antiviral agents

Mannosylerythritol lipid (MEL) is used to create safe antiviral agents that protect both living organisms and objects from viral infections by inactivating viruses, addressing the need for safer antiviral solutions.

JP7782545B2Active Publication Date: 2025-12-09TOYOBO CO LTD
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Patent Information

Application Number
JP2023505256
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-09-21
Filing Date
2022-02-18
Publication Date
2025-12-09
Estimated Expiration
2042-02-18

AI Technical Summary

Technical Problem

There is a strong demand for antiviral agents that are safe for both living organisms and objects, as existing methods like heat, ultraviolet light, and chemical treatments can be harmful and unsuitable for various applications, especially in pandemic situations.

Method used

Utilizing mannosylerythritol lipid (MEL) as an active ingredient in antiviral agents, which demonstrates excellent antiviral effects and is highly safe for living organisms.

Benefits of technology

MEL-based antiviral agents effectively inactivate viruses on both articles and living organisms, providing broad-spectrum antiviral protection without causing harm.

✦ Generated by Eureka AI based on patent content.

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Abstract

Provided is an antiviral agent that has an improved safety to living organisms and is appropriately applicable not only to goods but also to living organisms. This antiviral agent, which comprises a mannosylerythritol lipid (MEL) as an active ingredient preferably at a content of 0.000001-100 wt%, is applicable to both living organisms and goods.
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Description

[Technical Field]

[0001] The present invention relates to an antiviral agent. More specifically, the present invention relates to an antiviral agent that is suitable for application not only to articles but also to living organisms and is highly safe for living organisms. [Background technology]

[0002] Viruses are classified as non-cellular organisms, distinct from living organisms, and multiply by infecting the host cells of mammals, birds, and other hosts. Viruses are the cause of infectious diseases such as foot-and-mouth disease and avian influenza, and are becoming a social problem. Recently, with improvements in living environments and changes in hygiene awareness, there has been a demand for the development of substances with excellent antiviral and virus-inactivating properties that can inactivate viruses present in the environment.

[0003] To prevent viral infections, various methods for inactivating viruses in the environment have been investigated. Examples include physical treatments such as heat and ultraviolet light, as well as chemical treatments such as chlorine bleach and peroxides. These treatments can potentially damage living organisms and objects, making them difficult to use safely and in a variety of situations. Therefore, there is a strong demand for antiviral or virus inactivating agents that are safer for living organisms and can be applied to both objects and living organisms, particularly in pandemic situations.

[0004] Meanwhile, mannosylerythritol lipid (MEL) is a natural surfactant produced by yeast, and various physiological actions (Non-Patent Document 1) and antibacterial actions (Patent Document 1) have been reported. Furthermore, its use as a topical agent or cosmetic has been reported to improve rough skin (Patent Document 2). As such, MEL can be said to be a material that has various physiological activities and is also highly safe for living organisms. However, the antiviral or virus inactivating actions of MEL have not yet been verified. [Prior art documents] [Patent documents]

[0005] [Patent Document 1] Japanese Patent Application Publication No. 57-145896 [Patent Document 2] WO2007 / 060956 publication [Non-patent literature]

[0006] [Non-Patent Document 1] Journal of Biosciense and Bioengineering,94,187(2002) [Non-patent document 2] Biologicals,25,3,p289-297(1997) Summary of the Invention [Problem to be solved by the invention]

[0007] An object of the present invention is to provide an antiviral agent that is suitable for application not only to articles but also to living organisms and is highly safe for living organisms. [Means for solving the problem]

[0008] The present inventors discovered that MEL, a type of biosurfactant, has excellent antiviral effects, and completed the present invention.

