JP5590286B2 - Novel Ca2 + signaling inhibitor - Google Patents
Novel Ca2 + signaling inhibitor Download PDFInfo
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- JP5590286B2 JP5590286B2 JP2009205207A JP2009205207A JP5590286B2 JP 5590286 B2 JP5590286 B2 JP 5590286B2 JP 2009205207 A JP2009205207 A JP 2009205207A JP 2009205207 A JP2009205207 A JP 2009205207A JP 5590286 B2 JP5590286 B2 JP 5590286B2
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- signaling inhibitor
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Description
本発明は、過剰免疫反応をはじめとする種々の疾患の予防や改善や治療に有用な、天然物由来の新規なCa2+シグナル伝達阻害剤に関する。 The present invention relates to a novel Ca 2+ signaling inhibitor derived from a natural product, which is useful for the prevention, amelioration and treatment of various diseases including hyperimmune reactions.
免疫系の反応は、Ca2+によって活性化されたカルシニューリン(セリン・スレオニンフォスファターゼ2B)により、転写因子NF-AT(Nuclear Factor of Activated T cell)が脱リン酸化されて核内に移行し、IL-2に代表されるサイトカインの転写を活性化し、産生されたサイトカインにより免疫細胞が増殖して引き起こされることが明らかにされている。従って、亢進したCa2+シグナル伝達を抑制する物質は、カルシニューリンの活性化を抑制し、過剰免疫反応やアレルギー症状などに対する予防薬や治療薬として有用である。
また、Ca2+の細胞内への流入の調節機能の一つに、電位依存型L型Ca2+チャネルがある。このチャンネルに結合してCa2+の細胞内への流入を抑制する物質は、心筋や血管などの平滑筋細胞でCa2+と拮抗し、虚血性心疾患、高血圧、末梢血管障害、脳血管障害、心不整脈などに対する予防薬や治療薬として有用である。
さらに、Ca2+シグナル伝達系は、MAPキナーゼ(Mitogen Activated Protein kinase)であるMpk1を活性化することから、Ca2+シグナル伝達を抑制する物質は、その活性化調節が異常となった各種の癌に対する予防薬や治療薬として有用である。また、Ca2+シグナル伝達系は、グリコーゲン・シンターゼ・キナーゼ-3(GSK-3:Glycogen Synthase Kinase-3)と関連していることから、Ca2+シグナル伝達を抑制する物質は、糖尿病、認知症などに対する予防薬や治療薬として有用である。
このように、生命の根幹を成すシグナル伝達系の一つであるCa2+シグナル伝達系を抑制する物質は、Ca2+シグナル伝達の亢進により引き起こされる様々な疾病(過剰免疫反応、アレルギー、癌、認知症、2型糖尿病、高血圧、狭心症など)を、そのシグナルを阻害することで、予防や改善や治療できることから注目されている。Ca2+シグナル伝達阻害剤の、免疫抑制剤や抗アレルギー剤への適用例としては、サイクロスポリンA、FK506がある。また、Ca2+シグナル伝達阻害剤の、高血圧や狭心症に対する予防薬や治療薬への適用例としては、ニフェジピン、バラパミル、ジルチアゼムがある。しかしながら、これらは活性の点においては満足できるものの、副作用の点において改善の余地があり、副作用が少ないまたは皆無のCa2+シグナル伝達阻害剤の天然資源からの探索はたいへん意義深い活動である。
The immune system is activated by calcineurin activated by Ca 2+ (serine / threonine phosphatase 2B), and the transcription factor NF-AT (Nuclear Factor of Activated T cell) is dephosphorylated and translocated into the nucleus. It has been clarified that the transcription of cytokines typified by -2 is activated and immune cells proliferate by the produced cytokines. Therefore, a substance that suppresses the enhanced Ca 2+ signaling suppresses the activation of calcineurin and is useful as a prophylactic or therapeutic agent for hyperimmune reactions and allergic symptoms.
One of the functions of regulating Ca 2+ entry into cells is a voltage-dependent L-type Ca 2+ channel. A substance that binds to this channel and suppresses the influx of Ca 2+ into cells antagonizes Ca 2+ in smooth muscle cells such as myocardium and blood vessels, resulting in ischemic heart disease, hypertension, peripheral vascular disorders, and cerebrovascular It is useful as a prophylactic or therapeutic drug for disorders, cardiac arrhythmias, etc.
Furthermore, since the Ca 2+ signal transduction system activates Mpk1, a MAP kinase (Mitogen Activated Protein kinase), substances that suppress Ca 2+ signal transduction have various abnormalities in their activation regulation. It is useful as a preventive or therapeutic agent for cancer. In addition, since the Ca 2+ signaling system is related to Glycogen Synthase Kinase-3 (GSK-3), substances that suppress Ca 2+ signaling are diabetic, cognitive It is useful as a prophylactic or therapeutic drug for diseases.
