WO2012140574A1 - Substituted catechols as inhibitors of il-4 and il-5 for the treatment bronchial asthma - Google Patents
Substituted catechols as inhibitors of il-4 and il-5 for the treatment bronchial asthma Download PDFInfo
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- WO2012140574A1 WO2012140574A1 PCT/IB2012/051757 IB2012051757W WO2012140574A1 WO 2012140574 A1 WO2012140574 A1 WO 2012140574A1 IB 2012051757 W IB2012051757 W IB 2012051757W WO 2012140574 A1 WO2012140574 A1 WO 2012140574A1
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- phenylene diacetate
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- 0 *c(c(*)c1*)c(*)c(*)c1O Chemical compound *c(c(*)c1*)c(*)c(*)c1O 0.000 description 2
- HUPKYJVMFZEFOA-UHFFFAOYSA-N C=CCc(c(CC=C)c1)cc(O)c1O Chemical compound C=CCc(c(CC=C)c1)cc(O)c1O HUPKYJVMFZEFOA-UHFFFAOYSA-N 0.000 description 1
- BUUFRRYYYJLJGC-UHFFFAOYSA-N C=CCc(cc1)c(CC=C)c(O)c1O Chemical compound C=CCc(cc1)c(CC=C)c(O)c1O BUUFRRYYYJLJGC-UHFFFAOYSA-N 0.000 description 1
- ACPIOQKVNYLGJL-UHFFFAOYSA-N CC(C)(C=O)c(cc1)cc2c1OCO2 Chemical compound CC(C)(C=O)c(cc1)cc2c1OCO2 ACPIOQKVNYLGJL-UHFFFAOYSA-N 0.000 description 1
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- C07C39/18—Compounds having at least one hydroxy or O-metal group bound to a carbon atom of a six-membered aromatic ring monocyclic with unsaturation outside the aromatic ring
- C07C39/19—Compounds having at least one hydroxy or O-metal group bound to a carbon atom of a six-membered aromatic ring monocyclic with unsaturation outside the aromatic ring containing carbon-to-carbon double bonds but no carbon-to-carbon triple bonds
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- A61K31/05—Phenols
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- A61K31/277—Nitriles; Isonitriles having a ring, e.g. verapamil
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- A61K31/00—Medicinal preparations containing organic active ingredients
- A61K31/33—Heterocyclic compounds
- A61K31/335—Heterocyclic compounds having oxygen as the only ring hetero atom, e.g. fungichromin
- A61K31/357—Heterocyclic compounds having oxygen as the only ring hetero atom, e.g. fungichromin having two or more oxygen atoms in the same ring, e.g. crown ethers, guanadrel
- A61K31/36—Compounds containing methylenedioxyphenyl groups, e.g. sesamin
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
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- A61P11/06—Antiasthmatics
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- C07C251/00—Compounds containing nitrogen atoms doubly-bound to a carbon skeleton
- C07C251/32—Oximes
- C07C251/34—Oximes with oxygen atoms of oxyimino groups bound to hydrogen atoms or to carbon atoms of unsubstituted hydrocarbon radicals
- C07C251/36—Oximes with oxygen atoms of oxyimino groups bound to hydrogen atoms or to carbon atoms of unsubstituted hydrocarbon radicals with the carbon atoms of the oxyimino groups bound to hydrogen atoms or to acyclic carbon atoms
- C07C251/40—Oximes with oxygen atoms of oxyimino groups bound to hydrogen atoms or to carbon atoms of unsubstituted hydrocarbon radicals with the carbon atoms of the oxyimino groups bound to hydrogen atoms or to acyclic carbon atoms to carbon atoms of an unsaturated carbon skeleton
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- C07C—ACYCLIC OR CARBOCYCLIC COMPOUNDS
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- C07C251/62—Oximes having oxygen atoms of oxyimino groups esterified
- C07C251/64—Oximes having oxygen atoms of oxyimino groups esterified by carboxylic acids
- C07C251/66—Oximes having oxygen atoms of oxyimino groups esterified by carboxylic acids with the esterifying carboxyl groups bound to hydrogen atoms, to acyclic carbon atoms or to carbon atoms of rings other than six-membered aromatic rings
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- C07—ORGANIC CHEMISTRY
- C07C—ACYCLIC OR CARBOCYCLIC COMPOUNDS
- C07C255/00—Carboxylic acid nitriles
- C07C255/01—Carboxylic acid nitriles having cyano groups bound to acyclic carbon atoms
- C07C255/32—Carboxylic acid nitriles having cyano groups bound to acyclic carbon atoms having cyano groups bound to acyclic carbon atoms of a carbon skeleton containing at least one six-membered aromatic ring
- C07C255/36—Carboxylic acid nitriles having cyano groups bound to acyclic carbon atoms having cyano groups bound to acyclic carbon atoms of a carbon skeleton containing at least one six-membered aromatic ring the carbon skeleton being further substituted by hydroxy groups