[0009] Specific embodiments of the present invention are exemplified as follows. Item 1. An antiviral agent containing mannosylerythritol lipid (MEL) as an active ingredient. Item 2. The antiviral agent according to Item 1, wherein the content of mannosylerythritol lipid (MEL) is 0.000001 to 100% by weight. Item 3. The antiviral agent according to Item 2, wherein the content of mannosylerythritol lipid (MEL) is 0.000001 to 80% by weight. Item 4. The antiviral agent according to Item 2, wherein the content of mannosylerythritol lipid (MEL) is 0.0001 to 10% by weight. Item 5. The antiviral agent according to any one of Items 1 to 4, wherein the mannosylerythritol lipid (MEL) is any one selected from the group consisting of MEL-A, MEL-B, MEL-C, and MEL-D. Item 6. The antiviral agent according to any one of Items 1 to 5, wherein the mannosylerythritol lipid (MEL) has a structure of formula (2). [ka] (In the formula, R1 is an aliphatic acyl group having 4 to 24 carbon atoms and may be the same or different; R2 is hydrogen or an acetyl group and may be the same or different; and R3 is hydrogen or an aliphatic acyl group having 2 to 24 carbon atoms.) Item 7. The antiviral agent according to any one of Items 1 to 5, wherein the mannosylerythritol lipid (MEL) has a structure of formula (3). [ka] (In the formula, R1 is an aliphatic acyl group having 4 to 24 carbon atoms and may be the same or different; R2 is hydrogen or an acetyl group and may be the same or different; and R3 is hydrogen or an aliphatic acyl group having 2 to 24 carbon atoms.) Item 8. The antiviral agent according to any one of Items 1 to 5, wherein the mannosylerythritol lipid (MEL) is MEL-B. Item 9. The antiviral agent according to Item 8, wherein MEL-B has a structure of formula (4). [ka] (In the formula, R1's are saturated or unsaturated, straight-chain or branched aliphatic acyl groups having 2 to 20 carbon atoms, and may be the same or different.) Item 10. The antiviral agent according to Item 8, wherein MEL-B has a structure of formula (5). [ka] (In the formula, R1's are saturated or unsaturated, straight-chain or branched aliphatic acyl groups having 2 to 20 carbon atoms, and may be the same or different.) Item 11. The antiviral agent according to any one of Items 1 to 10, wherein the target virus is an enveloped virus. Item 12. The antiviral agent according to Item 11, wherein the target virus is an influenza virus. Item 13. The antiviral agent according to Item 11, wherein the target virus is a human coronavirus. Item 14. The antiviral agent according to any one of Items 1 to 13, which is used for application to a living body. Item 15. The antiviral agent according to any one of Items 1 to 13, which is used for application to an article. Item 16. A cosmetic comprising the antiviral agent according to any one of Items 1 to 14. Item 17. A disinfectant containing the antiviral agent according to any one of items 1 to 15. Item 18. A cleaning agent containing the antiviral agent according to any one of items 1 to 15. [Effects of the Invention]

[0010] By utilizing the composition containing MEL of the present invention, it is possible to provide an antiviral agent that is suitable for application not only to articles but also to living organisms and is therefore safer for living organisms. [Brief explanation of the drawings]

[0011] [Figure 1] FIG. 1 shows the results of verifying the virus inactivation effect on human coronavirus in Example 1. [Figure 2] FIG. 1 shows the results of verifying the virus inactivation effect on influenza viruses in Example 1. DETAILED DESCRIPTION OF THE INVENTION

[0012] In the present invention, an antiviral agent is a drug that is effective in treating or preventing viral infections by suppressing viral proliferation or by eliminating the infectivity of viruses attached to living organisms or objects. It is believed that by destroying the external tissue of viruses, they lose their ability to invade and replicate in living cells, rendering them inactive. Biosurfactants are a general term for substances produced by living organisms that possess surface-active and emulsifying properties. They not only exhibit excellent surface-active properties and high biodegradability, but also have various physiological effects, potentially exhibiting behaviors and functions different from those of synthetic surfactants. Currently, biosurfactants are classified into five types: glycolipids, acyl peptides, phospholipids, fatty acids, and polymer compounds. Glycolipid-type biosurfactants consist of carbohydrate and fatty acid moieties, and a preferred example is mannosylerythritol lipid (MEL). The type of MEL used in the present invention is not particularly limited, but examples include MEL-A, MEL-B, MEL-C, and MEL-D. Of these, MEL-B is particularly preferred.