In this way, substances that suppress the Ca 2+ signaling system, which is one of the signal transduction systems that form the basis of life, are various diseases caused by the enhancement of Ca 2+ signaling (hyperimmune reactions, allergies, cancers). , Dementia, type 2 diabetes, high blood pressure, angina pectoris, etc.) are being attracted attention because they can be prevented, improved or treated by inhibiting their signals. Examples of application of Ca 2+ signaling inhibitors to immunosuppressants and antiallergic agents include cyclosporin A and FK506. Examples of application of Ca 2+ signaling inhibitors to prophylactic and therapeutic agents for hypertension and angina include nifedipine, valapamil, and diltiazem. However, although these are satisfactory in terms of activity, there is room for improvement in terms of side effects, and the search for natural sources of Ca 2+ signaling inhibitors with few or no side effects is a very significant activity.
本発明者らは、以上の観点からの研究を精力的に行っており、これまでに、Ca2+シグナル伝達阻害作用を有する物質を、モクレン科植物、セリ科植物、ウコギ科植物、マツ科植物などから見出すとともに(例えば特許文献1、特許文献2、非特許文献1、非特許文献2)、微生物からも見出している(例えば特許文献3)。 The present inventors have been energetically conducting research from the above viewpoints, and to date, substances having an inhibitory action on Ca 2+ signaling have been added to magnoliaceae plants, celery family plants, araceae plants, pine familys. It is found from plants and the like (for example, Patent Document 1, Patent Document 2, Non-Patent Document 1, and Non-Patent Document 2), and is also found from microorganisms (for example, Patent Document 3).
しかしながら、天然には更なる新規なCa2+シグナル伝達阻害作用を有する素材や物質が存在することが考えられる。
そこで本発明は、新規なCa2+シグナル伝達阻害剤を提供することを目的とする。
However, it is conceivable that naturally there are materials and substances having further novel action of inhibiting Ca 2+ signaling.
Accordingly, an object of the present invention is to provide a novel Ca 2+ signaling inhibitor.
本発明者らは、上記の点に鑑みて鋭意検討を行った結果、琥珀の抽出物にCa2+シグナル伝達阻害作用を有することを見出した。 As a result of intensive studies in view of the above points, the present inventors have found that the extract of cocoon has an inhibitory effect on Ca 2+ signaling.
上記の知見に基づいてなされた本発明のCa2+シグナル伝達阻害剤は、請求項1記載の通り、下記の構造式(1)で表される化合物は含むが、デヒドロアビエチン酸およびピマール酸は含まない琥珀の抽出物を有効成分とすることを特徴とする。
また、本発明のCa2+シグナル伝達阻害剤は、請求項3記載の通り、上記の構造式(1)で表される化合物またはその薬学的に許容される塩を有効成分とすることを特徴とする。
また、本発明の化合物は、請求項4記載の通り、上記の構造式(1)で表されることを特徴とする。
The Ca 2+ signaling inhibitor of the present invention made based on the above findings includes a compound represented by the following structural formula (1) as described in claim 1, but includes dehydroabietic acid and pimaric acid. It is characterized by having no soot extract as an active ingredient .
Also, Ca 2+ signaling inhibitors of the present invention, as claimed in claim 3, characterized in that a compound or a pharmaceutically active ingredient acceptable salt represented by the structural formula (1) to.
Also, the compounds of the invention, as claimed in claim 4, characterized by being represented by the above structural formula (1).
本発明によれば、過剰免疫反応、アレルギー、癌、認知症、2型糖尿病、高血圧、狭心症などの予防薬や治療薬として有用な、天然物由来の新規なCa2+シグナル伝達阻害剤を提供することができる。 According to the present invention, a novel Ca 2+ signaling inhibitor derived from a natural product, useful as a preventive or therapeutic agent for hyperimmune reactions, allergies, cancer, dementia, type 2 diabetes, hypertension, angina, etc. Can be provided.
本発明のCa2+シグナル伝達阻害剤は、琥珀の抽出物を有効成分とすることを特徴とするものである。本発明において琥珀とは、植物の樹脂が化石化したものを意味する。その産地としては、ロシア、ポーランド、ドミニカなどの他、日本国内では岩手県久慈市近辺がよく知られている。琥珀の抽出物が有する生理活性作用については、例えば特開2007-314522号公報において皮膚のターンオーバー促進作用が、特開2008-266260号公報においてヒアルロン酸産生促進作用が報告されている。しかしながら、琥珀の抽出物がCa2+シグナル伝達阻害作用を有することの報告は、本発明者らが知る限りにおいてこれまでに存在しない。 The Ca 2+ signaling inhibitor of the present invention is characterized by using an extract of persimmon as an active ingredient. In the present invention, cocoon means a fossilized plant resin. In addition to Russia, Poland, Dominica, and other localities in Japan, the area around Kuji City in Iwate Prefecture is well known. Regarding the physiologically active action of the koji extract, for example, Japanese Unexamined Patent Application Publication No. 2007-314522 reports a skin turnover promoting action, and Japanese Unexamined Patent Publication No. 2008-266260 reports a hyaluronic acid production promoting action. However, to the best of our knowledge, there has never been a report that sputum extract has an inhibitory effect on Ca 2+ signaling.
