salts (E334-E337), phosphoric acid and its salts (E338-E343), ethylenediaminetetraacetic acid (EDTA) and its salts (calcium disodium EDTA, E385), vitamin C, vitamin E, etc.
[0039] The present disclosure also encompasses pharmaceutical compositions and dosage forms that contain one or more compounds that slow down the decomposition rate of active ingredients.Examples of such compounds are antioxidants such as ascorbic acid, stabilizers such as pH buffers or salt buffers.In addition, the pharmaceutical compositions or dosage forms of the present disclosure can contain one or more solubility regulators, such as sodium chloride, sodium sulfate, sodium or potassium phosphate, or organic acids.Specific solubility regulators include tartaric acid.
[0040] The amount and specific type of compound according to the present invention in a dosage form, as well as the amount and type of formulation additives, can depend on factors such as the route by which it is administered to a patient. A typical dosage form of a compound of the present invention contains the active ingredient according to the present invention in an amount of about 100 μg to about 10 g, preferably about 1 mg to about 1 g, more preferably 10 mg to 500 mg, and even more preferably about 20 mg to about 300 mg. A preferred dosage form contains the compound of the present invention in an amount of about 10 mg to about 1000 mg, preferably about 25 mg to about 750 mg, more preferably 50 mg to 500 mg, and even more preferably about 30 mg to about 100 mg.
[0041] Preferably, the pharmaceutical composition may also include a carrier, for example, a sugar alcohol such as, but not limited to, glycerol, mannitol, sorbitol, xylitol, and erythritol, hi certain embodiments, the sugar alcohol is glycerol.
[0042] Typical topical dosage forms include liquids, creams, lotions, ointments, gels, waxes, pastes, sprays, aerosols, solutions, emulsions, and other forms known to those skilled in the art. In preferred embodiments, the compounds of the present invention are delivered to oral, nasal, or bronchial tissues in a suitable topical dosage form.
[0043] Non-sprayable topical dosage forms typically use viscous to semi-solid or solid forms containing a carrier or one or more formulation additives that are compatible with topical application and preferably have a dynamic viscosity higher than that of water. Suitable formulations include solutions, suspensions, emulsions, creams, ointments, powders, gels, waxes, pastes, liniments, salves, etc., which may be sterilized or mixed with auxiliary agents (e.g., preservatives, stabilizers, wetting agents, buffers, or salts) to affect various properties, such as osmotic pressure, as needed.
[0044] Nasal spray formulations contain a therapeutically active ingredient dissolved or suspended in a solution or mixture of formulation excipients in a non-pressurized dispenser that delivers a spray containing a metered dose of the active ingredient. The dose may be metered by a spray pump or may be pre-metered during manufacture. Nasal spray units may be designed for unit dosing or may be capable of releasing up to several hundred metered sprays of the drug-containing formulation. Nasal sprays are applied to the nasal cavity for local and / or systemic effect.
[0045] According to another preferred embodiment, the compounds according to the present invention are provided as inhalation solutions and suspensions. Such products are typically aqueous formulations containing the therapeutically active ingredient and may also contain additional formulation additives. Aqueous-based oral inhalation solutions and suspensions must be sterile. Inhalation solutions and suspensions are intended for delivery to the lungs by oral inhalation for local and / or systemic effect and are used with a designated nebulizer. Inhalation spray formulations consist of the formulation and a container closure system. The formulation is typically aqueous-based and must be sterile. Inhalation sprays are intended for delivery to the lungs by oral inhalation for local and / or systemic effect. Other suitable topical dosage forms include nebulizable aerosol formulations, in which the active ingredient is preferably combined with a solid or liquid inert carrier and packaged in a mixture with a pressurized volatile substance (e.g., a gaseous propellant such as Freon) or in a squeeze bottle. Examples of nebulizable aerosol preparations include metered-dose inhalers, dry powder inhalers, and nebulizers. Moisturizers or humectants can also be added to pharmaceutical compositions and dosage forms if desired.
[0046] It may also be advantageous to provide the pharmaceutical compositions according to the present invention in transdermal and mucosal dosage forms, such as eye drops, patches, sprays, aerosols, creams, lotions, suppositories, ointments, gels, solutions, emulsions, suspensions, or other forms known to those skilled in the art. Dosage forms suitable for treating mucosal tissues in the oral cavity can be formulated as mouthwashes, oral gels, or oral patches. Additional transdermal dosage forms include reservoir-type or matrix-type patches, which are applied to the skin and can be worn for a specific period of time to allow penetration of a desired amount of active ingredient. Suitable formulation additives (e.g., carriers and diluents) and other materials that can be used to provide transdermal and mucosal dosage forms are well known to those skilled in the pharmaceutical arts and depend on the specific tissue or organ to which a given pharmaceutical composition or formulation is to be applied. In view of this, typical formulation additives for forming a non-toxic, pharmaceutically acceptable dosage form include water, acetone, ethanol, ethylene glycol, propylene glycol, butane-1,3-diol, isopropyl myristate, isopropyl palmitate, mineral oil, and mixtures thereof. Additional ingredients can be used before, in conjunction with, or after treatment with the compounds according to the present invention, depending on the specific tissue being treated. For example, a penetration enhancer can be used to help deliver the active ingredient to or across the tissue. Suitable penetration enhancers include acetone; various alcohols such as ethanol, oleyl, and tetrahydrofuryl; alkyl sulfoxides such as dimethyl sulfoxide; dimethylacetamide; dimethylformamide; polyethylene glycol; pyrrolidones such as polyvinylpyrrolidone; Kollidon grades (Povidone, Polyvidone); urea; and various water-soluble or insoluble sugar esters such as TWEEN 80 (Polysorbate 80) and SPAN 60 (sorbitan monostearate).