[0013] The structure of MEL is shown in general formula (1). In general formula (1), the substituents R1 may be the same or different and are aliphatic acyl groups having 4 to 24 carbon atoms. MEL is classified into four types, MEL-A, MEL-B, MEL-C, and MEL-D, based on the presence or absence of acetyl groups at the 4th and 6th positions of mannose.

[0014] [ka]

[0015] Specifically, in MEL-A, in general formula (1), the substituents R2 and R3 are both acetyl groups. In MEL-B, in general formula (1), the substituent R2 is an acetyl group and the substituent R3 is hydrogen. In MEL-C, in general formula (1), the substituent R2 is hydrogen and the substituent R3 is an acetyl group. In MEL-D, in general formula (1), the substituents R2 and R3 are both hydrogen.

[0016] The number of carbon atoms in the substituent R1 in the above MEL-A to MEL-D varies depending on the number of carbon atoms in the fatty acids constituting the triglyceride, which is the oil or fat contained in the MEL-production medium, and the degree of fatty acid assimilation by the MEL-producing bacterium used. Furthermore, when the triglyceride contains an unsaturated fatty acid residue, it is possible to include an unsaturated fatty acid residue as the substituent R1, as long as the MEL-producing bacterium does not assimilate the double bond portion of the unsaturated fatty acid. As described above, the resulting MEL is usually in the form of a mixture of compounds with different fatty acid residue portions in the substituent R1.

[0017] Preferred examples of the antiviral agent of the present invention include MEL having the structure shown in general formula (2) or general formula (3). In general formulas (2) and (3), the substituents R1 may be the same or different and are aliphatic acyl groups having 4 to 24 carbon atoms, preferably 8 to 14 carbon atoms. The substituents R2 may be the same or different and are hydrogen or an acetyl group. The substituent R3 is hydrogen or an aliphatic acyl group having 2 to 24 carbon atoms.

[0018] The substituent R1 in the general formula (2) and the general formula (3) may be a saturated aliphatic acyl group or an unsaturated aliphatic acyl group, and is not particularly limited. When the group has an unsaturated bond, it may have, for example, multiple double bonds. The carbon chain may be linear or branched. In the case of an oxygen atom-containing hydrocarbon group, the number and positions of the oxygen atoms contained therein are not particularly limited.

[0019] [ka]

[0020] [ka]

[0021] The fatty acid introduced into the erythritol moiety of MEL may be a monocarboxylic acid of a long-chain hydrocarbon. It may be either a saturated or unsaturated fatty acid. In the case of an unsaturated fatty acid, it may have multiple double bonds. The carbon chain may be either linear or branched. Furthermore, a fatty acid derivative, which is a derivative of a fatty acid, may be used in the present invention, or a mixture of a fatty acid and a fatty acid derivative may be used in the present invention. The fatty acid or fatty acid derivative introduced into the erythritol moiety of MEL is preferably derived from oils, higher fatty acids, or synthetic esters.

[0022] The MEL preferably used in the present invention is more preferably MEL-B having a structure represented by general formula (4) or general formula (5), and even more preferably MEL-B having a structure represented by general formula (4).

[0023] [ka]

[0024] [ka]

[0025] In general formula (4) and general formula (5), the substituents R1 may be the same or different and are aliphatic acyl groups having 4 to 24 carbon atoms.

[0026] In the present invention, one type of MEL may be used alone, but two or more types of MEL may also be used in combination.