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- C07C69/017—Esters of hydroxy compounds having the esterified hydroxy group bound to a carbon atom of a six-membered aromatic ring
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- C07C—ACYCLIC OR CARBOCYCLIC COMPOUNDS
- C07C69/00—Esters of carboxylic acids; Esters of carbonic or haloformic acids
- C07C69/66—Esters of carboxylic acids having esterified carboxylic groups bound to acyclic carbon atoms and having any of the groups OH, O—metal, —CHO, keto, ether, acyloxy, groups, groups, or in the acid moiety
- C07C69/73—Esters of carboxylic acids having esterified carboxylic groups bound to acyclic carbon atoms and having any of the groups OH, O—metal, —CHO, keto, ether, acyloxy, groups, groups, or in the acid moiety of unsaturated acids
- C07C69/732—Esters of carboxylic acids having esterified carboxylic groups bound to acyclic carbon atoms and having any of the groups OH, O—metal, —CHO, keto, ether, acyloxy, groups, groups, or in the acid moiety of unsaturated acids of unsaturated hydroxy carboxylic acids
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- C07D—HETEROCYCLIC COMPOUNDS
- C07D317/00—Heterocyclic compounds containing five-membered rings having two oxygen atoms as the only ring hetero atoms
- C07D317/08—Heterocyclic compounds containing five-membered rings having two oxygen atoms as the only ring hetero atoms having the hetero atoms in positions 1 and 3
- C07D317/44—Heterocyclic compounds containing five-membered rings having two oxygen atoms as the only ring hetero atoms having the hetero atoms in positions 1 and 3 ortho- or peri-condensed with carbocyclic rings or ring systems
- C07D317/46—Heterocyclic compounds containing five-membered rings having two oxygen atoms as the only ring hetero atoms having the hetero atoms in positions 1 and 3 ortho- or peri-condensed with carbocyclic rings or ring systems condensed with one six-membered ring
- C07D317/48—Methylenedioxybenzenes or hydrogenated methylenedioxybenzenes, unsubstituted on the hetero ring
- C07D317/50—Methylenedioxybenzenes or hydrogenated methylenedioxybenzenes, unsubstituted on the hetero ring with only hydrogen atoms, hydrocarbon or substituted hydrocarbon radicals, directly attached to atoms of the carbocyclic ring
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Definitions
- the present invention relates to pharmaceutical compositions including a compound of formula I or formula II (substituted catechols, as described herein below), for the treatment of bronchial asthma. These conditions may be treated by inhibition of IL-4 and IL-5.
- LK leukotriene
- AA arachidonic acid
- IL-4 interleukin-4
- IgE interleukin-4
- Th2 type T helper type 2 lymphocytes
- IL-5 promotes eosinophil differentiation and activation, as well as trafficking into the lungs (Ann. Rev. Immunol. 2006, 24, 147-174). Thus, IL-5 antagonists may also have potential for the treatment of asthma.
- Hydro xychavicol is known to induce cell cycle arrest and apoptosis in oral KB carcinoma cell line (Cell. Mol. Life Sci., 2004, 61, 83-96) and in hep ato carcinoma cells (Cancer let , 2000, 155, 29-35). Hydroxychavicol has anti-oxidative property inducing cell-cycle arrest and apoptosis of oral KB carcinoma cells (British Journal of Pharmacology, 2002, 135, 619-630), anti-mutagenic property against tobacco-specific carcinogens (Mutat. Res., 1989, 210,249- 253), as well as chemopreventive activity against benzo[a]pyrene induced forestomach tumors in mice (J.
- the present invention relates to inhibition of IL-4 and IL-5 by hydroxychavicol (purified from natural sources or prepared synthetically) and its analogues and shows anti-asthmatic efficacy in vivo in mouse model.
- the main object of the present invention is to provide inhibitors of IL-4 and IL-5
- Another object of the present invention is to provide the inhibitors for the treatment of bronchial asthma. Another object of the present invention is to provide method of treatment of bronchial asthma.
- Another object of the present invention is to provide usage of general formula 1 for the treatment of bronchial asthma by IL-4 and IL-5 inhibition pathway.
- the present invention provides the use of compounds of general formula 1
- R 2 H or COCH 3
- the representative compounds are comprising of:
- the bronchial asthma is treated by IL- 4 or IL-5 pathway inhibition.
- the compound is administered through oral , intranasal,route or by inhalation to a mammal in need thereof.