琥珀の抽出物は、一般的な天然有機成分の抽出方法に従って、例えば粉末化した琥珀に有機溶媒を加えて抽出操作を行った後、得られた濾液から有機溶媒を除去することで得ることができる。用いることができる有機溶媒としては、アルコール(メタノールやエタノールやイソプロパノールなど)、ベンゼン、ヘキサン、酢酸エチル、アセトニトリル、アセトン、クロロホルム、ジクロロメタンなどが挙げられる。抽出操作は、単一の有機溶媒を用いて行ってもよいし、複数の有機溶媒を混合して用いて行ってもよい。また、抽出操作を、例えばアルコールで抽出した後、さらに酢酸エチルで抽出するといったように多段階で行い、抽出物の精製度を高めてもよい。さらに、イオン交換樹脂、非イオン性吸着樹脂、ゲルろ過クロマトグラフィー、活性炭やアルミナやシリカゲルなどの吸着剤によるクロマトグラフィーおよび高速液体クロマトグラフィーを用いた分離操作の他、結晶化操作、減圧濃縮操作、凍結乾燥操作などの各種操作を適宜組み合わせてもよい。 The extract of koji can be obtained by, for example, adding an organic solvent to powdered koji according to a general extraction method of natural organic components and performing an extraction operation, and then removing the organic solvent from the obtained filtrate. it can. Examples of the organic solvent that can be used include alcohols (such as methanol, ethanol, and isopropanol), benzene, hexane, ethyl acetate, acetonitrile, acetone, chloroform, and dichloromethane. The extraction operation may be performed using a single organic solvent, or may be performed using a mixture of a plurality of organic solvents. In addition, the extraction operation may be performed in multiple stages, for example, extraction with alcohol and then extraction with ethyl acetate to increase the purity of the extract. Furthermore, in addition to separation operations using ion exchange resins, nonionic adsorption resins, gel filtration chromatography, chromatography with adsorbents such as activated carbon, alumina and silica gel and high performance liquid chromatography, crystallization operations, vacuum concentration operations, Various operations such as freeze-drying operations may be appropriately combined.
琥珀の抽出物が有するCa2+シグナル伝達阻害作用の有効成分の全容は、現時点では必ずしも明確ではない。しかしながら、後述する実施例から明らかなように、本発明者らは、ロシア産の琥珀の抽出物が有するCa2+シグナル伝達阻害作用の有効成分が、松に含まれるジテルペノイド化合物であって、Ca2+シグナル伝達阻害作用を有することが本発明者らのこれまでの研究成果として非特許文献2によって既に知られている下記の構造式で表されるデヒドロアビエチン酸(Dehydroabietic acid)およびピマール酸(Pimaric acid)であることを特定している一方で、久慈産の琥珀の抽出物が有するCa2+シグナル伝達阻害作用の有効成分が、下記の構造式(1)で表される新規なラブダン型様化合物であることを特定している。このように、産地が異なった琥珀の抽出物が同じCa2+シグナル伝達阻害作用を有していても、その有効成分が産地によって異なることは、非常に興味深い。
上記の知見に基づいて、本発明は、琥珀からの抽出操作により、Ca2+シグナル伝達阻害作用を有するデヒドロアビエチン酸、ピマール酸、下記の構造式(1)で表される化合物を単離取得することによるCa2+シグナル伝達阻害剤の調製方法を提供するとともに、下記の構造式(1)で表される化合物またはその薬学的に許容される塩を有効成分とするCa2+シグナル伝達阻害剤、下記の構造式(1)で表される化合物を提供する。ここで薬学的に許容される塩としては、ナトリウム、カリウム、マグネシウム、カルシウム、アルミニウムなどとの無機塩、低級アルキルアミン、低級アルコールアミンなどとの有機塩、リジン、アルギニン、オルニチンなどとの塩基性アミノ酸塩の他、アンモニウム塩などの公知のものが挙げられる。
本発明のCa2+シグナル伝達阻害剤を、医薬品としてヒトや動物に対して投与する場合の投与方法は、経口的な投与方法であってもよいし、非経口的な投与方法であってもよい。非経口的な投与方法としては、例えば、静脈注射、筋肉内注射、皮下注射、腹腔内注射、経皮投与、経肺投与、経鼻投与、経腸投与、口腔内投与、経粘膜投与などが挙げられ、この場合、本発明のCa2+シグナル伝達阻害剤は、これらの投与方法に適した形態に自体公知の方法で製剤化されて投与される。製剤形態としては、例えば、注射剤、坐剤、エアゾール剤、経皮吸収テープ、点眼剤、点鼻剤などが挙げられる。注射剤を調製する場合、適宜、pH調整剤、緩衝剤、安定化剤、可溶化剤などを添加して注射剤とする。経口投与製剤としては、例えば、錠剤(糖衣錠、コーティング錠、バッカル錠を含む)、散剤、カプセル剤(ソフトカプセルを含む)、顆粒剤(コーティングしたものを含む)、丸剤、トローチ剤、液剤、これらの製剤学的に許容され得る徐放化製剤などが挙げられる。液剤には、懸濁剤、乳剤、シロップ剤(ドライシロップを含む)、エリキシル剤などを含む。例えば、錠剤は、公知の製剤学的製造法に準じ、薬学的に許容され得る担体、賦形剤、結合剤、崩壊剤、滑沢剤、着色剤などとともに調製することができる。この場合、担体や賦形剤としては、例えば、乳糖、ブドウ糖、白糖、マンニトール、馬鈴薯デンプン、トウモロコシデンプン、炭酸カルシウム、リン酸カルシウム、硫酸カルシウム、結晶セルロース、カンゾウ末、ゲンチアナ末などを用いることができる。結合剤としては、例えば、デンプン、トラガントゴム、ゼラチン、シロップ、ポリビニルアルコール、ポリビニルエーテル、ポリビニルピロリドン、ヒドロキシプロピルセルロース、メチルセルロース、エチルセルロース、カルボシキメチルセルロースなどを用いることができる。崩壊剤としては、例えば、デンプン、寒天、ゼラチン末、カルボキシメチルセルロースナトリウム、カルボキシメチルセルロースカルシウム、結晶セルロース、炭酸カルシウム、炭酸水素ナトリウム、アルギン酸ナトリウムなどを用いることができる。