[0027] The viruses to which the antiviral agent of the present invention can be applied are not particularly limited, and can be applied to both enveloped viruses (viruses with an envelope) and non-enveloped viruses (viruses without an envelope). Examples of enveloped viruses include influenza viruses (e.g., types A and B), rubella viruses, Ebola viruses, coronaviruses, measles viruses, varicella-zoster viruses, herpes simplex viruses, mumps viruses, arboviruses, respiratory syncytial viruses, SARS viruses, hepatitis viruses (e.g., hepatitis B viruses, hepatitis C viruses), yellow fever viruses, AIDS viruses, rabies viruses, hantaviruses, dengue viruses, Nipah viruses, and lyssaviruses. Examples of non-enveloped viruses include adenoviruses, noroviruses, rotaviruses, human papillomaviruses, polioviruses, enteroviruses, coxsackieviruses, human parvoviruses, encephalomyocarditis viruses, polioviruses, and rhinoviruses. It is preferable to target enveloped viruses, and among these, it is particularly preferable to target influenza viruses (for example, types A and B) and coronaviruses.

[0028] The antiviral agent of the present invention can be widely used in various fields requiring antiviral properties. For example, it can be used in various fields such as industry, cleaning, medicine, food, and daily necessities. The antiviral agent of the present invention can be used both in applications where it is applied to living organisms and in applications where it is applied to articles.

[0029] In the present invention, the term "living body" refers to tissues, cells, etc. derived from a living body. When applied to a living body, the use of the present invention can be, for example, cosmetics, disinfectants, cleaning agents, etc. In this case, the subject of application is not particularly limited, but suitable examples include various mammals such as humans, monkeys, mice, rats, dogs, cats, rabbits, pigs, horses, cows, sheep, goats, and deer.

[0030] By applying the antiviral agent of the present invention to a living body, the antiviral effect and / or virus inactivation effect can be particularly exerted at the site where the active ingredient comes into contact.

[0031] The form of the antiviral agent of the present invention is not particularly limited, and depending on the intended use of the antiviral agent of the present invention, it can take a form that is commonly used for each intended use.

[0032] When the application is a cosmetic product, the formulation may be, for example, a liquid, a gel, a cream, an ointment, or a stick.

[0033] When the application is a disinfectant or a cleaning agent, the form can be any form, such as a liquid (solution, emulsion, suspension, etc.), a semi-solid (gel, cream, paste, etc.), or a solid (tablet, particulate agent, capsule, film, kneaded material, molten solid, waxy solid, elastic solid, etc.). For example, when applied to the oral cavity, more specific examples include dentifrices (toothpaste, liquid dentifrice, liquid dentifrice, powder dentifrice, etc.), mouthwashes, liniments, patches, mouth fresheners, and foods (e.g., chewing gum, tablet candies, candies, gummies, films, lozenges, etc.). When applied to the nasal cavity, more specific examples include spray-type nasal drops, etc. When applied to the skin, examples include soap, body wash, shampoo, rinse, spray, etc.

[0034] The antiviral agent of the present invention may further contain other ingredients as needed. These other ingredients are not particularly limited as long as they are suitable for incorporation into cosmetics, disinfectants, detergents, etc. Examples include oil-based, aqueous, powder-based, and polymer-based carriers, carriers such as alumina and silica, solvents such as water and alcohol, dispersants such as sodium polyacrylate, emulsifiers such as glycerin fatty acid esters and lecithin, buffers such as citrate, stabilizers such as sodium sulfite, excipients such as mannitol, binders such as crystalline cellulose, disintegrants such as carmellose calcium, lubricants such as magnesium stearate and talc, thickeners such as gum arabic and xanthan gum, humectants such as glycerin, chelating agents such as EDTA, colorants, and fragrances.

[0035] The content of MEL in the antiviral agent of the present invention varies depending on the type of active ingredient, application, mode of use, target of application, condition of the target of application, etc., and is not limited thereto, but can be, for example, 0.000001 to 100 wt%, preferably 0.000001 to 80 wt%, more preferably 0.00001 to 80 wt%, even more preferably 0.0001 to 50 wt%, and particularly preferably 0.0001 to 10 wt%.

[0036] When applied to articles, examples of uses include disinfectants, cleaning agents, etc. In this case, the objects of application are not particularly limited, and examples include industrial products and raw materials used in various fields.

