Broad spectrum synergistic antibacterial composition
Novel synergistic antimicrobial compositions of organic acids and hydrazones address the need for safe, broad-spectrum antimicrobials by enhancing activity and compatibility with surfactants, reducing environmental toxicity, and minimizing resistance.
Patent Information
- Application Number
- JP2022518379
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-09-17
- Filing Date
- 2020-09-18
- Publication Date
- 2025-05-20
- Estimated Expiration
- 2040-09-18
AI Technical Summary
There is a need for alternative antimicrobial agents that are potent, broad-spectrum, and safe, with improved stability in various surfactant formulations, effective against microbial growth at mild pH, and less toxic to the environment to replace traditional antimicrobial agents like cationic compounds and formaldehyde releasers.
Development of novel bio-based synergistic antimicrobial compositions comprising organic acids and hydrazones that exhibit complementary antimicrobial activity, compatible with anionic and amphoteric surfactants, and designed to degrade rapidly, minimizing environmental persistence and resistance.
The compositions provide effective broad-spectrum antimicrobial activity, are less toxic to aquatic organisms, and reduce the risk of antimicrobial resistance, while maintaining compatibility with different surfactant formulations and expanding pH range capability.
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Abstract
Description
[Technical field]
[0001] (CROSS REFERENCE TO RELATED APPLICATIONS) This application claims priority to U.S. Provisional Patent Application No. 62 / 902,630, filed September 19, 2019, the entire contents of which are expressly incorporated herein by reference.
[0002] The disclosed invention relates generally to novel synergistic antimicrobial compositions. Specifically, the invention relates to compositions comprising organic acids (hydroxamic acids, carboxylic acids) and hydrazones that together exhibit complementary synergistic fungicidal and bactericidal activity in formulations containing surfactants. [Background technology]
[0003] Broad spectrum antimicrobial compositions are an essential category of biocides, used as antibiotic treatments, disinfectants, cleaners, hand sanitizers, and preservatives, among others. Traditional antimicrobial agents used as antibiotics, disinfectants, and preservatives have recently come under scrutiny for their human and environmental hazards. Preservatives for non-food (e.g., household and personal care products, paints, coatings) have historically been, for example, formaldehyde, tetraalkyl (or benzyl) ammonium compounds, or isothiazolinone-based, all of which are contact allergens and exhibit high aquatic toxicity in addition to many other hazards. These human and environmental hazards of current antimicrobial agents, combined with the growing threat of antibiotic resistance, have created a need for improved products and strategies to achieve microbial control.
[0004] Applications for broad spectrum antimicrobial compositions compatible with ionic surfactants are numerous and include topical antibiotics for livestock, agrochemical compositions for crops, disinfectants and cleaners for food processing, and preservatives for food and non-food produce. Preservatives for non-food products (e.g., household and personal care products, paints, coatings) have historically been formaldehyde or isothiazolinone-based, both of which are contact allergens and exhibit high aquatic toxicity in addition to many other hazards, including carcinogenicity and reproductive and developmental hazards. Cationic antimicrobials (e.g., traditional quaternary ammonium compounds, bisbiguanides, etc.) perform well in formulations containing nonionic surfactants, but are generally inactivated and incompatible in formulations containing anionic and amphoteric surfactants, which constitute a large category of consumer, industrial, and agricultural products. Preserving these formulated compositions at mild pH (6-8) is particularly challenging, as this pH is amenable to microbial growth and causes inactivation of traditional preservatives such as organic acids. Summary of the Invention [Problem to be solved by the invention]
[0005] Thus, there is an urgent and continuing industrial need for alternative antimicrobial agents that are potent, broad spectrum, and safe. There is a particular need for new antimicrobial agents that are stable in a variety of surfactant formulations, disinfectants, odor control agents, and process plant cleaners to replace traditional antimicrobial agents such as conventional cationic compounds, isothiazolinones, and formaldehyde releasers. [Means for solving the problem]
[0006] To address these industrial challenges, the present invention provides novel bio-based synergistic antimicrobial compositions that are non-food effective using low toxicity and environmentally friendly ingredients. The compositions of the present invention have demonstrated surprising synergistic activity against microbial combinations that have utility in agriculture and industry as broad spectrum disinfectants, preservatives, industrial sanitation, and pathogen treatment, among other applications. In a preferred embodiment, the present invention relates to compositions comprising a mixture of at least one organic acid and at least one hydrazone that exhibit antimicrobial biological activity in a variety of applications. In another embodiment, the present invention relates to a method of reducing bacterial and fungal contamination by applying an effective amount of the compositions of the present invention to a designated area or object. Effect of the Invention
[0007] An advantage of the present invention is that it provides novel antimicrobial compositions that are useful in a range of industrial applications, such as livestock treatments, industrial cleaners, cleaning concentrates, detergents, medical devices, personal care products, hand washes, pesticide compositions for crops, disinfectants for food treatments, preservatives for food and non-food produce, and a range of other categories.
[0008] Another advantage of the present invention is that it provides a novel, highly potent, broad spectrum antimicrobial composition that performs in challenging formulations containing anionic and amphoteric surfactants.
[0009] A further advantage of the present invention is that it provides a biodegradable, broad spectrum antimicrobial composition that does not persist in the environment and is much less toxic to aquatic organisms than conventional compositions.
[0010] Yet another advantage of the present invention is that it provides a novel, renewable supply, antimicrobial composition that is non-sensitizing at the low concentrations utilized, thereby minimizing the risk of development of antimicrobial resistance because it is less prone to generating resistant strains in the environment.
[0011] An additional advantage of the present invention is that it provides novel cationic antimicrobial compositions for home and personal care formulations that are not inactivated when mixed with anionic and amphoteric surfactants.
[0012] A further advantage of the present invention is that it provides novel antimicrobial compositions that have expanded compatibility with different types of surfactants, provide a broad spectrum of activity against many different types of microorganisms, enhance the rate of antimicrobial activity, and expand the pH range capability.
[0013] This Summary is provided to introduce a selection of concepts in a simplified form that are further described below in the Detailed Description. This Summary is not intended to identify all of the key or essential features of the claimed subject matter, nor is it intended to limit the scope of the claimed subject matter. [Brief description of the drawings]
[0014] [Figure 1] FIG. 1 shows the germicidal properties of hand sanitizing formulations comprising compositions of the invention, which are further described in the Examples below. The Y-axis shows the log reduction in cell forming units per mL (CFU / mL). The X-axis represents the pH of the various formulations. Data for benzaldehyde guanylhydrazone 7+CHA is shown as a black line (BGH+CHA), data for benzaldehyde guanylhydrazone 7 (BGH) is shown as a dotted line, and data for CHA only is shown as a grey line.
[0015] [Diagram 2] 2 shows the surface disinfection properties of an exemplary formulation of the composition of the present invention. The Y-axis shows LogCFU / tile. The X-axis shows time in minutes. The dotted line shows data obtained with water only (water), the dashed line shows data obtained with CG, and the solid line shows data obtained with BAC.
