The present invention relates to an anti-leishmanial compound having a high anti-leishmanial activity, and an anti-leishmanial drug.
Leishmaniasis is caused by flagellated protozoan parasites of the genus Leishmania, which are obligate intracellular parasites of phagocytic macrophages. Leishmaniasis has been designated as one of six major tropical diseases by the World Health Organization (WHO). Leishmaniasis is vector-borne disease by the bite of blood-sucking female sandfly vectors, resulting in the parasite inoculation to the skin, viscera or the like of mammalian hosts. The symptoms of Leishmaniasis is fatal in severe ranging from mild to heal, but pentavalent antimony formulations have been used primarily as a treatment known to cause severe adverse side effects. Therefore, there is a demand for a new drug having a low risk of adverse side effects. And Amphotericin B was used originally as an antifungal agent, which is also used to treat leishmaniasis. Furthermore, AmBisome has been developed as a drug suppressing the adverse side effects, but this drug has a problem that the drug is expensive.
On the other hand, it has been reported that marine algae-derived metabolites exhibit an anti-leishmanial activity (see, for example, Non-Patent Document 1). However, this document does not specify which compound derived from marine algae would have an anti-leishmanial activity.
The inventors of the present invention conducted a thorough investigation, and as a result, they paid attention to Sargassum yamadae, a brown alga in the Family Sargassaceae of the Order Fucales, and attempted fractionation of an extract of the alga. Accordingly, the inventors found that the extract has a high anti-leishmanial activity, and thus completed the present invention.
That is, the anti-leishmanial compound according to the present invention is represented by formula (1):
Also, the anti-leishmanial compound according to the present invention is represented by formula (2):
Also, the anti-leishmanial compound according to the present invention is represented by formula (4):
Also, the anti-leishmanial compound according to the present invention is represented by formula (5):
Also, the anti-leishmanial compound according to the present invention is represented by formula (6):
Furthermore, the anti-leishmanial drug according to the present invention is characterized by containing the compound represented by any one of the formula (1), (2), (4) to (6) and a pharmacologically acceptable salt thereof as active ingredients.
According to the present invention, an anti-leishmanial compound having a high anti-leishmanial activity and an anti-leishmanial drug can be provided.
Hereinafter, the anti-leishmanial compound and the anti-leishmanial drug according to embodiments of the present invention will be described with reference to the attached drawings. The anti-leishmanial compound according to the present invention is at least one of the compounds represented by formulas (1) to (6), and the anti-leishmanial drug according to the present invention contains at least one of the compounds represented by the formulas (1) to (6) as an active ingredient.
In order to separate and refine any one of the compounds represented by the formulas (1) to (6), those means for separation and purification that are typically used to collect metabolites may be appropriately utilized on the algae such as brown algae, while taking into consideration of the physicochemical properties of the relevant compound. For example, an extraction operation is carried out on the algae, using an organic solvent, preferably an equivolume solvent mixture of chloroform-methanol. Subsequently, the compound may be further extracted from the extract thus obtained, using an organic solvent such as dichloromethane, or the compound may be adsorbed and eluted using various chromatographic techniques. Furthermore, if necessary, further purification operations may be carried out to separate and refine the compound with a desired purity. In regard to the chromatographic techniques, conventionally used inorganic and organic carriers, for example, silica gel and a polystyrene resin, can be used as the carrier.
The compounds represented by the formulas (1) to (6) are useful as, for example, antiprotozoal drugs, particularly as anti-leishmanial drugs, in the field of pharmaceuticals. A compound represented by any one of the formulas (1) to (6) may be used singly, or may be mixed with additives that are generally acceptable in formulations and formulated into preparations. Examples of dosage forms include dosage forms using peroral preparations such as tablets, granules, capsules, pills, powders, liquids, suspensions, emulsions, syrups, elixirs, and extracts; and dosage forms using parenteral preparations such as injectable preparations, liquids, suppositories, ointments, patches, poultices, and lotions. However, there are no particular limitations on the dosage form, and the dosage form can be appropriately selected in accordance with the purpose of therapy, or the like.
In the case of tablets, granules, pills, capsules and powders, additives such as an excipient, a binder, a disintegrant, a lubricating agent can be incorporated therein. Examples of the excipient include starch, carboxymethyl cellulose, sucrose, dextrin, and corn starch.