[0047] The pH of a pharmaceutical composition or dosage form, or the pH of the tissue to which the pharmaceutical composition or dosage form is applied, can also be adjusted to improve delivery of the active ingredient.Similarly, the polarity of a solvent carrier, its ionic strength, or tonicity can also be adjusted to improve delivery.Compounds such as stearates can also be added to pharmaceutical compositions or dosage forms to advantageously change the hydrophilicity or lipophilicity of the active ingredient to improve delivery.In this regard, stearates can serve as a lipid vehicle for the formulation, as an emulsifier or surfactant, and as a delivery-enhancing or penetration-enhancing agent.
[0048] The compounds of the present invention may also be formulated as sustained or delayed release formulations. Sustained and delayed release formulations for various active ingredients, such as by encapsulation, are known in the art.
[0049] The compound of the present invention is present in the pharmaceutical composition at about 0.001% to about 50% w / v, typically about 0.01% to about 0.1% w / v, and more typically about 1% to about 20% w / v. In a preferred embodiment, the compound of the present invention is present at about 0.01% to about 20% w / v. Pharmaceutically acceptable formulation additives and other compounds or drugs present in the pharmaceutical composition are added to bring the total to 100%.
[0050] The compounds and compositions of the present invention are useful for treating one or more symptoms of viral infection by SARS-CoV-2. Preferably, the pharmaceutical compositions according to the present invention are formulated for nasal or oral application, such as nasal drops, applicators, or sprays. One embodiment provides a composition according to the present invention for use in prophylactically or therapeutically treating patients infected with or at risk of infection with SARS-CoV-2, in particular for preventing viral infection via the airborne route.
[0051] According to a further aspect, the present invention relates to the use of a compound according to the invention for the manufacture of a pharmaceutical formulation according to the invention for the treatment and prevention of COVID-19 in a human subject, in particular for inhibiting SARS-CoV-2. Preferably, said use is for inhibiting the replication of SARS-CoV-2 and / or for preventing the cytopathic effect of active viral replication of SARS-CoV-2 and / or for preventing viral infection by SARS-CoV-2 via the airborne route of transmission.
[0052] In another aspect, the present invention relates to a method for the treatment and prevention of COVID-19 in a human subject, in particular for inhibiting SARS-CoV-2, comprising administering to a subject infected or at risk of infection with SARS-CoV-2 an effective amount of a compound according to the invention or a pharmaceutical formulation according to the invention. This method is particularly suitable for inhibiting the replication of SARS-CoV-2 and / or for preventing the cytopathic effects of active viral replication of SARS-CoV-2 and / or for preventing viral infection by SARS-CoV-2 via the airborne route in a human subject.
[0053] The present invention is further illustrated by the following examples and figures, without however being limited thereto. [Brief explanation of the drawings]
[0054] [Figure 1A] Figure 1 shows the compounds tested and their chemical structures: Compound I: gallic acid, Compound II: (-)-catechin, Compound III: (-)-catechin gallate, Compound IV: (-)-epigallocatechin gallate, Compound V: (-)-epicatechin, Compound VI: (-)-epicatechin gallate, Compound VII: (-)-epigallocatechin, Compound VIII: (-)-gallocatechin gallate, Compound IX: ellagic acid, and Compound X: hexahydroxy-trans-stilbene. [Figure 1B] Same as above. [Figure 2]Figure 2 shows the effect of pre-incubation with the indicated substances on the TCID50 of SARS-CoV-2. [Figure 3] Figures 3, 4, and 5 show the performance of compounds IV, VIII, and X in a Vero cell culture assay using SARS-CoV-2-infected cells. Here, cells were incubated and then infected, and viral load was determined after 48 hours of incubation with different concentrations of compounds. Viral infection was quantified using a RT-PCR assay in the supernatant. [Figure 4] Same as above. [Figure 5] Same as above. [Figure 6] Figures 6 and 7 show RT PCR assays in supernatants to quantify viral infectivity for compounds I to X ("s1" to "s10") and remdesivir. [Figure 7] Same as above. [Figure 8] FIG. 8 shows two runs of viral inhibition. [Figure 9] FIG. 9 shows the structures of resveratrol, piceatannol, and hexahydroxystilbene (compound X). [Figure 10] FIG. 10 shows the viral copy number at different concentrations of compounds (circles: resveratrol, squares: piceatannol, triangles above: hexahydroxystilbene (compound X); triangles below: positive control). [Figure 11] Figure 11 shows the viral copy number at different compound concentrations. Viral infection was quantified using an RT-PCR assay in the supernatant. The right column shows positive controls: (A) resveratrol, (B) piceatannol, and (C) hexahydroxystilbene (compound X). [Figure 12] Figures 12-14 show the performance of hexahydroxystilbene (compound X), resveratrol, and piceatannol in a Vero cell culture assay using SARS-CoV-2 infected cells. The cells were incubated, then infected, and the viral load was determined after 48 hours of incubation with different concentrations of the compounds. [Figure 13] Same as above. [Figure 14] Same as above. [Example]
[0055] In this example, the TCID of SARS-CoV-2 50 The SARS-CoV-2 inhibitory effects of compounds I to X were investigated, including a Vero cell culture assay using SARS-CoV-2-infected cells.