[0016] [Diagram 3]3A through 3F show graphs of the effect of exposure to different compositions on microorganisms. FIG. 3A shows results for Escherichia coli. FIG. 3B shows results for Staphylococcus aureus. FIG. 3B shows results for Pseudomonas aeruginosa. FIG. 3D shows results for Aspergillus brasiliensis. FIG. 3E shows results for Burkholderia cepacia. FIG. 3F shows results for Candida albicans. The Y-axis shows Log10 CFU / mL. The X-axis shows time in days. The solid line shows the limit of detection, the large dashed and dotted line shows data for raw spray cleaner base, the dashed line shows data for spray cleaner base with 0.2 wt% CG, and the dotted line shows data for spray cleaner base with 0.1 wt% CG and 0.1 wt% sodium benzoate.
[0017] [Figure 4] Figures 4A and 4B show some of the molecules tested in this application and the numbers given to each compound. Figure 4A shows a hydroxamic acid, caprylhydroxamic acid or hydroxamic acid, where 1R is H, 2R is methyl, 3R is ethyl, 4R is n-propyl, 5R is isopropyl, and 6R is butyl. Figure 4B shows an arylguanylhydrazone, where 7R' is H and 8R' is octyl. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0018] Unless otherwise defined herein, all technical and scientific terms used herein generally have the same meaning as commonly understood by those skilled in the art to which the present invention belongs. The definitions and terms described herein in the embodiments may or may not be used in capital letters and singular or plural form herein, and are intended to be used as a guide for those skilled in the art to make and use the present invention, and are not intended to limit the scope of the claimed invention. The mention of trade names or products herein is for the purpose of providing specific information or examples only, and does not imply any recommendation or endorsement of such products.
[0019] As used in the description of this invention and the appended claims, the singular forms "a," "an," and "the" are intended to include the plural forms as well, unless the context clearly dictates otherwise.
[0020] The term "active agent" refers to a compound or composition that exhibits substantial biological activity. For example, the biological activity can be inhibitory (e.g., less than a 1 log increase in 1-4 weeks), detersive (e.g., about a 3 log reduction in 10 minutes), or disinfectant (e.g., about a 4 log reduction in 10 minutes).
[0021] The term "antimicrobial agent" refers to an active agent that has biological activity against microorganisms, such as bacteria, fungi, and viruses, and creates an environment in which such microorganisms are reduced or eliminated. Related terms are specifically directed to particular types of microorganisms, such as "antibacterial," "antifungal," and "antiviral."
[0022] The term "biological activity" refers to the strength or ability of a compound or composition to prevent, inhibit, treat, reduce, or eliminate the growth of at least one microorganism.
[0023] The term "carrier" refers to a gel or encapsulation matrix or drug used to "carry" the active agent to the target site of activation without adversely affecting functionality. Dilution with a carrier does not significantly dilute the ultimate effectiveness of the active agent and prevents waste by minimizing overapplication of the active ingredient.
[0024] The term "complex" or "complex formation" refers to a molecular entity product formed by reversible ionic association or covalent bonding of multiple starting molecular entities. The reversible nature of the product and starting molecular entities may exist as spontaneous formation of self-assembly and disassembly within a medium containing the molecular entities.
[0025] The term "consisting essentially of" excludes additional method steps or composition components that would substantially interfere with the intended activity of the methods or compositions of the invention and that would be readily determined by one of ordinary skill in the art (e.g., from consideration of the specification or practice of the invention disclosed herein). This term may be used in place of generic terms such as "having" or "including" to more narrowly define any of the disclosed embodiments or combinations / subcombinations thereof. Additionally, it is understood that the exclusive term "consisting of" can also be substituted for these generic terms in alternative forms of the disclosed embodiments.
[0026] The term "effective amount" of a compound or property provided herein means an amount capable of performing the function of the compound or property represented by the effective amount. As pointed out herein, the exact amount required will vary from process to process, depending on recognized variables such as the compound used and various internal and external conditions observed that can be interpreted by those skilled in the art. Thus, although preferred ranges are provided herein, it may not be possible to specify an exact "effective amount". However, an appropriate effective amount can be determined by those skilled in the art using only routine experimentation.
[0027] The term "hydroxamic acid" refers to a class of compounds having the formula: I is H, aryl, benzyl, or alkyl. [ka]
[0028] The term "hydrazone" refers to a class of compounds having the formula: II , R III , and R IV are independently H, aryl, or alkyl; R V is H, aryl, alkyl, NCHR II , or N.H. 2 It is. [ka] These compounds may exist as self-assembled complexes in equilibrium with aminoguanidine and aldehyde starting materials.
[0029] The term "microorganism" refers to any bacterium, fungus (e.g., mold, yeast, mushroom, toadstool, etc.), algae (e.g., unicellular, multicellular), protozoa (e.g., free-living, parasitic), or other unicellular organism, or virus (e.g., enveloped or non-enveloped), as well as colonies, biofilms, cultures, populations, infections, etc. formed therefrom, which may or may not be pathogenic.
[0030] The term "any" or "optionally" means that the subsequently described event or circumstance may or may not occur, and the description includes instances and embodiments in which the event or circumstance occurs as well as instances and embodiments in which it does not occur. For example, the phrase "optionally comprising a self-assembled complex" means that a composition may or may not include a self-assembled complex, and the description encompasses compositions that include and do not include a self-assembled complex.
[0031] The present invention provides compositions comprising a mixture of at least one organic acid and at least one hydrazone. In embodiments, the organic acid comprises at least one carboxylic acid and / or at least one hydroxamic acid or mixtures thereof. Hydroxamic acids and hydrazones (e.g., aminoguanidine-aldehyde hydrazones) are typically non-sensitizing at the levels used in the compositions of the present invention, biodegradable, and much less toxic to aquatic organisms than traditional antimicrobial agents. The present invention solves the common problem of achieving broad spectrum antimicrobial properties, more specifically efficacy at low concentration levels in challenging non-food products using biobased, low toxicity chemicals that do not persist in the environment. The hydroxamic acids (antifungal) and hydrazones (antibacterial) described herein are narrow spectrum antimicrobial agents when used alone, but surprisingly, they have been discovered to have broad spectrum and synergistic effects when combined. The compositions described herein have been developed with human and environmental health as a top priority, as all components are renewably sourced and designed to degrade rapidly in the environment, thereby minimizing the risk of antimicrobial resistance developing.
[0032] In an embodiment, the composition includes a hydroxamic acid moiety having the formula 3, where R is aryl, benzyl, or alkyl, and R I is H, aryl, benzyl, or alkyl. [ka]
[0033] In embodiments, the aryl substituents may include mono-, di-, or tri-alkyl substituted aryl groups at the 2-, 3-, 4-, 5-, and 6-positions, or 4-alkyl (i.e., Me, Et, Pr, iPr, Bu, iBu, s-Bu, t-Bu, pentyl, hexyl, heptyl) substituted aryl groups. In embodiments, the alkyl substituents may include branched or linear arrangements of Me, Et, Pr, iPr, Bu, iBu, s-Bu, t-Bu, as well as pentyl, hexyl, heptyl, octyl. Additional alternatives for the hydroxamic acid component of the compositions of the present invention may include one or more of the following hydroxamic acids: Salicylhydroxamic acid, N-hydroxysuccinimide, benzhydroxamic acid, O-methylhydroxylamine HCl, O-benzylhydroxylamine HCl, N-benzylhydroxylamine HCl, O-tert-butylhydroxylamine HCl, acetohydroxamic acid, suberohydroxamic acid, O-ethylhydroxylamine HCl, O-phenylhydroxylamine HCl, N-hydroxyoctanamide (or caprylhydroxamic acid), N-hydroxymaleimide, N-hydroxydecanamide, N-hydroxynonamide, N-hydroxyheptanamide, N-hydroxyhexanamide.