滑沢剤としては、例えば、ステアリン酸マグネシウム、タルク、水素添加植物油、マクロゴールなどを用いることができる。着色剤としては、医薬品に添加することが許容されているものを用いることができる。錠剤や顆粒剤は、必要に応じ、白糖、ゼラチン、ヒドロキシプロピルセルロース、精製セラック、グリセリン、ソルビトール、エチルセルロース、ヒドロキシプロピルメチルセルロース、ポリビニルピロリドン、フタル酸セルロースアセテート、ヒドロキシプロピルメチルセルロースフタレート、メチルメタクリレート、メタアクリル酸重合体などで被膜してもよいし、2層以上の層で被膜してもよい。さらにエチルセルロースやゼラチンなどを用いてカプセル化してもよい。 The administration method when the Ca 2+ signaling inhibitor of the present invention is administered as a pharmaceutical to humans or animals may be an oral administration method or a parenteral administration method. Good. Examples of parenteral administration methods include intravenous injection, intramuscular injection, subcutaneous injection, intraperitoneal injection, transdermal administration, pulmonary administration, nasal administration, enteral administration, buccal administration, and transmucosal administration. In this case, the Ca 2+ signaling inhibitor of the present invention is formulated and administered in a manner known per se into a form suitable for these administration methods. Examples of the dosage form include injections, suppositories, aerosols, transdermal absorption tapes, eye drops, nasal drops and the like. When preparing an injection, a pH adjuster, a buffer, a stabilizer, a solubilizing agent and the like are appropriately added to form an injection. Examples of oral preparations include tablets (including sugar-coated tablets, coated tablets, and buccal tablets), powders, capsules (including soft capsules), granules (including those coated), pills, troches, liquids, and the like. And a pharmaceutically acceptable sustained release preparation. Liquids include suspensions, emulsions, syrups (including dry syrups), elixirs and the like. For example, a tablet can be prepared with a pharmaceutically acceptable carrier, excipient, binder, disintegrant, lubricant, colorant and the like according to known pharmaceutical manufacturing methods. In this case, as the carrier or excipient, for example, lactose, glucose, sucrose, mannitol, potato starch, corn starch, calcium carbonate, calcium phosphate, calcium sulfate, crystalline cellulose, licorice powder, gentian powder and the like can be used. As the binder, for example, starch, tragacanth gum, gelatin, syrup, polyvinyl alcohol, polyvinyl ether, polyvinyl pyrrolidone, hydroxypropyl cellulose, methyl cellulose, ethyl cellulose, carboxymethyl cellulose and the like can be used. As the disintegrant, for example, starch, agar, gelatin powder, sodium carboxymethyl cellulose, carboxymethyl cellulose calcium, crystalline cellulose, calcium carbonate, sodium hydrogen carbonate, sodium alginate and the like can be used. As the lubricant, for example, magnesium stearate, talc, hydrogenated vegetable oil, macrogol and the like can be used. As the colorant, those allowed to be added to pharmaceuticals can be used. Tablets and granules are sucrose, gelatin, hydroxypropylcellulose, purified shellac, glycerin, sorbitol, ethylcellulose, hydroxypropylmethylcellulose, polyvinylpyrrolidone, cellulose phthalate acetate, hydroxypropylmethylcellulose phthalate, methyl methacrylate, methacrylic acid as required It may be coated with a polymer or the like, or may be coated with two or more layers. Further, it may be encapsulated using ethyl cellulose or gelatin.