Examples of the binder include crystalline cellulose, crystalline cellulose carmellose sodium, methylcellulose, hydroxypropyl cellulose, low-substituted hydroxypropyl cellulose, hydroxypropylmethyl cellulose, hydroxypropylmethyl cellulose phthalate, hydroxypropylmethyl cellulose acetate succinate, carmellose sodium, ethyl cellulose, carboxymethylethyl cellulose, hydroxyethyl cellulose, wheat starch, rice starch, corn starch, potato starch, dextrin, pregelatinized starch, partially pregelatinized starch, hydroxypropyl starch, pullulan, polyvinylpyrrolidone, aminoalkyl methacrylate copolymer E, aminoalkyl methacrylate copolymer RS, methacrylic acid copolymer L, methacrylic acid copolymer, polyvinylacetal diethylaminoacetate, polyvinyl alcohol, gum arabic, powdered gum arabic, agar, gelatin, white shellac, tragacanth, purified sucrose, and macrogol.
Examples of the disintegrant include crystalline cellulose, methyl cellulose, low-substituted hydroxypropyl cellulose, carmellose, carmellose calcium, carmellose sodium, croscarmellose sodium, wheat starch, rice starch, corn starch, potato starch, partially pregelatinized starch, hydroxypropyl starch, carboxymethyl starch sodium, and tragacanth.
Examples of the lubricating agent include wheat starch, rice starch, corn starch, stearic acid, calcium stearate, magnesium stearate, hydrated silicon dioxide, light silicic anhydride, synthetic aluminum silicate, dry aluminum hydroxide gel, talc, magnesium metasilicate aluminate, calcium hydrogen phosphate, anhydrous calcium hydrogen phosphate, sucrose fatty acid esters, waxes, hydrogenated vegetable oils, and polyethylene glycol.
Furthermore, in the case of liquids, syrups, suspensions, emulsions, and elixirs, a colorant, a taste-masking agent, a flavoring agent and the like may be incorporated as additives, in addition to inert diluents that are generally used, such as water and vegetable oils.
In the case of injectable preparations, additives such as a suspension liquid, an emulsion liquid, and a ready-to-use solubilizing agent can be incorporated. Furthermore, in the case of ointments and suppositories, fats, fatty oil, lanolin, petrolatum, paraffin, waxes, resins, plastics, a base, a glycol, a higher alcohol, water, an emulsifier, a suspending agent, and the like can be incorporated as additives. In the case of poultices, glycerin, water, a water-soluble polymer, a water-absorptive polymer, and the like can be incorporated as additives. In the case of lotions, a solvent, an emulsifier, a suspending agent, and the like can be incorporated as additives.
The anti-leishmanial compound of the present invention can be added to a food product, a chewing gum, a beverage or the like, and then be incorporated into so-called foods for specified health uses (for example, anti-leishmanial foods), dietary supplements, and the like.
As well, the compounds represented by the formulas (1) to (6) as described above are conceptually considered to include pharmacologically acceptable salts of these compounds. That is, the present invention includes biochemical precursors that are converted to the compounds and amides by metabolism in the body of a human being or an animal, and exhibit a pharmacological activity. According to the present invention, the term pharmacologically acceptable salt is a salt that is obtained by treating one of the compounds described above with an acid or a base, and means a salt which does not have significant toxicity and can be used as a medicine. Examples of such an acid addition salt include addition salts based on inorganic acids such as hydrochloric acid, hydrobromic acid, sulfuric acid, and phosphoric acid; and organic acids such as maleic acid, fumaric acid, tartaric acid, and citric acid. Examples of a salt based on a base include salts based on alkali metal hydroxides such as sodium hydroxide and potassium hydroxide; alkaline earth metal hydroxides such as calcium hydroxide and magnesium hydroxide; and organic bases such as guanidine, triethylamine, and dicyclohexylamine.
Hereinafter, the present invention will be more specifically described by way of Examples.
1. Operation for Separation of Compounds Represented by Formulas (1) to (6)
Sargassum yamadae (294.4 g), a brown alga in the Family Sargassaceae of the Order Fucales, was immersed for one day in an equivolume solvent mixture (1.4 L) of methanol and chloroform. The residue was removed by suction filtering, and lipid components were extracted. This residue was further immersed for one day in an equivolume solvent mixture (1.4 L) of methanol and chloroform, and lipid components were extracted by performing suction filtration. The solvent was removed under reduced pressure, and the extract (31.2 g) thus obtained was partitioned into two layers using water and chloroform. Thus, lipid components (23.8 g) were obtained. In addition, Sargassum yamadae was washed with artificial seawater after collection, dried in a constant temperature dehumidification chamber, pulverized, and then stored at −20° C. until used in experiments.