[0034] In one embodiment, the hydroxamic acid has the formula 4 (4-alkyl-benzhydroxamic acid), where R is H, methyl, ethyl, propyl, isopropyl, or butyl. [ka] In embodiments, any combination or ratio of any of the disclosed organic acids can also be used in the compositions of the present invention.For example, benzhydroxamic acid, caprylhydroxamic acid, and 4-alkyl-benzhydroxamic acid can be mixed in a ratio of about 1:1:1, or up to about 10:1:1, or up to about 1:10:1, or up to about 1:1:10, or up to about 10:10:1, or up to about 1:10:10.
[0035] In an embodiment, the composition comprises a hydrazone having the formula:II , R III , and R IV are independently H, aryl, or alkyl; R V is H, aryl, alkyl, NCHR II , or N.H. 2 It is. [ka] In embodiments, aryl substituents may include mono-, di-, or tri-alkyl substituted aryl groups at positions 2, 3, 4, 5, and 6, or 4-alkyl (i.e., Me, Et, Pr, iPr, Bu, iBu, s-Bu, t-Bu, pentyl, hexyl, heptyl) substituted aryl groups. In embodiments, alkyl substituents may include branched or linear arrangements of Me, Et, Pr, iPr, Bu, iBu, s-Bu, t-Bu, as well as pentyl, hexyl, heptyl, octyl.
[0036] The hydrazone component of the compositions of the present invention is formed from an aldehyde component and a guanidine component. In embodiments, the aldehyde component can generally be any aldehyde selected by one of skill in the art. For example, the aldehyde can be R II = CHO, where R IIis the same as the hydrazone structure. Exemplary aldehydes of the components in the activator may include glyoxal, glutaraldehyde, benzaldehyde, phthalaldehyde, terephthalaldehyde, isophthalaldehyde, benzene-1,3,5-tricarboxaldehyde, 2-bromoisophthalaldehyde, 4-tBu-2,6-diformylphenol, 4-Me-2,6-diformylphenol, 3,5-diformyl-2-propoxyphenylboronic acid, 2,5-thiophenedialdehyde, and 2,5-furandialdehyde. Additional alternatives to aldehydes include one or more alkyl substituted benzaldehydes, aldehyde molecules having three or more aldehyde functional groups, 2,3,4-trihydroxybenzaldehyde, 3,4,5-trihydroxybenzaldehyde, syringaldehyde, vanillin acetate, vanillin, isovanillin, o-vanillin, 2,4,6-trimethoxybenzaldehyde, 4-hydroxybenzaldehyde, 2,6-dimethoxybenzaldehyde, 2,5-dimethoxybenzaldehyde, ethyl vanillin, o-anisaldehyde, e,p-tolualdehyde, or cuminaldehyde.
[0037] In embodiments, the guanidine may be represented by the formula: III , R IV , and R V is the same as the hydrazone structure. [ka] The guanidine component can include aminoguanidine and / or molecules with two or more amine functional groups (eg, 1,3-aminoguanidine).
[0038] In an embodiment, the composition of the present invention comprises a complex formed by self-assembly of an aldehyde component and a guanidine component. The complex may be formed through an ionic interaction or a covalent bond (e.g., a hydrazone bond) between the aldehyde component and the guanidine component. For example, the hydrazone may comprise a self-assembled complex of aminoguanidine and an aldehyde having the formula 7, where R II-VThe substituents are described above. [ka] In another example, the hydrazone may include a self-assembled complex of aminoguanidine and an aldehyde having the formula 8, where R I is H or octyl. [ka] The aminoguanidine, aldehyde, and hydrazone may exist in equilibrium in the mixture in various embodiments.
[0039] In an embodiment, the composition of the present invention includes at least one of cuminaldehyde guanihydrazone (CG), 4-isopropyl-3-methylphenol (43IMP), or bis(cuminaldehyde) guanylhydrazone having the formula 9. [ka]
[0040] In embodiments, the combined weight percent of the one or more organic acids and one or more hydrazones in the blended composition is less than about 2 wt%, or less than about 1 wt%, or less than about 0.5 wt%. In embodiments, the organic acid and hydrazone components are present in a mixture (amounts adjusted to a total of 100 wt%) of about 0.00001 wt% to about 100 wt% and about 100% to about 0.00001 wt%, respectively, or about 0.005 wt% to about 5 wt% and about 5 wt% to about 0.005 wt%, respectively, or about 0.01 wt% to about 1 wt% and about 1 wt% to about 0.01 wt%, respectively, or about 0.1 wt% to about 1 wt% and about 1 wt% to about 0.1 wt%, respectively. In embodiments, the ratio of the one or more organic acids to the one or more hydrazones in the mixture is from about 100:1 to about 1:100, or from about 10:1 to about 1:10, or from about 1:2 to about 2:1, or about 1:1.
[0041] Formulations in which the compositions of the present invention are particularly relevant and provide unexpected and surprising compatibility include, for example, ionic or amphoteric surfactant-containing formulations (e.g., foaming and non-foaming hand sanitizers, dishwashing liquids, household cleaning sprays, laundry detergents, personal care products including lotions, body washes, shampoos, spray and non-spray cleaners such as cleaning concentrates and dilutable concentrates, adhesives and coatings, cleaning agents, disinfectants, industrial cleaners including odor inhibitors, hoof washes, complete washes, oral antibiotics, topical preservatives, odor control, livestock treatments including feed additives, medical devices, agrochemical compositions for crops, disinfectants for food processing, preservatives for food and non-food produce, etc.). Without intending to be bound by theory, it is believed that aminoguanidine aldehyde is a cationic amphiphilic substance and that the observed synergistic antibacterial activity may result from the ability of this substance to increase the membrane permeability of microorganisms, enhancing its antifungal activity by facilitating the passage of hydroxamic acids into the cells. This synergistic effect allows low levels (less than 0.5 wt%) of the composition to be added to such formulations with efficacy comparable to current more toxic antimicrobial agents. Cationic antimicrobial agents generally perform well in formulations containing nonionic surfactants, but are often inactivated and therefore incompatible in formulations containing anionic and amphoteric surfactants, which constitute a large category of consumer, industrial, and agricultural products. Preserving these formulated compositions at mild pH (e.g., 6-8) is challenging because this pH is amenable to microbial growth and causes inactivation of traditional preservatives such as organic acids. The present invention overcomes formulation compatibility by combining a potent antifungal hydroxamic acid with a potent antibacterial guanylhydrazone. Although guanylhydrazones are typically inactivated by certain ingredients or contaminants (such as certain surfactants and minerals), this loss of activity is compensated for by the hydroxamic acid, resulting in a surprisingly broad spectrum of activity.
[0042] In embodiments, the present invention is in a concentrated form that is soluble in liquid additives such as propanediol, ethanol, glycerin, or water, which may aid in the manufacture of mixtures and enhance compatibility of formulations. The compositions of the present invention may also be provided as solid forms that can be diluted by the end user to achieve the concentrations disclosed herein.