[0056] Materials and Methods Cells were infected and incubated with different concentrations of all compounds.
[0057] Tissue culture infectious dose (TCID) 50 ) Median of assays Vero cells were cultured in a 96-well plate at 1.5–2 × 10 cells in growth medium (DMEM containing 10% FCS, 100 μM non-essential amino acids, 1 mM sodium pyruvate, and penicillin / streptomycin). 4 Cells were seeded at a density of 100 μL / well. The following morning, growth medium was removed, and 95% confluent Vero cells were preincubated for 45 minutes with DMSO or 50 μM of one of the substances I, IV, VII, VIII, or X, and then infected with 100 μL of serial dilutions of SARS-CoV-2 virus stock. Preincubation and virus infection were performed in medium containing only 2% FCS instead of 10% FCS. After 5–7 days, all wells were checked for viability, and the TCID in the presence or absence of the indicated substances was calculated using the Reed and Munch method (Reed et al., Am. J. Epidemiol. 27 (1938), 493–497). 50 The amount was calculated. Wells with viable and infected cells were identified using either an inverted optical microscope showing a well-visible and intact monolayer of Vero cells (viable cells), or wells with a large amount of CPE (cytopathic effect), characterized by a large amount of dead cells and an absent monolayer (infection).
[0058] After 5-7 days, all wells were checked for cytopathic effect (CPE) and the TCID 50 The amount was calculated using the method of Reed et al., supra.
[0059] cell culture African green monkey kidney epithelial cells, VeroE6 cells (obtained from Biomedica), were maintained in Gibco Minimum Essential Medium (Gibco 11095-080, 500 mL) supplemented with Earle's Salts and L-glutamine containing 5% FCS and 1% PenStrep (hereafter referred to as MEM 5%). Unless otherwise noted, they were cultured at 37°C in 5% CO.
[0060] Virus: Stock preparation and titration Viral SARS-CoV-2 strains: Human 2019-nCoV isolates Product Description Reference SKU: 026V-03883 Infectious cell culture supernatant of human 2019-nCoV Product Risk Group: RG3 ICTV Classification: ssRNA(+) / Nidovirales / Coronavirus family / Coronavirus family / Betacoronavirus genus Virus name: Human 2019-nCoV ex China Lineage:BavPat1 / 2020 Isolate: Germany, China Based on this stock solution, which was a 2.2E+06 PFU / mL human 2019-nCoV isolate, a virus working stock (VPN3) was cultured in EMEM (Gibco) + 10% FCS. 50 Titer determinations by plaque assay and parallel analysis yielded a concentration of 1.30E+06 viral RNA copies per μL stock. Aliquots were stored at -80°C. For infection assays, the working stock was thawed and diluted to an MOI of 0.002 in MEM 2%.
[0061] The European Commission classifies SARS-CoV-2 as a risk group 3 pathogen. Experiments with active virus and highly concentrated virus stocks require work under Biosafety Level 3 conditions (BSL-3). At the Institute of Pathology of the Medical University of Graz, all work steps with active virus were carried out under BSL-3 conditions using personal equipment with increased safety to avoid transmission of the virus via aerosols.
[0062] Substances Substances were dissolved in DMSO (Sigma) to a substance stock concentration of 5 mM or 1 mM, respectively. Further, 1:2 dilutions were performed to obtain 2.5 mM and 0.5 mM stocks from specific substances. For the final assay concentration, a 1:100 dilution of the substance stock in MEM 2% was performed per well. Substance stocks were freshly prepared before each assay.
[0063] Cytotoxicity assay For the cytotoxicity assay, VeroE6 cells were seeded at 8,500–10,000 cells per well in 96-well plates using MEM supplemented with 2% FCS 24 hours prior to treatment and cultured at 37°C in 5% CO2.
[0064] After incubation, cells were exposed to a 1:100 dilution of the substance stock (as described above) in MEM + 2% FCS. Triplicates were tested per substance and concentration. Metabolic activity was measured using a resazurin-based assay immediately after substance addition, and 24 and 48 hours later. After addition of resazurin (10 μM concentration), the increase in relative fluorescence units (RFU) was measured for 3 hours and subjected to linear regression analysis. The slope of substance-treated cells was normalized to the slope of untreated cells (untreated cells = cells + volume of each medium) to calculate relative metabolic activity.