本発明のCa2+シグナル伝達阻害剤が有効に作用する疾患としては、過剰免疫反応、アレルギー、癌、認知症、2型糖尿病、高血圧、狭心症などが挙げられる。本発明のCa2+シグナル伝達阻害剤を患者に投与する場合、その投与量は、患者の年齢や体重、症状の程度、健康状態などの条件によって適宜設定すればよいが、標準的には、成人1日当たり約10mg〜約10gを、経口的または非経口的に1日1回〜数回にて投与すればよい。点眼剤の場合、有効成分の濃度が0.003〜5(w/v)%の点眼剤を、1日数回、1回数滴投与すればよい。 Examples of diseases in which the Ca 2+ signaling inhibitor of the present invention acts effectively include hyperimmune reaction, allergy, cancer, dementia, type 2 diabetes, hypertension, angina and the like. When the Ca 2+ signaling inhibitor of the present invention is administered to a patient, the dose may be appropriately set depending on conditions such as the age and weight of the patient, the degree of symptoms, and the health condition. About 10 mg to about 10 g per day for an adult may be administered orally or parenterally once to several times a day. In the case of eye drops, an eye drop having an active ingredient concentration of 0.003 to 5 (w / v)% may be administered once a day several times.
また、本発明のCa2+シグナル伝達阻害剤は、種々の形態の食品(サプリメントを含む)に、Ca2+シグナル伝達阻害作用を発揮するに足る有効量を添加して食してもよい(体重1kg当たり0.1mg〜100mgの摂取が標準的である)。 In addition, the Ca 2+ signaling inhibitor of the present invention may be eaten by adding an effective amount sufficient to exert a Ca 2+ signaling inhibitory action to various forms of food (including supplements) (body weight). Ingestion of 0.1 mg to 100 mg per kg is standard).
以下、本発明を実施例によって詳細に説明するが、本発明は以下の記載に限定して解釈されるものではない。 EXAMPLES Hereinafter, although an Example demonstrates this invention in detail, this invention is limited to the following description and is not interpreted.
この実施例において、Ca2+シグナル伝達阻害作用の評価は、遺伝子zds1Δ破壊酵母(Saccharomyces cerevisiae)がCa2+超感受性を示し、高濃度Ca2+を含む培地では増殖がG2期停止する表現型(Nature, 392, 303-306, 1998)を改良した系を用いて行った。
基本となる系の有用性は、微生物培養液や合成化合物ライブラリーを用いて既に実証済みであり、既知化合物であるラディシコールのCa2+シグナル伝達阻害作用がこの系により発見されている(生物工学, 77, 406-408, 1999)。この系は、高濃度のCa2+を含む培地では、Ca2+シグナルが超活性化され酵母は生育しないが、培地中にその経路を阻害する物質が含まれている場合には、酵母を生育させる(酵母の生育円が生じる)というポジティブスクリーニングである(図1参照)。そのため、毒性が無く、特異性の高い化合物の発見が可能である(Biosci. Biotechnol. Biochem., 64(9), 1942-1946, 2000)。実際に、この系を用いて、医薬品として実用化されている免疫抑制剤のFK506やサイクロスポリンA、Ca2+拮抗剤のニフェジピンなどのCa2+シグナル伝達阻害作用が確認されている。さらに、図2に示した通り、この系によれば、Ca2+拮抗剤やカルシニューリン阻害剤以外にも、論理的にはMpk1阻害剤、GSK-3阻害剤も選択が可能であり、実際に、GSK-3β阻害剤は、酵母の生育円を生じさせることから、本発明者らは、この系を用いて、GSK-3阻害剤の評価を行えることを確認している(J. Antibiotics., 61(8), 496-502, 2008)。
この実施例において用いた改良系は、遺伝子zds1Δerg3Δpdr1/3Δ破壊酵母を用いたものである。この遺伝子4重破壊酵母は、遺伝子1重破壊酵母の薬剤の膜透過性を高めるために、さらに膜成分と薬剤排出ポンプの遺伝子を自体公知の方法で破壊したものであり、薬剤感受性に優れることから、遺伝子1重破壊酵母を用いた基本系よりも精度よくCa2+シグナル伝達阻害作用の評価を行うことができる。
In this example, the evaluation of Ca 2+ signaling inhibitory activity, gene Zds1 delta disrupted yeast (Saccharomyces cerevisiae) represents Ca 2+ hypersensitive, growth in medium containing a high concentration Ca 2+ stops G 2 phases A system with an improved phenotype (Nature, 392, 303-306, 1998) was used.