[0043] In an embodiment, the present invention is a method for reducing bacterial and fungal contamination. The composition of the present invention is effective against one or a combination of bacteria such as Escherichia coli, Pseudomonas aeruginosa, Staphylococcus aureus, Listeria monocytogenes, Salmonella enterica, Burkholderia cepacia, Clostridium difficile, Streptococcus, Vibrio, Bacillus, Campylobacter, Chlamydia, Listeria, Neisseria, Treponema, among others. The composition is also effective against one or a combination of fungal species such as Aspergillus braziliensis, Aspergillus fumigatus, Candida albicans, Candida auris, among others. The method includes applying an effective amount of the composition of the present invention to a designated area or object. The composition may be an ingredient in a formulation composition and may be present in the formulation composition in a concentration range as further discussed herein.
[0044] In an embodiment, the present invention is a method for producing an antibacterial and antifungal active agent, the method comprising combining a guanidine molecule, an aldehyde molecule, and a hydroxamic acid molecule in a solution. The biological activity of the combination of the guanidine molecule, the aldehyde molecule, and the hydroxamic acid molecule is synergistic and is greater than the sum of the individual biological activities of the guanidine molecule, the aldehyde molecule, and the hydroxamic acid molecule.
[0045] In embodiments, certain compounds may interfere with the intended activity of the composition of the present invention.It should be understood that those skilled in the art can choose to exclude compounds such as cocoamidopropyl betaine, sodium lauryl sulfate, sodium laureth sulfate under certain conditions.Without intending to be bound by theory, anionic or amphoteric surfactants of certain molecular weight and carbon chain length may, for example, bind with the composition of the present invention, sequester it, and reduce its activity.
[0046] Other compounds may be added to the composition, provided that they do not substantially interfere with the intended activity and effectiveness of the composition, regardless of whether the compound interferes with the activity and / or effectiveness can be determined, for example, by the procedures used herein. Such other compounds may include, for example, one or more of film-forming polymers, surfactants, chelating agents, fragrances, and solvents. Notwithstanding that the numerical ranges and parameters setting forth the broad scope of the invention are approximations, the numerical values set forth in the specific examples are reported as precisely as possible. However, the numerical values inherently contain certain errors resulting from the errors found in their respective measurements. The following examples are intended only to further illustrate the invention, and are in no way intended to limit the scope of the invention, which is defined by the claims. EXAMPLES
[0047] This example illustrates the preparation of the hydroxamic acid component of the compositions of the invention (see, e.g., Premachandran, R. et al., PCT Publication No. WO / 2016 / 164555, Synergistic preservative compositions, 2018). Aroyl chlorides were prepared as precursors to hydroxamic acids. A 10 mmol solution of aroyl acid was prepared in 20 mL of chloroform and 12 mmol of oxalyl chloride (Sigma-Aldrich, St. Louis, MO) was added. Dimethylformamide (DMF, 99.8%, Sigma-Aldrich) was added as a catalyst and the reaction was stirred overnight (e.g., 18 hours). It was estimated that the reaction produced 10 mmol of aroyl acid chloride of the substituted aroyl acid. The reaction of each aroyl chloride yielded ∼22 mmol of NH 2 OH HCl (hydroxylamine hydrochloride, Fisher Scientific, Fair Lawn, NJ) and ~50 mmol of triethylamine (TEA; ≥99%, Sigma-Aldrich) were added and stirring was continued for at least 7 h. The resulting solution was washed three times with an equal volume of 1 N HCl and then diluted with MgSO 4 The aryl hydroxamic acid product was precipitated by evaporation of the dried chloroform. Approximately 1.4 g and 1.1 g of 4-N-propylbenzhydroxamic acid and 4-isopropylbenzhydroxamic acid, respectively, were recovered. The dried products were flaky, opaque, and slightly orange in color, with the 4-N-propyl product being darker in color. This procedure was also repeated for 4-alkylbenzoyl chlorides (96%, Sigma-Aldrich) with 5 mmol of aryl acid chloride and ~11 mmol of NH 2 A ratio of OH·HCl and ~25 mmol of TEA was performed. Approximately 1 g of 4-N-pentylbenzhydroxamic acid was recovered, which had a pale orange, waxy feel. The compound was 1 H NMR and 13 Characterized using C NMR (Spin Solve 80, Magritek, Malvern, PA).
[0048] Aminoguanidine-aldehyde hydrazones were prepared according to previously reported protocols (see, e.g., Grady, R.W. et al., Mol. Biochem. Parasitol. 19, 231-240, 1986; Beumer, R. & Klock, J., PCT Publication No. WO / 2006 / 029818, Cosmetic compositions containing a hydroxamic acid compound optionally in combination with a retinoid, 2006). An exemplary general procedure was carried out as follows: 170 g of aminoguanidine hydrochloride was dissolved in 145 g of deionized water and stirred until homogeneous (~20 min). To this solution in an Erlenmeyer flask was added 222 g of cuminaldehyde with stirring. The initially heterogeneous mixture was heated to 50°C and stirred vigorously for 30 min, during which time the reaction mixture released heat and the temperature increased to 100°C as the solution turned clear yellow. The resulting viscous yellow liquid contained 73% guanylhydrazone and 27% water as revealed by 1H NMR. No by-products were observed. Although aldehydes can produce strong odors or scents, when functionalized with aminoguanidine, the resulting guanylhydrazones are usually odorless. Thus, the scent or odor of the aldehyde mixture can be controlled by careful addition of aminoguanidine. Bis(cuminaldehyde) guanylhydrazone C2G was prepared in a similar manner, by treating 2 molar equivalents of cuminaldehyde with 1 equivalent of diaminoguanidine hydrochloride. EXAMPLES
[0049] This example shows the preparation of test parameters for the antimicrobial activity of the compositions of the present invention and components of related compositions for comparison. In this test, the minimum inhibitory concentration (MIC) was obtained as follows (see, for example, Buckley, HL et al., Design and Testing of Safer, More Effective Preservatives for Consumer Products. ACS Sustain. Chem. Eng. 5, 4320-4331, 2017). Molds were grown and minimum inhibitory tests were performed as previously reported (see, for example, Buckley, HL et al., ACS Sustain. Chem. Eng. 5, 4320-4331, 2017). Microorganisms were grown on Mueller Hinton agar medium (MHA, Sigma-Aldrich, St. Louis, MO) for 7 days until heavy sporulation appeared. Spores from two agar plates were captured in sterile phosphate-buffered saline (PBS) using a sterile cotton swab. Spores were enumerated by serial dilution in Dey-Engley neutralizing fluid (DEB; Sigma-Aldrich) and plating on MHA. A typical spore stock contains ~2x10 7 The bacteria were grown in MH broth at 37°C for 24 h, enumerated by plating, and diluted to the desired concentrations as indicated.
[0050] To test the various compounds, foamy hand soap-based formulations were made with sodium lauryl sulfate (SLS, 2.4% w / w, Sulfochem SLS-PHP [30% active], The Lubrizol Corporation, Wickliffe, OH) and cocoamidopropyl betaine (CAPB, 1.2% w / w, Mackam 35 [30% active], Solvay SA, Brussels, Belgium) in deionized water and sterilized by filtration (0.22 μm, PVDF, VWR, Radnor, PA). All test formulations were adjusted to the desired pH using citric acid and / or NaOH. All tubes were inoculated with 250 μL of spore inoculum (above) to a total volume of 5 mL, resulting in a final spore concentration in each tube of approximately 1x10 6spores / mL. All tubes were kept at room temperature (approximately 21-22 °C) for 3 weeks. Approximately 100 μL of each inoculated foam hand soap mixture was diluted 1:10 in DEB, and 100 μL of the dilutions were plated onto MHA at several time points (e.g., 3 d, 7 d, 13 d, 18 d, and 20 d). For molds, plates were incubated at room temperature for 3-5 days (1-2 days for bacteria), and colonies were counted.