Among the lipid components obtained by the operation described in section (1), 5.14 g was fractionated into sixteen fractions, such as fraction A to fraction P, by open column chromatography (Φ7×45 cm) while the proportion of the solvent of an ethyl acetate-hexane system was varied, as shown in
Among these, as shown in
As shown in
Among these, a compound represented by formula (5) was obtained from fraction f. Further, fraction e was subjected to HPLC, and the compound represented by the formula (5) was obtained at a retention time of 18 minutes. As well, in
Furthermore, as shown in
Among the lipid components obtained by the extraction operation of lipid components as described above, the remaining 18.6 g, which was not used in the first operation of separation, was fractionated into fifteen fractions, such as fraction A′ to fraction O′, by open column chromatography (Φ7×45 cm) as shown in
As shown in
As shown in
The compounds thus obtained were subjected to an analysis of the molecular structures by 1H-NMR, 13C-NMR and the like. The NMR spectral data are presented in the Tables below. As well, the NMR data of the compound represented by the formula (1) are presented together with the NMR data published in Bull. Chem. Soc. Jpn., 2008, 81(9), 1125 to 1130, and the NMR data of the compound represented by the formula (4) are presented together with the NMR data of sargachromenol, which has a similar structure. The NMR data of the compounds represented by the formulas (5) and (6) are presented together with the NMR data of sargaquinoic acid.
From these NMR data, it was found that the compounds thus obtained are respectively represented by the formulas (1) to (6) described above.
2. Analysis of Anti-Leishmanial Activity
The compounds represented by formulas (1) to (6), which had been isolated by the procedure described above, were subjected to an analysis of the physiological activity under the conditions that are described below. Leishmania major promastigotes (MHOM/UZ/91/PM2) were selected as the Leishmania protozoa, and a L. major/egfp promastigotes in which a fluorescent protein egfp gene had been introduced was used. The compounds mentioned above were used as samples. Thus, the growth inhibition rate was determined under the following conditions.
(Analysis Procedure)
Promastigotes of transgenic Leishmania major (MHOM/UZ/91/PM2) expressing enhanced green fluorescent protein (L. major/egfp) were maintained at 25° C. in 199 medium (NISSUI Pharmaceutical, Tokyo, Japan) containing 10% fetal bovine serum, 25 mM Hepes buffer (MP Biomedicals, LLC) and 10 μg/mL Tunicamycin (SIGMA-ALDRICH, inc., USA). Subsequently, to each well of 96-well plates (Black microplate, NUNC, Denmark) containing 100 μL of L. major/egfp suspension with 1×106 cells/mL, 100 μL of test solution (sample dissolved in DMSO) was added, and the plates were incubated in a low-temperature incubator (SANYO, Japan) at 25° C. for 72 h. Thereafter, fluorescence signals of L. major/egfp promastigotes were measured with a fluorescence microplate reader (Fluoroscan Ascent FL, Dainippon. Pharmaceutical Co., Osaka, Japan) with excitation at 485 nm and emission at 538 nm. Furthermore, to determine the growth inhibition rate of L. major/egfp it is defined as 100% when Amphotericin B was used as the positive control, and the inhibition rate of various samples are presented.
In order to evaluate the in vivo anti-leishmanial activity of the compound represented by formula (3), which had been isolated by the procedure described above, a leishmaniasis mouse model was used to investigate the therapeutic effect.
Six-week old mice (Kalb/c, male, 6 animals per group) were infected with 1×107 cells of cultured promastigotes of L. major PM2. From the day after the infection day, the compound represented by the formula (3) was administered to each specimen in an amount of 200 μg by peritoneal injection. The administration schedule was such that the compound was continuously administered once a day for three weeks. Further, as control, the same analysis was carried out also for a treatment group to which Amphotericin B was administered, and for a treatment group to which none was administered.
The results obtained by measuring the size of ulcer in the mice are presented in
From these results, it was found that the compound represented by the formula (3) exhibits an anti-leishmanial activity that is equal to that of Amphotericin B, even in vivo.
Number | Date | Country | Kind |
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2010-234923 | Oct 2010 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2011/073482 | 10/13/2011 | WO | 00 | 10/4/2012 |
Publishing Document | Publishing Date | Country | Kind |
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WO2012/053408 | 4/26/2012 | WO | A |
Number | Name | Date | Kind |
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8373006 | Kimura et al. | Feb 2013 | B2 |
20120095257 | Kimura et al. | Apr 2012 | A1 |
Number | Date | Country |
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A-2004-331545 | Nov 2004 | JP |
A-2006-321728 | Nov 2006 | JP |
B1-4762381 | Aug 2011 | JP |
WO 2006011394 | Feb 2006 | WO |
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