[0065] Infection assay VeroE6 cells used in the infection assay were plated at 3.0 × 10 cells per well in 48-well plates (Corning Coaster, cell culture-treated) in MEM + 2% FCS 24 hours prior to infection unless otherwise stated. 4 ~2.5×10 4 Cells (300 μL) were seeded at a concentration of
[0066] On the day of infection, the seeding medium was removed and the cells were treated with a final volume of 198 μL of medium (MEM2% FCS) containing 1% DMSO + dissolved substance. Subsequently, 2 μL of diluted virus stock containing SARS-CoV-2 (calculated MOI 0.002) was added. The cells were infected with the virus for 1 hour at 5% CO2 and 37°C. After the incubation step, the infection medium was removed and the cells were washed twice with MEM without FCS. The cells were given 440 μL of fresh MEM2% FCS (either with or without substance). After 10 minutes, the supernatant at time point 0 was collected (140 μL) and either frozen at -80°C or inactivated with 560 μL of AVL buffer.
[0067] Cells were further incubated for 48 hours at 5% CO and 37°C, and supernatants were collected at time point 48 and inactivated with 560 μl of AVL buffer. For intracellular virus detection, cells were either lysed in the wells (RTX buffer from the Qiagen RNeasy Kit, followed by RNA preparation according to the kit's protocol) or plates were fixed in 4% formalin for SARS-specific immunohistochemical staining (IHC).
[0068] RNA isolation and RT-qPCR Virus-containing supernatant samples were inactivated with AVL buffer (Qiagen), and viral RNA was isolated using the QiAmp Viral RNA mini kit (Qiagen) according to the manufacturer's protocol recommended by the CDC. The samples were eluted in 40 μL of ultrapure HO and stored at -80°C.
[0069] RT-qPCR to detect the viral load of the samples was performed according to CDC recommendations using a QuantiTect Multiplex RT-PCR kit with a Rotor Gene Q cycler. 2019-nCoV_N1-F 2019-nCoV_N1 forward primer: 5'-GAC CCC AAA ATC AGC GAA AT-3' 2019-nCoV_N1-R 2019-nCoV_N1 forward primer: 5'-TCT GGT TAC TGC CAG TTG AAT CTG-3' 2019-nCoV_N1-P 2019-nCoV_N1 probe: 5'-FAM-ACC CCG CAT TAC GTT TGG TGG ACC-BHQ1-3' FAM, BHQ-1
[0070] RotorGene qRT-PCR analysis was performed using Rotorgene according to the manufacturer's protocol.
[0071] [Table 1]
[0072] immunohistochemistry After fixing the cells with 4% formalin and washing with PBS, the cells were permeabilized with 0.1% TritonX100 in PBS for 10 minutes (200 μl per well), followed by three washes with 200 μl of PBS. Endogenous peroxidase was blocked with 3% H2O2 in methanol for 30 minutes. Following three washes with 200 μl of PBS, the cells were incubated with 100 μL of primary antibody (SARS-CoV-2 nucleocapsid; 1:1000 dilution in antibody diluent) per well for 1 hour. Following three washes with 200 μl of PBS, the cells were treated with secondary antibody (EnVision) for at least 30 minutes (protected from light) during another incubation step.
[0073] After washing (3 times with PBS), the substrate AEC was added (2 drops) to the cells and incubated for no more than 3 minutes until the virus-infected cells were stained red (observed under a microscope). The reaction was stopped with PBS washing (3 times). The wells were kept in PBS until photographic recording.
[0074] [Table 2]
[0075] Molecular interaction assay to detect RBD inhibition of ACE2 receptor binding A molecular interaction assay to detect RBD inhibition of ACE2 receptor binding was performed as described (Gattinger et al., Allergy, 76 (2021), 878-883) with the following modifications: 200 ng of His-tagged RBD was incubated with various doses of substance X (100, 50, 25, 12.2, and 6 mM) at RT for 3 hours, followed by layering on plate-bound ACE2 (2 μg / ml) for 3 hours. Bound RBD was then detected with a mouse monoclonal anti-His antibody, followed by an HRP-conjugated anti-mouse IgG1 antibody and detection with ABTS. All measurements were performed in duplicate with a variation of less than 5%.
[0076] result In the first set of studies, the TCID of SARS-CoV-2 50 was determined by assaying Vero cells after preincubation with DMSO or the indicated substances (I–X) dissolved in DMSO. As expected, DMSO significantly reduced the TCID of SARS-CoV-2. 50 The TCID was reduced by 1 Log. Cells were seeded and then infected for 1 hour, and then substances were added at different concentrations for 48 hours. All substances showed cytoprotective effects and 50 The TCID was reduced by more than 1 Log. 50was significantly reduced by 50 μM of substances IV (99.7-fold and 802-fold reduction), VIII (99.7-fold and 5.14-fold reduction), and X (99.7-fold and 2107-fold reduction), indicating inhibition of viral replication (Table 1 and Figure 2).
[0077] [Table 3]
[0078] In vitro inhibition of virus growth was repeated in another laboratory. Vero cells were seeded in 48-well plates as described in the Methods section above, and then the cells were infected and incubated with different concentrations of all 10 compounds for 48 hours. Compounds IV, VIII, and X showed inhibition of virus growth, which was consistent with the first set of tests (TCID 50 This is consistent with the results observed in the qPCR assay). SARS-CoV-2 qPCR was then performed on the supernatant after RNA isolation. Compound IV caused an increase in ct values of more than 30 at a concentration of 50 μM in one of the two sets. An increase in ct values of more than 30 was also observed after incubation with 50 μM of substance VIII. Compound X caused an increase in ct values (more than 30) after 48 hours of treatment at 25 μM and 50 μM, indicating inhibition of viral growth (see also Figures 3, 4, and 5).