[0051] Preservative Challenge Test (USP-51). The protocol for the preservative challenge test was according to the United States Pharmacopeia Chapter 51 (USP 51). In the USP 51 protocol, the test organisms were Candida albicans (ATCC No. 10231), Aspergillus brasiliensis (also called A. niger) (ATCC No. 16404), Escherichia coli (ATCC No. 8739), Pseudomonas aeruginosa (ATCC No. 9027), and Staphylococcus aureus (ATCC No. 6538). To evaluate the efficacy of preservatives in personal care product formulations, microorganisms were individually added to samples of the product formulations to give final product concentrations of 1.00E+05 and 1.00E+06 CFU (colony forming units) / mL. The inoculated personal care product formulations were incubated at specific temperatures (for the organisms) and plated for two weeks. During plating, the number of colony forming units (CFU) was counted to determine the number of viable microbial cells still present in the solution. Antimicrobial efficacy is determined by the log reduction in growth over time.
[0052] The hydroxamic acids and derivatives tested in this application are shown in Figures 4A and 4B, which indicate the numbers assigned to each of the various compounds and are shown in Table 1 below.
[0053] To evaluate the antibacterial activity of hydroxamic acids and derivatives, the inhibitory properties of commercially available hydroxylamines and hydroxamic acids were compared with their alcohol and carboxylic acid analogues diluted in Mueller-Hinton solution at pH 7.4 (Table 1). [Table 1]
[0054] Carboxylic acids were more effective against bacteria than fungi, consistent with a relatively enhanced ability of fungi to regulate their internal pH. Alcohols were generally ineffective unless they were moderately hydrophobic (benzyl alcohol). Hydroxylamines tended to show low to moderate effectiveness, with the exception of O-phenylhydroxylamine. Moderately hydrophobic hydroxamic acids (caprylhydroxamic acid, benzhydroxamic acid) were the most potent antifungals (A. brasilensis, C. albicans) but were less effective against bacteria. These experiments demonstrated the utility of simple hydrophobic hydroxamic acids as antifungals.
[0055] Several aryl derivatives of benzhydroxamic acid were also tested. Based on previous studies and the low antifungal activity of salicylhydroxamic acid (Table 1 - w / w indicates the weight ratio of the first and second components listed). Increasing the hydrophobicity of the benzhydroxamic acid derivatives resulted in good antifungal activity and moderate to low antibacterial inhibition (Table 2, entries 1-7). In contrast to caprylhydroxamic acid, which requires heating and stirring to solubilize, the arylhydroxamic acids 1-6 showed rapid dissolution at room temperature with minimal stirring. This result is consistent with the higher water solubility of aromatic compounds compared to aliphatic substances of similar weight and atomic composition (see, for example, Polak, J. & Lu, B.C.-Y. Can. J. Chem. 51, 4018-4023, 1973). [Table 2] nd:Not decided
[0056] Guanylhydrazones 7 and 8, which represent a class of broad-spectrum antibacterial agents, were evaluated alone and in combination with hydroxamic acids. Due to their reversible nature, these guanylhydrazones are designed to rapidly dissociate and degrade after use. MIC levels of the hydroxamic acid / guanylhydrazone combinations were within experimental error relative to the sum of their components. Antibacterial activity against the Gram-negative bacterium Pseudomonas aeruginosa ATCC 9027 was achieved by combining the hydroxamic acid with guanylhydrazone 7, demonstrating compatibility between these two functional classes (see Table 2).
[0057] The preservative activity of the hydroxamic acid / guanylhydrazone combination was compared to other antimicrobial mixtures in formulations containing ionic surfactants. Similar to previously reported cationic-anionic symbiosis (see, e.g., Asnacios, A. et al., Macromolecules 29, 7412-7417, 1996; Goddard, ED & Hannan, RBJ Colloid Interface Sci, 55, 73-79, 1976; Sohrabi, B. et al., J.Phys.Chem.B112, 14869-14876, 2008), the antifungal activity of the guanylhydrazone was observed to be weakened in handwash formulations (HW) containing the anionic surfactant sodium lauryl sulfate (SLS, 2.4%) and the amphoteric surfactant cocoamidopropyl betaine. Without intending to be bound by theory, it was suspected that the strong inhibitory properties of benzhydroxamic acid may compensate for this loss of antifungal activity. The fungicidal properties of the mixture of benzhydroxamic acid and guanylhydrazone (1 + 7) were compared with commercially available antifungal agents representing various functional classes (Table 3). 7 After treatment of the chemical combinations with 100% CFU / mL, low fungicidal activity of all combinations was observed, except for those containing benzhydroxamic acid. These results suggested that benzhydroxamic acid could effectively preserve this formulation against fungi and was compatible with guanylhydrazone 7. [Table 3]
[0058] Based on the promising results of compounds 1, 7, and the hydroxamic acid / guanylhydrazone combination, the performance of derivatives representing these two functional classes was evaluated. Fungicidal activity was achieved with the hydroxamic acid alone and in combination with the guanylhydrazone (Table 4). In the presence of SLS / CAPB, the guanylhydrazone alone was ineffective against Aspergillus braziliensis, but retained high activity against Pseudomonas aeruginosa (Table 5). Good bactericidal activity was observed when 4-methyl- and 4-ethylbenzhydroxamic acids (2, 3) were combined with 7. Combinations including 4-butylbenzhydroxamic acids 6 and 7 were inhibitory (e.g., Table 2, accession 12) and not bactericidal. Without intending to be bound by theory, it was speculated that the loss of bactericidal activity in the latter case could be caused by an antagonistic symbiosis between the relatively hydrophobic 4-butylbenzhydroxamic acids 6 and 7. These substances dissociate upon dilution, as in the MIC determination. [Table 4] [Table 5] EXAMPLES
[0059] This example demonstrates the surprising synergistic antibacterial activity of comparative compositions of the present invention and related compositions tested against Aspergillus brasiliensis (ATCC No. 16404) and Pseudomonas aeruginosa (ATCC No. 9027), two of the most persistent microorganisms tested in the USP 51 protocol. Next, the effect of pH on the antifungal properties of HW formulations containing 0.4% 7 and 0.5% CHA alone and in combination was examined at high fungal loads (10 7CFU / mL). Moderate to poor performance was observed for CHA across the entire pH range (0-1 log reduction). 7 alone showed poor performance, except at higher pH. Good performance was observed for the formulation containing the 7+CHA combination at pH 5.5, 8.5, and 9.0, with poor performance at pH 7.0 (Table 6). Without intending to be bound by theory, it was suspected that the poor performance of the combination at neutral pH was due to the milder conditions of this formulation, which are more conducive to mold growth. [Table 6]
[0060] Synergistic antifungal activity was observed for three combinations of hydroxamic acid / guanylhydrazones (CHA+7, 4+8, 1+8) in the HW formulations. 7 and CHA alone showed low to moderate bactericidal activity in the formulations, but complete kill was observed when combined (Table 6 and Figure 1). Figure 1 specifically shows the bactericidal properties of HW containing the combination of 0.4% AG-benzaldehyde, 0.5% CHA, and pH 5.5-9.5 (discontinued culture after 6 days of incubation, inoculum 10 7 CFU / mL Aspergillus brasiliensis ATCC 16404). The antifungal properties of this combination of compositions of the present invention were observed to be surprisingly synergistic in the rate of spore kill, as the log reduction of the combination (>4.30) was much greater than the sum of its parts (Table 6, 0.35 and 2.24 at day 6). Synergy of comparable magnitude was observed between 8 and 4 as well as 1 (Tables 7 and 8). Compound 5, an isomer of 4, had no apparent synergistic effect in combination with 8, but nevertheless demonstrated its effectiveness as a fungicidal preservative. [Table 7] [Table 8] EXAMPLES
[0061] This example illustrates the surface disinfecting properties of aminoguanidine-cuminaldehyde hydrazone (CG, R' = iPr; (2E)-2-{[4-(propan-2-yl)phenyl]methylidene}hydrazine-1-carboximidamide. Figure 2 shows the results of this inventive combination composition with benzalkonium chloride (BAC: positive control) and water (negative control).