The usefulness of the basic system has already been demonstrated using a microbial culture solution and a synthetic compound library, and the inhibitory effect of radicicol, a known compound, on Ca 2+ signaling has been discovered by this system. Engineering, 77, 406-408, 1999). In a medium containing a high concentration of Ca 2+ , this system does not grow yeast because the Ca 2+ signal is superactivated, but if the medium contains substances that inhibit the pathway, It is a positive screening that grows (yeast growth circle is generated) (see Fig. 1). Therefore, it is possible to discover a compound having no toxicity and high specificity (Biosci. Biotechnol. Biochem., 64 (9), 1942-1946, 2000). In fact, this system has been used to confirm an inhibitory effect on Ca 2+ signaling such as FK506, an immunosuppressant that has been put to practical use as a pharmaceutical, cyclosporin A, and nifedipine, a Ca 2+ antagonist. Furthermore, as shown in FIG. 2, according to this system, in addition to Ca 2+ antagonists and calcineurin inhibitors, Mpk1 inhibitors and GSK-3 inhibitors can be logically selected. Since the GSK-3β inhibitor produces a growth circle of yeast, the present inventors have confirmed that the GSK-3 inhibitor can be evaluated using this system (J. Antibiotics. , 61 (8), 496-502, 2008).
Improved system used in this embodiment is obtained by using the gene zds1 Δ erg3 Δ pdr1 / 3 Δ disrupted yeast. In order to increase the membrane permeability of the drug of the gene single disruption yeast, this gene quadruple disruption yeast is obtained by further disrupting the membrane components and the gene of the drug efflux pump by a method known per se and having excellent drug sensitivity Therefore, the Ca 2+ signaling inhibition effect can be evaluated with higher accuracy than the basic system using the gene-single-disrupted yeast.
参考例1:評価系の詳細
遺伝子4重破壊酵母をYPD培地(イーストエキストラクト10g/l、ペプトン20g/l、デキストロース20g/l、pH6.5)で28℃、一晩前培養し、A590=1.0の培養液を6ml、5MのCaCl2を3ml、YPD寒天培地41mlをよく懸濁し、シャーレに12.5mlずつ分注した。測定用の各種濃度のサンプルをペーパーディスク(8mm、thick)に40μlしみ込ませてシャーレの上に載せ、28℃で3日間培養した後、生育円の大きさを測定し、Ca2+シグナル伝達阻害活性を評価した。
Reference Example 1: Evaluation system Details gene quadruple disrupted yeast YPD medium (yeast extract 10 g / l, peptone 20 g / l, dextrose 20g / l, pH6.5) at 28 ° C., and precultured overnight, A 590 = 6 ml of 1.0 culture solution, 3 ml of 5M CaCl 2 and 41 ml of YPD agar medium were well suspended, and 12.5 ml each was dispensed into a petri dish. Samples of various concentrations for measurement were soaked in 40 μl of paper disc (8 mm, thick), placed on a petri dish, cultured at 28 ° C. for 3 days, measured for growth circle size, and inhibition of Ca 2+ signaling Activity was evaluated.
実施例1:ロシア産と久慈産のそれぞれの琥珀の抽出物のCa2+シグナル伝達阻害作用
ロシア産と久慈産のそれぞれの琥珀を粉末化し、メタノールを加えて抽出操作を行った後、濾液からメタノールを除去することで、油状のメタノール抽出物を得た。このメタノール抽出物にメタノールを加えて10mg/ml溶液を調製した後、さらにメタノールで希釈して調製した種々の濃度の溶液をペーパーディスクにしみ込ませ、そのCa2+シグナル伝達阻害活性を酵母の生育円の大きさで評価した。結果を表1に示す。
Example 1: Inhibition of Ca 2+ signal transduction of Russian and Kuji cocoon extracts After pulverizing Russian and Kuji cocoons and adding methanol, extraction was performed. By removing methanol, an oily methanol extract was obtained. After preparation of 10mg / ml solution by adding methanol to the methanol extract, further the solution of various concentrations were prepared by diluting with methanol soaked in a paper disc, growth of the yeast and the Ca 2+ signaling inhibitory activity Evaluation was based on the size of the circle. The results are shown in Table 1.