[0037] In the present invention, the term "article" refers to any object other than a living body that may be used in daily life. Specific examples include office automation equipment, home appliances, air conditioning equipment, vacuum cleaners, desks, chairs, sofas, benches, windows, handrails, handles, seats, automatic ticket gates, automatic ticket vending machines, vending machines, doors, fences, handrails, tableware, cooking utensils, packaging film, packaging bags, bottles, bottles, packaging packs, sinks, toilets, stationery, books, shelves, toothbrushes, mirrors, air conditioning filters, masks, coats, jackets, trousers, skirts, dress shirts, knit shirts, blouses, sweaters, cardigans, nightwear, underwear, diapers, supports, socks, tights, stockings, hats, scarves, mufflers, collars, stoles, gloves, clothing linings, clothing interlinings, clothing padding, work clothes, uniforms, school uniforms and other clothing, curtains, screen doors, bedding, bedding batting, bedding covers, pillowcases, sheets, mats, carpets, towels, handkerchiefs, wall cloth, band-aids, bandages, etc., but are not limited to these.

[0038] By applying the antiviral agent of the present invention to an article, it is possible to exert an antiviral effect and / or a virus inactivation effect, particularly at the site where the active ingredient comes into contact.

[0039] The dosage form of the antiviral agent of the present invention is not particularly limited and can be appropriately selected depending on the intended use. Examples of dosage forms include liquid formulations such as solutions, emulsions, suspensions, dispersions, and aerosols, and solid or semi-solid formulations such as wettable powders, dusts, granules, microgranules, and flowable formulations.

[0040] The antiviral agent of the present invention may further contain other ingredients as necessary. These other ingredients are not particularly limited as long as they are suitable for use in, for example, cleaners and disinfectants for articles, and examples include oil-based, aqueous, powder-based, and polymer-based carriers, carriers such as alumina and silica, solvents such as water and alcohol, dispersants such as sodium polyacrylate, emulsifiers such as glycerin fatty acid esters and lecithin, buffers such as citrate, stabilizers such as sodium sulfite, excipients such as mannitol, binders such as crystalline cellulose, disintegrants such as carmellose calcium, lubricants such as magnesium stearate and talc, thickeners such as gum arabic and xanthan gum, humectants such as glycerin, chelating agents such as EDTA, colorants, and fragrances.

[0041] The present invention will be described in more detail below based on examples, although the present invention is not limited to these examples. [Example]

[0042] Example 1 MEL suspended in purified water was used as a test sample, and the virus inactivation effect was evaluated by the following test method.

[0043] The sample solution used in the human coronavirus inactivation test was a suspension of MEL-B in purified water at a concentration of 0.005% (w / v) or 0.01% (w / v).

[0044] The sample solution used in the influenza virus inactivation test was a suspension of MEL-B in purified water at a concentration of 0.01% (w / v) or 0.1% (w / v).

[0045] The test viruses used were Human coronavirus 229E ATCC VR-740 (human coronavirus) and Influenza A virus (HINI) A / PR / 8 / 34 ATCC VR-1469 (influenza virus).

[0046] MRC-5 cells (ATCC CCL-171 strain) were used to culture human coronaviruses. The maintenance medium was Eagle's MEM medium "Nissui" (1) (manufactured by Nissui Pharmaceutical Co., Ltd.) supplemented with 2% fetal bovine serum, adjusted to approximately pH 8.0.

[0047] Influenza virus was cultured in MDCK (NBL-2) cells, strain JCRB9029. The maintenance medium had the following composition and was adjusted to a pH of approximately 8.0. Eagle MEM Medium "Nissui" (1) 1000mL 10% NaHCO3 (14 mL) L-glutamine (30g / L) 9.8mL 100x MEM Vitamin Solution 30mL 10% albumin 20mL 20 mL of 0.25% trypsin

[0048] The virus culture medium was centrifuged, and 0.1 mL of the supernatant was added to 1 mL of the sample solution, which was then allowed to react for 1 or 15 minutes at room temperature. As a control, 0.1 mL of purified water was allowed to react with the sample solution for 0 or 15 minutes.