[0062] Tile Surface Disinfectant Test. The surface hygiene test was adapted from ASTM test method E1153. Test bacteria (Escherichia coli ATCC 15597 and Pseudomonas aeruginosa ATCC 9027; American Type Culture Collection, Manassas, VA) were streaked from frozen stock cultures onto Mueller-Hinton agar (MHA; Sigma-Aldrich, St. Louis, MO) and grown at 30-37 °C for 2-4 days to generate isolated colonies. Two to three representative colonies were picked and transferred to 10 mL Mueller-Hinton broth (MHB; Sigma) and grown overnight at 37 °C. Cultures were passaged up to three times into fresh broth before being grown at 37 °C for 48 h to be used as inoculum. Sterile glazed 2x2 inch ceramic tiles were inoculated with 100 μL of the 48-h culture and allowed to dry for less than 1 h. Spray disinfectant solution was prepared by mixing the test compound (5) in deionized filtered water. Benzalkonium chloride (≥95%, Sigma) or bleach solution was used as positive controls, and deionized filtered water was used as negative control. Solutions were transferred to 250 mL spray bottles and spray volume consistency was pre-checked. For each treatment, tiles were sprayed three times. At the designated contact time, 15 mL of Dey-Engley fluid (DEB; Sigma) was poured onto the tiles. The tiles were vigorously swirled 50 times in the DEB to neutralize the antimicrobial agent and recover bacteria. This procedure was performed in duplicate for each treatment and contact time. The disinfectant-DEB solution was then serially diluted in phosphate-buffered saline and plated onto MHA. The MHA plates were incubated at 37°C for 18–24 h and colonies were counted. To determine log reduction, bacteria recovered from treated tiles were compared to bacteria recovered from untreated tiles inoculated with 2–3 replicates. High microbial levels (4x106 For CFU / mL Pseudomonas aeruginosa ATCC 9027, sodium hypochlorite (200 ppm) induced a 97.44% reduction at 15 seconds and >99.998% at 5 and 10 minutes. Under identical conditions, compound 5 (500 ppm) showed similar activity (98.32% at 15 seconds, 99.98 and 99.995% at 5 and 10 minutes). EXAMPLES
[0063] This example demonstrates that CG exhibits broad spectrum compatibility (passes USP-51) in spray cleaning compositions alone and in combination with sodium benzoate (0.2% total actives).
[0064] The effectiveness of CG against mold, bacteria and yeast is based on the USP <51> To determine preservative efficacy, the materials were tested at MICROCHEM Laboratories (Round Rock, TX, USA) according to USP <51> It was analyzed according to protocol and met the key criteria for a scientifically defensible study. In this example, the criteria for passing the USP 51 preservative efficacy protocol for bacteria are a 2-log10 or greater reduction from the initial count at 14 days and no increase from the 14 day count at 28 days. The criteria for passing the USP 51 preservative efficacy protocol for yeast and mold are no increase from the initial count at 14 days and 28 days. No increase is defined as 0.5 log10 or less higher than the previous value.
[0065] Cuminaldehyde guanylhydrazone (CG) was evaluated alone and in combination with other compounds in a nonionic spray cleaner base without added preservatives. Samples with 0.2% CG passed the USP 51 Preservative Effectiveness Schedule for bacteria, yeast, and mold, while the unpreserved spray cleaner-based control failed for several organisms. As seen in Figures 3A through 3F, low levels of CG (0.2 wt%), and CG (0.1 wt%) in combination with sodium benzoate (0.1 wt%), showed greater than 3 log reductions in all six organisms tested (Escherichia coli, Staphylococcus aureus, Pseudomonas aeruginosa, Aspergillus braziliensis, Burkholderia cepacia, and Candida albicans). Sodium benzoate and CG alone (0.1%) did not remove mold to undetectable levels under the same conditions (<2 and <4-log reductions, respectively).
[0066] This example shows that CG passed the USP51 preservative efficacy protocol against bacteria, yeast, and mold. EXAMPLES
[0067] This example shows that CG rapidly removed Gram-positive and Gram-negative bacteria from surfaces and in suspension. CG enhanced the antibacterial activity of two commercial spray cleaners (all-purpose, non-ionic spray cleaners). When CG was used in combination with other ingredients (caprylhydroxamic acid, C2G, 43IMP), activity was improved.
[0068] MICROCHEM Laboratories completed the AOAC Use Dilution, Semi-Quantitative Test Method for three bacteria with a maximum contact time of 10 minutes on three replicates from the same sample submission. For Staphylococcus aureus testing, MICROCHEM Laboratories followed the ASTM E2315 method with a 10 minute exposure, but only tested one replicate. The ASTM E2315 quantitative test method was used by MICROCHEM Laboratories Confirmed Positive to evaluate the performance of a single replicate of the test compound against the MS2 virus, using a 10 minute contact time.
[0069] The killing effect of cuminaldehyde guanylhydrazone (CG) in water against the three bacteria was evaluated using the AOAC Use Dilution Test. Passage kill rates were detected for Pseudomonas aeruginosa, and Salmonella, close to but just below the target kill rate, while the kill rate for Staphylococcus aureus was not achieved. The test results were the same for both concentrations tested (0.2wt% and 0.5wt%). The results are shown in Table 9 below. [Table 9]
[0070] Additional testing was performed against S. aureus using the time-kill procedure ASTM E2315 to determine whether CG was effective with other components of the test formulation. Several combinations were identified that were more effective at eliminating S. aureus more quickly than on their own, with CG present at 0.2 wt%. The addition of 0.2 wt% CG also improved the killing power of a non-ionic spray cleaner, an all-purpose cleaner, and a surfactant control base. Additional modified ASTM E2315 testing of subpopulations of these same formulations failed to significantly reduce MS2 virus levels compared to the control.
[0071] Results of the E2315 test against Staphylococcus aureus ATCC 6538 with cuminaldehyde guanylhydrazone and controls at a contact time of 10 minutes are shown below in Table 10, where the average percent reduction and average Log10 reduction are compared to the time zero control. [Table 10]
[0072] This example shows that the addition of 0.2 wt% CG to the non-ionic spray cleaner, general-purpose cleaner, surfactant control, 0.5 wt% caprylhydroxamic acid, 0.15 wt% C2G in SC, or 0.10 wt% 43IMP in SC increases the average percent reduction to over 95%, a level similar to that produced by a thymol-based disinfectant cleaner. This example also shows that the average Log10 reduction compared to the time zero control was increased to approximately the same level as the thymol-based disinfectant cleaner with the addition of 0.2 wt% CG and with 0.5 wt% caprylhydroxamic acid + 0.2 wt% CG in SC. EXAMPLES
[0073] Antiviral testing of CG-containing formulations against MS-2 bacteriophage ATCC15597-B1 and human coronavirus, strain 229E, ATCC VR-740 (contact time 10 min). The CGs and compositions did not show enhanced antiviral activity compared to the base formulation.