表1から明らかなように、ロシア産と久慈産のいずれの琥珀のメタノール抽出物も、強力にCa2+シグナル伝達を阻害する結果、幅広い濃度範囲で生育円を生じさせた。 As is clear from Table 1, both the Russian and Kuji methanol extracts of moths strongly inhibited Ca 2+ signaling, resulting in growth circles in a wide concentration range.
実施例2:ロシア産の琥珀のメタノール抽出物が有するCa2+シグナル伝達阻害作用の有効成分の単離精製
ロシア産の琥珀の粉末60.80 gからメタノール抽出物を12.09 g得、得られたメタノール抽出物に水と酢酸エチルを加えて抽出操作を行った後、酢酸エチル層から酢酸エチルを除去することで、油状の酢酸エチル抽出物を5.95 g得た。こうして得られた酢酸エチル抽出物にメタノールを加えて100mg/ml溶液を調製した後、ヘキサン:酢酸エチル=3:1の展開溶媒を用いてシリカゲルTLCで展開し、活性バンドをRf=0.38近辺に得た。活性バンドをかきとり、メタノールで活性成分を溶出した後、いったんメタノールを除去してから再びメタノールを加えて100mg/ml溶液を調製し、その一部をHPLC分析した(カラム:CAPCELL PAK C18 UG120, 5 μm (4.6 φ x 150 mm)、溶媒:80 % MeOH-0.1 % CH3COOH、流速:1 ml/min)。HPLC分析チャートを図3に示す。このチャートにおいて特徴的な約15分の時点で溶出するピークAと約24分の時点で溶出するピークBのそれぞれの単離精製を行い(溶媒:80 % MeOH-0.1 % CH3COOH)、その構造をUV測定、1H-NMR測定、13C-NMR測定、質量分析によって解析した。その結果、前者がデヒドロアビエチン酸、後者がピマール酸であることを同定するとともに、それぞれのCa2+シグナル伝達阻害作用を確認した。
Example 2: Isolation and purification of active ingredient of Ca 2+ signaling inhibitory activity possessed by Russian cocoon methanol extract 12.09 g of methanol extract was obtained from 60.80 g of Russian cocoon powder, and the resulting methanol extraction Water and ethyl acetate were added to the product for extraction, and then ethyl acetate was removed from the ethyl acetate layer to obtain 5.95 g of an oily ethyl acetate extract. Methanol was added to the ethyl acetate extract thus obtained to prepare a 100 mg / ml solution, which was developed on silica gel TLC using a developing solvent of hexane: ethyl acetate = 3: 1, and the active band was around Rf = 0.38. Obtained. After scraping the active band and eluting the active ingredient with methanol, methanol was once removed and methanol was added again to prepare a 100 mg / ml solution. A part of the solution was analyzed by HPLC (column: CAPCELL PAK C18 UG120, 5 μm (4.6 φ x 150 mm), solvent: 80% MeOH-0.1% CH 3 COOH, flow rate: 1 ml / min). An HPLC analysis chart is shown in FIG. In this chart, each of the characteristic peak A eluting at about 15 minutes and peak B eluting at about 24 minutes are isolated and purified (solvent: 80% MeOH-0.1% CH 3 COOH). The structure was analyzed by UV measurement, 1 H-NMR measurement, 13 C-NMR measurement, and mass spectrometry. As a result, it was identified that the former was dehydroabietic acid and the latter was pimaric acid, and their respective Ca 2+ signaling inhibition effects were confirmed.