[0049] The above-mentioned solution was inoculated into cultured cells and cultured in maintenance medium for 7 days under 5% CO2 conditions. After culturing, the presence or absence of morphological changes in the cells (cytopathic effect) was observed, and the virus inactivation effect per ml (TCID50 / ml) was calculated by calculating the concentration of the sample solution at which 50% of the cultured cells were infected with the virus. The results are shown in Figures 1 and 2.

[0050] At 0.005% MEL, the human coronavirus infectivity titer was reduced by about one order of magnitude. Furthermore, at 0.01% MEL, the virus infectivity titer was reduced by more than two orders of magnitude. From the above, it can be seen that MEL has an antiviral or virus-inactivating effect against human coronaviruses even at very low concentrations.

[0051] Under conditions of 0.01% and 0.1% MEL, the infectivity titer of influenza virus was reduced by about one order of magnitude. The antiviral effect or virus inactivation effect of the present invention is thought to be the result of physicochemical interaction between the viral lipid membrane and the surfactant activity of MEL.

[0052] Example 2 Examples of formulations for disinfectants according to the present invention are shown below. MEL-B 0.1% (w / v) Bis-PEG / PPG-[14-20] / [5-20]-dimethicone 1% (w / v) Ethanol 80% (w / w) Purified water present in an amount that brings the total composition to 100% by weight

[0053] Example 3 Examples of formulations for disinfectants according to the present invention are shown below. MEL-B 0.1% (w / v) Ethanol 35% (w / v) Purified water present in an amount that brings the total composition to 100% by weight

[0054] Example 4 An example of a formulation for a lotion of the present invention is shown below (w / v %). Polyoxyethylene (60EO) hydrogenated castor oil 0.03% Polyethylene glycol 4000 1% Ethanol 8% 1,3-butylene glycol 7% 5% glycerin Carboxyvinyl polymer 0.02% Acrylic acid / alkyl methacrylate copolymer 0.16% Olive oil 0.4% Methylpolysiloxane 0.4% Potassium hydroxide 0.065% ·Fragrance 0.1% Dipotassium glycyrrhizinate 0.1% Carboxymethyl-β-glucan sodium 0.1% MEL-B 0.01% Purified water present in an amount that brings the total composition to 100% by weight

[0055] Example 5 Examples of formulations for emulsions of the present invention are shown below (w / v %). Stearic acid 0.24% Sorbitan monostearate 0.5% Cetyl alcohol 0.5% POE(45) - 0.7% stearate Cetyl palmitate 0.25% Vaseline 3.75% Liquid paraffin 0.9% Solid paraffin 1.6% PEG4000 2.25% 1,3-butylene glycol 3% Methyl parahydroxybenzoate 0.3% Glycerin 3% Xanthan gum 0.03% Alkyl-modified carboxyvinyl polymer 0.15% Triethanolamine 0.15% MEL-B 0.1% Sucrose laurate 0.05% 1,3-butanediol 10% Purified water present in an amount that brings the total composition to 100% by weight

[0056] Example 6 The following shows a formulation example (wt %) for the article detergent of the present invention. Sodium hydroxide 3% Sodium methacrylate 5% Propylene glycol monomethyl ether 4% ·Sodium gluconate 0.5% ·Tetrasodium ethylenediaminetetraacetate 0.5% Sodium decanoate 0.7% Sodium 2-ethylhexanoate 2% MEL-B 1% Tocopherol acetate 0.01% Sodium sulfite 2% Xanthan gum 0.3%

[0057] Example 7 Examples of formulations for animal detergents according to the present invention are shown below (w / v%). Sodium benzoate 0.4% Disodium edetate 0.05% 1,3-butylene glycol 2% O-[2-hydroxy-3-(trimethylammonio)propyl]hydroxyethylcellulose chloride 0.5% ·Comicadopropyl propyl betaine solution 30% Sodium cocoyl alanine solution 30% Coconut oil fatty acid monoethanolamide 2.5% Glycerin 2.5% Phenoxyethanol 0.25% MEL-B 2.0% Silicone emulsion (dimethiconol) 3% Purified water present in an amount that brings the total composition to 100% by weight [Industrial Applicability]

[0058] According to the present invention, by utilizing a composition containing MEL, it is possible to provide an antiviral agent that is suitable for application not only to articles but also to living organisms and is highly safe for living organisms. It is expected to be effective in preventing viral infections in various industrial fields such as industry, cleaning, medicine, food, and daily necessities.