[0079] To determine whether the inhibition of viral growth was due to alterations in viral uptake into host cells, cells were further incubated with compounds IV, VIII, and X (compounds that had proven effective in previous experiments) for 1 hour, and then the compounds were washed out. The cell supernatants were then tested by qPCR as described above. Interestingly, compounds IV and VIII had no effect on viral growth compared to the untreated control, while compound X was able to inhibit viral growth in a concentration-dependent manner after a short incubation period of 1 hour. The results are shown in Figure 7. The ct values significantly increased after 1 hour of incubation at 25 μM or 50 μM.
[0080] These results indicate that viral uptake into host cells can be inhibited by compound X. Therefore, we investigated whether compound X could block the ACE2 receptor, which has been described to act as a point of viral entry into cells.
[0081] Next, the effects of compounds IV, VIII, and X on the ACE2 receptor were tested. Compounds IV and VIII did not exhibit any inhibitory effect on ACE2 receptor binding in this test. Compound X was able to inhibit ACE2 binding in a concentration-dependent manner. Compound X inhibited ACE2 binding by 21-31 percent at 100 μM (see Figure 8). This indicates that compound X can inhibit viral uptake into cells at a very early stage, which may be at least partially due to the compound's binding to the ACE2 receptor.
[0082] Comparative Examples for Trihydroxystilbene (Resveratrol), Tetrahydroxystilbene (Piceatannol) and Hexahydroxystilbene (Compound X of the Invention) Comparative tests on resveratrol, piceatannol, and hexahydroxystilbene, compound X according to the present invention, were carried out as described above. VeroE6 cells were used as the cell line. The cells were infected with the virus for 1 hour, and then the test compound was added. The cells were then washed and incubated with the test compound for 48 hours. Results / readouts were obtained by qPCR and IHC of the supernatant.
[0083] result The results of these comparative studies are shown in Figures 9 to 14. Hexahydroxystilbene was able to completely inhibit viral replication (100 μM and 80 μM). Trihydroxystilbene showed only a low level of inhibition of viral replication (100 μM, concentration-dependent). Tetrahydroxystilbene showed no inhibition of viral replication.
[0084] In view of the present disclosure and examples, the following preferred embodiments are disclosed herein. 1. Compounds of general formula I for use in the treatment and prevention of COVID-19 in human subjects, in particular for inhibiting SARS-CoV-2:
[0085] [ka]
[0086] (wherein R1 to R6 may or may not be the same and are H, OH-, or OR7, and R7 is a C1 to C3 alkyl group or a C1 to C4 acyl group, with the proviso that at least four of R1 to R6 are other than H). 2. The compound is 3,5,4'-trimethoxystilbene, 3,3',5,5'-tetramethoxystilbene, 3,4,4',5-tetramethoxystilbene, 3,3',4,5'-tetramethoxystilbene, 3,3',4,5,5'-pentamethoxystilbene, 3,3',5,5'-tetrahydroxystilbene, 3,4,4',5-tetrahydroxystilbene, 3,3',4,5'-tetrahydroxystilbene, 3,3',4,4',5-pentahydroxystilbene, 3,3',4,5,5'-pentahydroxystilbene, 3,4,4',5,5'-pentahydroxystilbene, 3,3',4',5,5'-pentahydroxystilbene, 3,3',4',5,5'-pentahydroxystilbene, 3,3',4',5,5'-pentahydroxystilbene, 3,3',4',5,5'-pentahydroxystilbene, 3,3',4',5,5'-pentahydroxystilbene, 3,3',4',5,5'-pentahydroxystilbene, 3,3',4',5,5'-pentahydroxystilbene, 3,4 ... 3. The compound of embodiment 1 for use, wherein the compound is selected from the group consisting of 3,3',4,4',5,5'-pentahydroxystilbene, 3,3',4,4',5,5'-pentahydroxystilbene, 3,3',4,4',5,5'-hexahydroxystilbene, preferably 3,3',4,5,5'-pentamethoxystilbene, 3,3',4,4',5-pentahydroxystilbene, 3,3',4,5,5'-pentahydroxystilbene, 3,4,4',5,5'-pentahydroxystilbene, 3,3',4,4',5,5'-pentahydroxystilbene, 3,3',4,4',5,5'-hexahydroxystilbene, and in particular 3,3',4,4',5,5'-hexahydroxystilbene. 3. The compound according to any one of embodiments 1 to 3 for use, wherein inhibiting SARS-CoV-2 is inhibiting replication of SARS-CoV-2 and / or preventing the cytopathic effects of active viral replication of SARS-CoV-2 and / or preventing viral infection by SARS-CoV-2 via the airborne route. 4. A pharmaceutical formulation comprising or consisting of a compound according to any one of embodiments 1 to 3 for use as an active ingredient and a pharmaceutically acceptable formulation excipient. 