[0074] Two additional tests were conducted to confirm the effectiveness of CG and CG in combination with other potential biocides against MS2 bacteriophage ATCC 15597-B1 and human coronavirus, strain 229E, ATCC VR-740. In both tests, none of the treatments showed significantly increased kill over the control solution. Results of E2315 testing against MS2 bacteriophage ATCC 15597-B1 with CG and control at 10 minute contact time are shown below in Table 11. Results of E1052 testing against human coronavirus, strain 229E, ATCC VR-740 with CG and control at 10 minute contact time are shown below in Table 12. [Table 11] [Table 12]
[0075] This example shows that the addition of 0.2 wt% CG does not significantly affect the disinfecting ability of a non-ionic spray cleaner, 0.5 wt% caprylhydroxamic acid, or 0.10 wt% 43IMP against MS2 bacteriophage or human coronavirus. EXAMPLES
[0076] This example shows that when combined with a variety of commercial products, cuminaldehyde guanylhydrazone (CG) was stable in at least four different classes of household products, including non-ionic spray cleaners, polishes, hand soaps, and liquid dishwashing detergents.
[0077] The freeze-thaw study was conducted using a commercial freezer and was completed with three cycles of freezing, thawing and observing the samples over a two week period. Additional samples were stored in 15mL Falcon tubes in the refrigerator, at room temperature and in a 40°C oven. These samples were removed and evaluated at the three time points in combination with the freeze-thaw samples. The compositions of the CG-stable household products are shown below in Tables 13 and 14. The "Surfactant Control" consisted of 4% 1,3-propanediol, 4% alkyl polyglucoside (C8-C16), 2% ethoxylated fatty alcohol (Clariant Genapol LA 070) and 90% deionized water. [Table 13] [Table 14]
[0078] Cuminaldehyde guanylhydrazone (CG) was added to several different commercial products. Stability testing was performed in the refrigerator (2.8°C), room temperature (21.1°C), in an oven (40°C), and three freeze-thaw cycles. It was determined that CG was stable in at least four different classes of household products, including nonionic spray cleaners, polishes, hand soaps, and liquid dishwashing detergents. Instability and / or phase separation was seen in several different products. While not intending to be bound by theory, these instabilities may be primarily due to carbonates, anionic surfactants, or high pH. Experiments to identify and overcome the causes of incompatibility indicated that carbonate-free formulations, or the incorporation of emulsifiers, prevented some of the instability and phase separation seen. EXAMPLES
[0079] This example shows that cuminaldehyde guanylhydrazone (CG), ocylbenzaldehyde guanylhydrazone (OBG), and benzaldehyde guanylhydrazone (BG) can be combined with a non-ionic spray cleaner to sustain a greater than 5 log reduction of Aspergillus braziliensis.
[0080] The method used to determine the extended preservative effect of CG followed the USP51 guidelines, but the test was extended to 97 days and an aliquot of the sample was re-inoculated with Aspergillus braziliensis after 36 days and tested for an additional 60 days. Samples of 4-acylbenzaldehyde guanyldrazone were not compatible with water and were tested with propanediol instead. After inoculation, samples were stored in a GYROMAX 74&R 30°C oven until the study was completed.
[0081] Cuminaldehyde guanylhydrazone (CG) and other compounds were evaluated for preservative efficacy for 97 days in both the non-ionic spray cleaner base and water with no added preservative. The results were very impressive, as shown in Table 15 below. The three samples containing CG, the four containing ocylbenzaldehyde guanylhydrazone (OBG), and the sample containing benzaldehyde guanylhydrazone (BG) all maintained a 5 log or greater reduction in Aspergillus braziliensis CFU / mL from the time zero concentration at all five measurement points. These values were 3-5 log or greater reductions than the two controls, the spray cleaner base and water. [Table 15]
[0082] After 36 days, 4 mL of each sample was placed into separate Falcon tubes and re-inoculated with Aspergillus brasiliensis. These samples were also measured for Log10 reduction in CFU / mL over the 60 day period using three data points. As shown in Table 16, all samples had a 2.8-5.6 Log10 reduction in CFU / mL over the test period, and a 1.8-4.6 Log10 reduction over the spray cleaner control. Unfortunately, the water control was bacterially contaminated and mold colonies could not be accurately recorded. These results indicated that the samples continued to provide efficacy against a re-challenge of Aspergillus brasiliensis. [Table 16] EXAMPLES
[0083] This example shows that cuminaldehyde guanylhydrazone (CG) in combination with a non-ionic bathroom spray cleaner base containing no added preservatives significantly reduced Aspergillus braziliensis in samples for at least 28 days.
[0084] Cuminaldehyde guanylhydrazone (CG) was evaluated alone in a non-ionic bathroom spray cleaner base containing no added preservatives in the pH range of 7-8. Although the addition of CG caused a precipitate to form, there was still a significant reduction of Aspergillus braziliensis in samples containing 0.2 wt% CG over the 28-day test. It is speculated that the presence of sodium citrate is responsible for the precipitate.
[0085] The test method used to evaluate the effect on a non-ionic bathroom spray cleaner base containing no added preservatives was based on the USP51 protocol and was performed with a 28-day incubation in an oven at 30°C. The theoretical starting concentration of the unpreserved base was 5x10 -5and was used as the time zero value since an initial count at time zero was not completed. The results are shown below in Table 17. The table shows that the Bath Spray Base with 0.1 wt% CG reduced Aspergillus brasiliensis by 2.85 Log10 CFU / mL at day 28. The table also shows that the Bath Spray Base with 0.2 wt% CG reduced Aspergillus brasiliensis by 2.74 Log10 CFU / mL by day 2, and by 5.70 Log10 CFU / mL at days 9 and 28. [Table 17] EXAMPLES
[0086] This example shows that a spray cleaner containing 0.2 wt% CG inhibits the growth of Aspergillus braziliensis for at least 8 days.
[0087] Actual test examples were conducted where tiles were treated with a spray cleaner containing 0.2 wt% CG or a general-purpose cleaner containing hydrogen peroxide. After drying for 5 minutes, the tiles were inoculated with two agar plugs containing actively growing Aspergillus brasiliensis. After 8 days, a dramatic difference was observed between the CG-treated tiles, which showed no growth, and the general-purpose cleaner-treated tiles, which showed numerous new mold colonies growing. This indicated that the spray cleaner supplemented with 0.2 wt% CG could provide expanded mold killing efficacy compared to a commercial general-purpose cleaner containing hydrogen peroxide product.
[0088] This test method was developed in the USDA-ARS laboratory as a simulation of what may occur in a consumer bathroom where mold is actively growing. In this application, the product was sprayed onto a tile, allowed to dry for 5 minutes, then the tile was tilted to allow the undried product to run off and blotted with KIMWIPE paper absorbent tissues (Kimberly Clark Worldwide Inc., Neenah, WI) to finish drying. The tile was placed in a Petri dish, then moistened three times with DI water, and two small plugs of agar containing actively growing Aspergillus braziliensis were placed on the tile and covered with the top of the Petri dish. If no growth was observed after 2 days, 1 mL of Mueller-Hinton solution was gently added to the tile and an additional 1 mL was added to the Petri dish at the bottom of the tile. Samples were photographed after 8 days.