実施例3:久慈産の琥珀のメタノール抽出物が有するCa2+シグナル伝達阻害作用の有効成分の単離精製
久慈産の琥珀の粉末64.20 gからメタノール抽出物を7.39 g得、得られたメタノール抽出物に水と酢酸エチルを加えて抽出操作を行った後、酢酸エチル層から酢酸エチルを除去することで、油状の酢酸エチル抽出物を5.24 g得た。こうして得られた酢酸エチル抽出物にメタノールを加えて100mg/ml溶液を調製した後、ヘキサン:酢酸エチル=3:1の展開溶媒を用いてシリカゲルTLCで展開し、活性バンドをRf=0.38近辺に得た。活性バンドをかきとり、メタノールで活性成分を溶出した後、いったんメタノールを除去してから再びメタノールを加えて100mg/ml溶液を調製し、その一部をHPLC分析した(カラム:CAPCELL PAK C18 UG120, 5 μm (4.6 φ x 150 mm)、溶媒:80 % MeOH-0.1 % CH3COOH、流速:1 ml/min)。HPLC分析チャートを図4に示す。このチャートにおいて特徴的な約12分の時点で溶出するピークCの単離精製を行い(溶媒:75 % MeOH-0.1 % CH3COOH)、その構造をUV測定、1H-NMR測定、13C-NMR測定、質量分析によって解析した。UVスペクトルのチャートを図5に(50 μg/ml in MeOH)、1H-NMRスペクトルのチャートを図6に(CDCl3、600MHz)、13C-NMRスペクトルのチャートを図7に(CDCl3、150MHz)、EI-MSスペクトルのチャートを図8にそれぞれ示す。構造解析の結果から、このピークが下記の構造式(1)で表される新規なラブダン型様化合物に由来することを明らかにするとともに(HREI-MSにて分子量260、C18H28O、Calcd. 260.2141, Obsrb. 260.2140、1H-NMRスペクトルと13C-NMRスペクトルの帰属をそれぞれ図9と図10に示す)、そのCa2+シグナル伝達阻害作用を確認した(酵母の生育円の大きさで評価した結果を表2に示す)。
製剤例1:注射剤
下記の構造式(1)で表される化合物のナトリウム塩1.5gを生理食塩水100mlに溶解し(合計1.5g/100ml)、バイアルに充填した後、加熱殺菌を行って、静注用注射剤を製造した。
製剤例2:錠剤
以下の組成で各成分を混合し、打錠して、実施例1で得たロシア産の琥珀のメタノール抽出物を50mg含む500mgの錠剤400個を製造した。
ロシア産の琥珀のメタノール抽出物 ・・・ 20g
馬鈴薯澱粉 ・・・ 6g
ステアリン酸タルク ・・・ 4g
6%HPC乳糖 ・・・ 170g
(合計200g)
Formulation Example 2: Tablets Each component was mixed with the following composition and tableted to produce 400 500 mg tablets containing 50 mg of the Russian cocoon methanol extract obtained in Example 1.
Russian cocoon methanol extract ・ ・ ・ 20g
Potato starch ・ ・ ・ 6g
Talc stearate ・ ・ ・ 4g
6% HPC lactose ... 170g
(Total 200g)
製剤例3:顆粒剤
以下の組成で各成分を混合し、圧縮成形し、粉砕し、整粒して、20〜50メッシュの5%顆粒剤を製造した。
久慈産の琥珀のメタノール抽出物 ・・・ 10g
乳糖 ・・・ 187g
ステアリン酸マグネシウム ・・・ 3g
(合計200g)
Formulation Example 3: Granules Each component was mixed with the following composition, compression-molded, pulverized, and sized to produce 20-50 mesh 5% granules.
Muji extract of Kuji products 琥珀 10g
Lactose ... 187g
Magnesium stearate ・ ・ ・ 3g
(Total 200g)
製剤例4:カプセル剤
以下の組成で各成分をよく混合し、混合物を1号カプセルに充填して、カプセル剤300個を製造した。
久慈産の琥珀のメタノール抽出物 ・・・ 5g
乳糖 ・・・ 40g
馬鈴薯澱粉 ・・・ 50g
ヒドロキシプロピルメチルセルロース ・・・ 3.5g
ステアリン酸マグネシウム ・・・ 1.5g
(合計100g)
Formulation Example 4: Capsules Each component was mixed well with the following composition, and the mixture was filled into No. 1 capsules to produce 300 capsules.
Methanol extract of Kuji products
Lactose ・ ・ ・ 40g
Potato starch ... 50g
Hydroxypropyl methylcellulose ... 3.5g
Magnesium stearate ・ ・ ・ 1.5g
(Total 100g)
製剤例5:点眼剤
以下の各成分を滅菌精製水100mlに溶解し、常法により点眼剤を製造した。
下記の構造式(1)で表される化合物 ・・・ 0.1g
塩化ナトリウム ・・・ 0.9g
塩化ベンザルコニウム ・・・ 微量
1N水酸化ナトリウム ・・・ 適量
1N塩酸 ・・・ 適量
Compound represented by the following structural formula (1): 0.1 g
Sodium chloride ... 0.9g
Benzalkonium chloride ・ ・ ・ Trace amount
1N sodium hydroxide
1N hydrochloric acid: appropriate amount
本発明は、過剰免疫反応、アレルギー、癌、認知症、2型糖尿病、高血圧、狭心症などの予防薬や治療薬として有用な、天然物由来の新規なCa2+シグナル伝達阻害剤を提供することができる点において産業上の利用可能性を有する。
The present invention provides a novel Ca 2+ signaling inhibitor derived from natural products that is useful as a preventive or therapeutic agent for hyperimmune reactions, allergies, cancer, dementia, type 2 diabetes, hypertension, angina, etc. It has industrial applicability in that it can be done.
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