5. The pharmaceutical formulation of aspect 4 for use, wherein the formulation is for oral, sublingual, intramuscular, subcutaneous, nasal, buccal, bronchial, pulmonary, cutaneous, peritoneal or rectal administration, preferably for oral, sublingual or nasal administration, in particular wherein the formulation is provided as an inhalable and / or aerosol composition, or as a nasal or oral spray, and / or as a sublingual film or tablet, and / or as a lollipop. 6. The pharmaceutically acceptable formulation additives are, for example, diluents such as water, acetone, ethanol, polyethylene glycol, polypropylene glycol, 1,3-propanediol, butane-1,3-diol, isopropyl myristate, isopropyl palmitate, mineral oil, ethoxylated isostearyl alcohol, polyoxylated isostearyl alcohol, polyoxyethylene sorbitol fatty acid esters; carriers such as glycerol, mannitol, sorbitol, xylitol, and erythritol, absorbents such as starch, dextrin, calcium sulfate, lactose, mannitol, sucrose, sodium chloride, glucose, urea, kaolin, microcrystalline cellulose, aluminum silicate, etc.; Wetting agents and binders such as water, glycerin, polyethylene glycol, ethanol, propanol, starch syrup, dextrin, syrup, honey, glucose solution, acacia syrup, gelatin syrup, sodium carboxymethylcellulose, purple gum, methylcellulose, potassium phosphate, and polyvinylpyrrolidone; disintegrating agents such as dry starch, alginate, agar powder, alginate, sodium bicarbonate, calcium carbonate, polyoxyethylene sorbitol fatty acid ester, sodium lauryl sulfonate, methylcellulose, and ethylcellulose; disintegrating agents such as sucrose, glyceryl tristearate, cocoa butter, and hydrogenated oils. inhibitors); absorption enhancers such as quaternary ammonium salts, sodium lauryl sulfate and the like; lubricants such as talc, silicon dioxide, corn starch, stearic acid, boric acid, liquid paraffin, polyethylene glycol and the like; water soluble carriers such as polyacrylic resins, liposomes, e.g., PEG4000 and PEG6000, PVP; antioxidants; pH buffers and / or salt buffers; solubility modifiers; penetration enhancers; antioxidants such as citric acid and salts thereof, tartaric acid and salts thereof, phosphoric acid and salts thereof, ethylenediaminetetraacetic acid (EDTA) and salts thereof (calcium disodium EDTA, E385), vitamin C, vitamin E and the like; and mixtures thereof. 7. The pharmaceutical formulation according to any one of aspects 4 to 6 for use, wherein the formulation is an inhalation formulation or an aerosol formulation, in particular an isotonic inhalation solution or suspension or a liquid or powder aerosol. 8. The pharmaceutical formulation of any one of Aspects 4 to 7 for use, wherein the formulation contains the compound in an amount of about 100 μg to about 10 g, preferably about 1 mg to about 1 g, more preferably 10 mg to 500 mg, and even more preferably about 20 mg to about 300 mg. 9. The pharmaceutical formulation of any one of Aspects 4 to 8 for use, wherein the formulation contains the compound in an amount of about 10 mg to about 1000 mg, preferably about 25 mg to about 750 mg, more preferably 50 mg to 500 mg, and even more preferably about 30 mg to about 100 mg. 10. The pharmaceutical formulation of any one of Aspects 4 to 9 for use, wherein the formulation is contained in a metered dose inhaler, a dry powder inhaler, or a nebulizer. 11. The pharmaceutical formulation according to any one of Aspects 4 to 9 for use, wherein the formulation comprises the compound at 0.001% to 50% w / v, preferably 0.01% to 20% w / v, more preferably 0.1% to 20% w / v, and particularly 1% to 20% w / v. 12. Use of a compound according to any one of embodiments 1 to 3 for the manufacture of a pharmaceutical formulation according to any one of embodiments 4 to 11 for the treatment and prevention of COVID-19 in a human subject, in particular for the inhibition of SARS-CoV-2. 13. Use of embodiment 12 for inhibiting replication of SARS-CoV-2 and / or preventing the cytopathic effects of active viral replication of SARS-CoV-2 and / or preventing viral infection by SARS-CoV-2 via the airborne route of transmission. 14. A method for the treatment and prevention of COVID-19 in a human subject, in particular for inhibiting SARS-CoV-2, wherein an effective amount of a compound of Embodiment 1 or Embodiment 2 or a pharmaceutical formulation of any one of Embodiments 4 to 11 is administered to a subject infected with or at risk of infection with SARS-CoV-2. 15. A method for inhibiting replication of SARS-CoV-2 and / or preventing the cytopathic effects of active viral replication of SARS-CoV-2 and / or preventing viral infection by SARS-CoV-2 via the airborne route in a human subject, comprising administering to a subject infected with or at risk of infection with SARS-CoV-2 an effective amount of a compound of Embodiment 1 or Embodiment 2 or a pharmaceutical formulation of any one of Embodiments 4 to 11.