[0089] Thus, the present disclosure relates to novel antimicrobial blends developed using moderately hydrophobic hydroxamic acids and guanylhydrazones. Some combinations are surprisingly synergistic in their biocidal activity, providing unexpectedly complementary broad-spectrum antimicrobial activity, even in formulations containing typically inactivating anionic and amphoteric surfactants. The compositions of the present invention are the first examples of broad-spectrum, synergistically combined bactericidal and fungicidal activity resulting from the disclosed combinations of guanylhydrazones and hydroxamic acids.
[0090] While the present invention may be embodied in many different forms, certain preferred embodiments of the present invention are described in detail herein. The present disclosure is an exemplification of the principles of the present invention and is not intended to limit the present invention to the specific embodiments illustrated. All patents, patent applications, scientific papers, and other reference materials described herein are incorporated by reference in their entirety, including the materials cited within such reference materials. In addition to the above citations, the contents of the following references are also incorporated by reference in their entirety: US 2018 / 0303100. Furthermore, the present invention encompasses any possible combination of some or all of the various embodiments and features described and / or incorporated herein. Furthermore, the present invention encompasses any possible combination that specifically excludes one or some of the various embodiments and features described and / or incorporated herein.
[0091] The amounts, percentages, and ranges disclosed herein are not meant to be limiting, and increments between the recited amounts, percentages, and ranges are specifically contemplated as part of the present invention. All ranges and parameters disclosed herein are understood to encompass all subranges contained therein, and all numbers between the endpoints. For example, a specified range of "1 to 10" should be considered to include all subranges between (and including) a minimum value of 1 and a maximum value of 10, including all integer and decimal values, including all subranges beginning with a minimum value of 1 or more (such as 1 to 6.1), ending with a maximum value of 10 or less (e.g., 2.3 to 9.4, 3 to 8, 4 to 7), and finally each number 1, 2, 3, 4, 5, 6, 7, 8, 9, and 10 contained within the range.
[0092] Unless otherwise indicated, all numerical values expressing quantities of ingredients, properties such as molecular weight, reaction conditions, etc. used in the present specification and claims should be understood in all cases to be modified by the term "about". Thus, unless otherwise indicated, the numerical properties described in the following specification and claims are approximations that may vary depending on the desired properties sought to be obtained in embodiments of the present invention. As used herein, the term "about" refers to a quantity, level, value, or amount that varies by 30%, preferably 20%, more preferably 10% relative to a reference quantity, level, value, or amount.
[0093] Other embodiments of the invention will be apparent to those skilled in the art from consideration of the specification or practice of the invention disclosed herein. It is intended that the specification and examples be considered as exemplary only, with a true scope and spirit of the invention being indicated by the following claims. Although any methods and materials similar or equivalent to those described herein can be used in the practice or testing of the present invention, the preferred methods and materials are described herein. Those skilled in the art may recognize other equivalents to the specific embodiments described herein, which equivalents are intended to be encompassed within the scope of the claims appended hereto.
Claims
1. comprising a mixture of at least one organic acid and at least one water-soluble hydrazone; the organic acid is a hydroxamic acid, The hydrazone comprises a structure derived from an aminoguanidine molecule and a structure derived from an aldehyde molecule, the mixture exhibits a biological activity that is synergistic compared to the sum of the biological activity of the organic acid and the biological activity of the hydrazone; composition.
2. The organic acid is a hydroxamic acid having the formula R is aryl or alkyl; R I The composition of claim 1 , wherein is H, aryl, or alkyl.
3. The organic acid is a hydroxamic acid having the formula 2. The composition of claim 1, wherein R is H, methyl, ethyl, propyl, isopropyl, or butyl.
4. 2. The composition of claim 1, wherein the organic acid is a hydroxamic acid and is selected from the group consisting of salicylhydroxamic acid, N-hydroxysuccinimide, benzhydroxamic acid, O-methylhydroxylamine HCl, O-benzylhydroxylamine HCl, N-benzylhydroxylamine HCl, O-tert-butylhydroxylamine HCl, acetohydroxamic acid, suberohydroxamic acid, O-ethylhydroxylamine HCl, O-phenylhydroxylamine HCl, caprylhydroxamic acid, N-hydroxymaleimide, and combinations thereof.
5. 2. The composition of claim 1, wherein the organic acid is caprylhydroxamic acid.
6. The hydrazone comprises a self-assembled complex of aminoguanidine and an aldehyde having the formula: R II , R III , and R IV is independently H, aryl, or alkyl; R V is H, aryl, alkyl, NH 2 , or N.C.H.R. II The composition of claim 1.
7. The composition of claim 6 , wherein the aminoguanidine, the aldehyde, and the hydrazone are in equilibrium in the mixture.
8. The hydrazone comprises a self-assembled complex of aminoguanidine and an aldehyde having the formula: Here, R I The composition of claim 1, wherein is H or octyl.
9. 9. The composition of claim 8, wherein said aminoguanidine, said aldehyde, and said hydrazone are in equilibrium in said mixture.
10. 2. The composition of claim 1, wherein the biological activity of the mixture comprises antibacterial activity.
11. 2. The composition of claim 1, wherein the biological activity of the mixture comprises antifungal activity.
12. 2. The composition of claim 1, wherein the biological activity of the mixture includes both antibacterial and antifungal activity.
13. 2. The composition of claim 1, wherein said mixture is a component of a formulated composition, and the effective amount of said hydroxamic acid and said hydrazone in the formulation is less than 2 wt % in total.
14. A compounded composition comprising the mixture of claim 1.
15. 15. The formulation of claim 14, selected from the group consisting of foaming and non-foaming hand sanitizers, dish washing liquids, household cleaning sprays, laundry detergents, personal care products including lotions, body washes, shampoos, spray and non-spray cleaners such as cleaning concentrates, dilutable concentrates, adhesives and coatings, cleaning agents, disinfectants, industrial cleaners including odor control agents, hoof washes, thorough washes, livestock treatments including oral antibiotics, topical preservatives, odor control, feed additives, medical devices, agrochemical compositions for crops, disinfectants for food processing, preservatives for food and non-food agricultural products.
16. 13. A method for reducing bacterial and fungal contamination comprising applying the composition of claim 1 to a designated area or object suspected of bacterial or fungal contamination.
17. 17. The method of claim 16, wherein reducing bacterial and fungal contamination comprises at least one of sanitizing, reducing odor, controlling aroma, extending shelf life, and reducing mold.
18. 17. The method of claim 16, wherein the bacteria is selected from the group consisting of Escherichia coli, Pseudomonas aeruginosa, Staphylococcus aureus, Listeria monocytogenes, Salmonella enterica, Burkholderia cepacia, Clostridium difficile, Clostridium difficile, Streptococcus, Vibrio, Bacillus, Campylobacter, Chlamydia, Listeria, Neisseria, Treponema, and combinations thereof.
19. 17. The method of claim 16, wherein the fungus is selected from the group consisting of Aspergillus brasiliensis, Aspergillus fumigatus, Candida albicans, Candida auris, and combinations thereof.
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