Claims

1. An antiviral agent containing mannosylerythritol lipid (MEL) as an active ingredient, the virus is one or more enveloped viruses selected from the group consisting of influenza virus, rubella virus, Ebola virus, coronavirus, measles virus, varicella-zoster virus, herpes simplex virus, mumps virus, arbovirus, respiratory syncytial virus, SARS virus, hepatitis virus, yellow fever virus, AIDS virus, rabies virus, hantavirus, dengue virus, Nipah virus, and lyssavirus, or one or more non-enveloped viruses selected from the group consisting of adenovirus, norovirus, rotavirus, human papillomavirus, poliovirus, enterovirus, coxsackievirus, human parvovirus, encephalomyocarditis virus, poliovirus, and rhinovirus; MEL is any one selected from the group consisting of MEL-A, MEL-B, MEL-C and MEL-D; Antiviral agent.

2. 2. The antiviral agent according to claim 1, wherein the content of mannosylerythritol lipid (MEL) is 0.000001 to 100% by weight.

3. 3. The antiviral agent according to claim 2, wherein the content of mannosylerythritol lipid (MEL) is 0.000001 to 80% by weight.

4. 3. The antiviral agent according to claim 2, wherein the content of mannosylerythritol lipid (MEL) is 0.0001 to 10% by weight.

5. The antiviral agent according to any one of claims 1 to 4, wherein the mannosylerythritol lipid (MEL) has a structure represented by formula (2). 【Chemistry 1】 (In the formula, R1 is an aliphatic acyl group having 4 to 24 carbon atoms and may be the same or different; R2 is hydrogen or an acetyl group and may be the same or different; and R3 is hydrogen or an aliphatic acyl group having 2 to 24 carbon atoms.)

6. The antiviral agent according to any one of claims 1 to 4, wherein the mannosylerythritol lipid (MEL) has a structure of formula (3). 【Chemistry 2】 (In the formula, R1 is an aliphatic acyl group having 4 to 24 carbon atoms and may be the same or different; R2 is hydrogen or an acetyl group and may be the same or different; and R3 is hydrogen or an aliphatic acyl group having 2 to 24 carbon atoms.)

7. The antiviral agent according to any one of claims 1 to 4, wherein the mannosylerythritol lipid (MEL) is MEL-B.

8. The antiviral agent according to claim 7, wherein MEL-B has a structure of formula (4). 【Transformation 3】 (In the formula, R1's are saturated or unsaturated, straight-chain or branched aliphatic acyl groups having 2 to 20 carbon atoms, and may be the same or different.)

9. The antiviral agent according to claim 7, wherein MEL-B has a structure of formula (5). 【Chemistry 4】 (In the formula, R1's are saturated or unsaturated, straight-chain or branched aliphatic acyl groups having 2 to 20 carbon atoms, and may be the same or different.)

10. The antiviral agent according to any one of claims 1 to 9, wherein the target virus is an enveloped virus.

11. The antiviral agent according to claim 10, wherein the target virus is an influenza virus.

12. The antiviral agent according to claim 10, wherein the target virus is a human coronavirus.

13. The antiviral agent according to any one of claims 1 to 12, which is used for application to a living body.

14. The antiviral agent according to any one of claims 1 to 12, which is used for application to an article.

15. A cosmetic comprising the antiviral agent according to any one of claims 1 to 13.

16. A disinfectant containing the antiviral agent according to any one of claims 1 to 14.

17. A cleaning agent containing the antiviral agent according to any one of claims 1 to 14.

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