[0087] 1. A compound selected from (-)-epigallocatechin gallate, (-)-gallocatechin gallate, or a mixture thereof, preferably selected from (-)-gallocatechin gallate or a mixture thereof, for the treatment and prevention of COVID-19 in human subjects, in particular for inhibiting SARS-CoV-2. 2. The compound of embodiment 1, which is (-)-gallocatechin gallate (Substance VIII). 3. The compound of embodiment 1 or embodiment 2, wherein inhibiting SARS-CoV-2 comprises inhibiting replication of SARS-CoV-2 and / or preventing the cytopathic effects of active viral replication of SARS-CoV-2 and / or preventing viral infection by SARS-CoV-2 via the airborne route. 4. A pharmaceutical formulation comprising or consisting of a compound according to any one of Aspects 1 to 3 as an active ingredient and a pharmaceutically acceptable formulation excipient. 5. The pharmaceutical formulation of aspect 4 for use, wherein the formulation is for oral, sublingual, intramuscular, subcutaneous, nasal, buccal, bronchial, pulmonary, cutaneous, peritoneal or rectal administration, preferably for oral, sublingual or nasal administration, in particular wherein the formulation is provided as an inhalable and / or aerosol composition, or as a nasal or oral spray, and / or as a sublingual film or tablet, and / or as a lollipop. 6. The pharmaceutically acceptable formulation additives are, for example, diluents such as water, acetone, ethanol, polyethylene glycol, polypropylene glycol, 1,3-propanediol, butane-1,3-diol, isopropyl myristate, isopropyl palmitate, mineral oil, ethoxylated isostearyl alcohol, polyoxylated isostearyl alcohol, polyoxyethylene sorbitol fatty acid esters; carriers such as glycerol, mannitol, sorbitol, xylitol, and erythritol, absorbents such as starch, dextrin, calcium sulfate, lactose, mannitol, sucrose, sodium chloride, glucose, urea, kaolin, microcrystalline cellulose, aluminum silicate, etc.; Wetting agents and binders such as water, glycerin, polyethylene glycol, ethanol, propanol, starch syrup, dextrin, syrup, honey, glucose solution, acacia syrup, gelatin syrup, sodium carboxymethylcellulose, purple gum, methylcellulose, potassium phosphate, and polyvinylpyrrolidone; disintegrating agents such as dry starch, alginate, agar powder, alginate, sodium bicarbonate, calcium carbonate, polyoxyethylene sorbitol fatty acid ester, sodium lauryl sulfonate, methylcellulose, and ethylcellulose; disintegrating agents such as sucrose, glyceryl tristearate, cocoa butter, and hydrogenated oils. inhibitors); absorption enhancers such as quaternary ammonium salts, sodium lauryl sulfate and the like; lubricants such as talc, silicon dioxide, corn starch, stearic acid, boric acid, liquid paraffin, polyethylene glycol and the like; water soluble carriers such as polyacrylic resins, liposomes, e.g., PEG4000 and PEG6000, PVP; antioxidants; pH buffers and / or salt buffers; solubility modifiers; penetration enhancers; antioxidants such as citric acid and salts thereof, tartaric acid and salts thereof, phosphoric acid and salts thereof, ethylenediaminetetraacetic acid (EDTA) and salts thereof (calcium disodium EDTA, E385), vitamin C, vitamin E and the like; and mixtures thereof. 7. The pharmaceutical formulation according to any one of aspects 4 to 6 for use, wherein the formulation is an inhalation formulation or an aerosol formulation, in particular an isotonic inhalation solution or suspension or a liquid or powder aerosol. 8. The pharmaceutical formulation of any one of Aspects 4 to 7 for use, wherein the formulation contains the compound in an amount of about 100 μg to about 10 g, preferably about 1 mg to about 1 g, more preferably 10 mg to 500 mg, and even more preferably about 20 mg to about 300 mg. 9. The pharmaceutical formulation of any one of Aspects 4 to 8 for use, wherein the formulation contains the compound in an amount of about 10 mg to about 1000 mg, preferably about 25 mg to about 750 mg, more preferably 50 mg to 500 mg, and even more preferably about 30 mg to about 100 mg. 10. The pharmaceutical formulation of any one of Aspects 4 to 9 for use, wherein the formulation is contained in a metered dose inhaler, a dry powder inhaler, or a nebulizer. 11. The pharmaceutical formulation according to any one of Aspects 4 to 9 for use, wherein the formulation comprises the compound at 0.001% to 50% w / v, preferably 0.01% to 20% w / v, more preferably 0.1% to 20% w / v, and particularly 1% to 20% w / v. 12. Use of a compound according to any one of embodiments 1 to 3 for the manufacture of a pharmaceutical formulation according to any one of embodiments 4 to 11 for the treatment and prevention of COVID-19 in a human subject, in particular for the inhibition of SARS-CoV-2. 13. Use of embodiment 12 for inhibiting replication of SARS-CoV-2 and / or preventing the cytopathic effects of active viral replication of SARS-CoV-2 and / or preventing viral infection by SARS-CoV-2 via the airborne route of transmission.
[0088] 14. A method for the treatment and prevention of COVID-19 in a human subject, in particular for inhibiting SARS-CoV-2, wherein an effective amount of a compound of Embodiment 1 or Embodiment 2 or a pharmaceutical formulation of any one of Embodiments 4 to 11 is administered to a subject infected with or at risk of infection with SARS-CoV-2. 15. A method for inhibiting replication of SARS-CoV-2 and / or preventing the cytopathic effects of active viral replication of SARS-CoV-2 and / or preventing viral infection by SARS-CoV-2 via the airborne route in a human subject, comprising administering to a subject infected with or at risk of infection with SARS-CoV-2 an effective amount of a compound of Embodiment 1 or Embodiment 2 or a pharmaceutical formulation of any one of Embodiments 4 to 11.
Claims
1. An agent for treating or preventing COVID-19 in a human subject, comprising 3,3',4,4',5,5'-hexahydroxy-trans-stilbene.
2. SARS-CoV-2 inhibitors comprising 3,3',4,4',5,5'-hexahydroxy-trans-stilbene.
3. 3. The SARS-CoV-2 inhibitor of claim 2, which inhibits the replication of SARS-CoV-2 and / or prevents the cytopathic effect of active viral replication of SARS-CoV-2 and / or prevents viral infection by SARS-CoV-2 via the airborne route of transmission.
4. 1. A pharmaceutical formulation for use in the treatment and prevention of COVID-19 in a human subject, comprising or consisting of 3,3',4,4',5,5'-hexahydroxy-trans-stilbene and a pharmaceutically acceptable formulation excipient.
5. 5. The pharmaceutical formulation of claim 4, wherein the formulation is for oral, sublingual, intramuscular, subcutaneous, nasal, buccal, bronchial, pulmonary, cutaneous, peritoneal or rectal administration.
6. 6. A pharmaceutical formulation according to claim 4 or claim 5, wherein the formulation is provided as an inhalable and / or aerosol composition, or as a nasal or oral spray, and / or as a sublingual film or tablet, and / or as a lollipop.
7. 7. The pharmaceutical formulation according to any one of claims 4 to 6, wherein the pharmaceutically acceptable formulation additive is selected from diluents; carriers; wetting agents and binders; disintegrants; disintegration agents; disintegration inhibitors; absorption enhancers; lubricants; polyacrylic resins; liposomes; water-soluble carriers; PVP; antioxidants; pH buffers and / or salt buffers; solubility modifiers; penetration enhancers; citric acid and its salts; tartaric acid and its salts; phosphoric acid and its salts; ethylenediaminetetraacetic acid (EDTA) and its salts; and mixtures thereof.
8. the diluent is selected from the group consisting of water, acetone, ethanol, polyethylene glycol, polypropylene glycol, 1,3-propanediol, butane-1,3-diol, isopropyl myristate, isopropyl palmitate, mineral oil, ethoxylated isostearyl alcohol, polyoxylated isostearyl alcohol, and polyoxyethylene sorbitol fatty acid esters; the carrier is selected from the group consisting of glycerol, mannitol, sorbitol, xylitol, and erythritol, starch, dextrin, calcium sulfate, lactose, mannitol, sucrose, sodium chloride, glucose, urea, kaolin, microcrystalline cellulose, and aluminum silicate; the humectant and binder is selected from the group consisting of water, glycerin, polyethylene glycol, ethanol, propanol, starch syrup, dextrin, syrup, honey, glucose solution, acacia syrup, gelatin syrup, sodium carboxymethylcellulose, purple gum, methylcellulose, potassium phosphate, and polyvinylpyrrolidone; the disintegrant is selected from the group consisting of dry starch, alginate, agar powder, sodium bicarbonate, calcium carbonate, polyoxyethylene sorbitol fatty acid esters, sodium lauryl sulfonate, methylcellulose, and ethylcellulose; The anti-disintegrant is selected from the group consisting of sucrose, glyceryl tristearate, cocoa butter, and hydrogenated oils. the absorption enhancer is selected from the group consisting of quaternary ammonium salts and sodium lauryl sulfate; The lubricant is selected from the group consisting of talc, silicon dioxide, corn starch, stearic acid, boric acid, liquid paraffin, and polyethylene glycol. the water-soluble carrier is selected from the group consisting of PEG 4000 and PEG 6000; or 8. The pharmaceutical formulation of claim 7, wherein the antioxidant is selected from the group consisting of vitamin C and vitamin E.
9. The pharmaceutical formulation according to any one of claims 4 to 8, wherein the formulation is an inhalation formulation or an aerosol formulation.
10. The pharmaceutical formulation according to any one of claims 4 to 9, wherein the formulation contains 3,3',4,4',5,5'-hexahydroxy-trans-stilbene in an amount of 100 µg to 10 g.
11. The pharmaceutical formulation of any one of claims 4 to 10, wherein the formulation contains 3,3',4,4',5,5'-hexahydroxy-trans-stilbene in an amount of 10 mg to 1000 mg.
12. The pharmaceutical formulation of any one of claims 4 to 11, wherein the formulation is contained in a metered dose inhaler, a dry powder inhaler, or a nebulizer.
13. The pharmaceutical formulation of any one of claims 4 to 11, wherein the formulation contains 0.001% to 50% w / v of 3,3',4,4',5,5'-hexahydroxy-trans-stilbene.
14. Use of 3,3',4,4',5,5'-hexahydroxy-trans-stilbene for the manufacture of a pharmaceutical formulation according to any one of claims 4 to 13 for the treatment and prevention of COVID-19 in a human subject.
15. 15. The use according to claim 14, wherein the pharmaceutical preparation inhibits the replication of SARS-CoV-2 and / or prevents the cytopathic effects of active viral replication of SARS-CoV-2 and / or prevents viral infection by SARS-CoV-2 via the airborne route of transmission.