- compound of general formula 1 increase PC 2 oo ch in the range ofO. l mg to 10.0 mg per kg body weight.
- concentration of the compound used for Inhibition of stimulation-induced IL-4 for IC50 is in the range of 5 to 30 M.
- concentration of the compound used for Inhibition of stimulation-induced IL-5 for IC50 is in the range of 4.5 to 35 M.
- the concentration of the compound used for reducing immunoglobulin E (IgE) is in the range ofO.l mg to 10.0 mg per kg body weight.
- the concentration of the compound used for reducing the lung inflammation is in the range of 5.0 mg to 10.0 mg per kg body weight.
- the compound is used for reducing perivascular and peribronchial inflammation.
- the method of treatment of bronchial asthma in a patient suffering from bronchial asthma comprising administering to said patient an effective amount of a compound of general formula 1 by inhibiting IL-4 and IL
- the compound of general formula 1 is administered orally.
- the oral route is in the form of capsule, syrup, powder or granules.
- compound of general formula 1 is administered at a dosage level between (0.1 mg to 10.0 mg per kg body weight.) twice a day for 6 months.
- mice were sensitized, challenged and treated with VEH, compound of formula I and DEX as described in Methods. Dosage schedule was like this: one dose of compound of formula I /VEH was given 3 hrs before the OVA/PBS challenge & another dose was at 3 hrs after the challenge and for DEX, only one dose was given 3 hrs after the challenge. On day 28, 12-14 hrs after the 10 th challenge AHR to Methacholine was determined as described in the Methods. On day 30, 12-14 hrs after one more challenge (to synchronize the conditions between AHR measurement and sacrifice) mice were sacrificed for sampling.
- Figure 4 Compound of formula I reduced IL-4 levels in lung:
- the present invention provides for a compound of formula I or formula II or a pharmaceutical composition including a compound of formula I or formula II, that can be used for the treatment of malignancies.
- An embodiment of the present invention relates to the use of substituted catechols that may be represented by Formula I (wherein Ri to Rs are as defined in Table 1) or Formula II (wherein Ri to Rs are as defined in Table 2).
- Representative compounds of formula I or formula II, in accordance with the present invention include:
- a preferred embodiment of the present invention relates to the use of substituted catechols that may be represented by Formula I (wherein Ri to Rs are as defined in Table 3) or Formula II (wherein Ri to Rs are as defined in Table 4).
- the compounds of the present invention include the corresponding salts, isomers and polymorphs of the compounds of formula I and formula II.
- the salts are pharmaceutically acceptable salts and are in particular salts which are non-toxic, or which can be used physiologically.
- pharmaceutically acceptable salts is meant to include salts of the active compounds which are prepared with acids or bases, depending on the particular substituents found on the compounds described herein.
- base addition salts can be obtained by contacting the neutral form of such compounds with a sufficient amount of the desired base, either neat or in a suitable inert solvent.
- pharmaceutically acceptable base addition salts include sodium, potassium, calcium, ammonium, organic amino, or magnesium salt, or a similar salt.
- acid addition salts can be obtained by contacting the neutral form of such compounds with a sufficient amount of the desired acid, either neat or in a suitable inert solvent.
- Examples of pharmaceutically acceptable acid addition salts include those derived from inorganic acids like hydrochloric, hydrobromic, nitric, carbonic, monohydrogencarbonic, phosphoric, monohydrogenphosphoric, dihydrogenphosphoric, sulfuric, monohydrogensulfuric, hydriodic, or phosphorous acids and the like, as well as the salts derived from relatively nontoxic organic acids like acetic, propionic, isobutyric, oxalic, maleic, malonic, benzoic, succinic, suberic, fumaric, mandelic, phthalic, benzenesulfonic, p-tolylsulfonic, citric, tartaric, methanesulfonic, and the like.
- inorganic acids like hydrochloric, hydrobromic, nitric, carbonic, monohydrogencarbonic, phosphoric, monohydrogenphosphoric, dihydrogenphosphoric, sulfuric, monohydrogensulfuric, hydriodic, or phospho
- salts of amino acids such as arginate and the like, and salts of organic acids like glucuronic or galactunoric acids and the like.
- Certain specific compounds of the present invention contain both basic and acidic functionalities that allow the compounds to be converted into either base or acid addition salts.
- the neutral forms of the compounds may be regenerated by contacting the salt with a base or acid and isolating the parent compound in the conventional manner.
- the parent form of the compound differs from the various salt forms in certain physical properties, such as solubility in polar solvents, but otherwise the salts are equivalent to the parent form of the compound for the purposes of the present invention.
- Certain compounds of the present invention can exist in unsolvated forms as well as solvated forms, including hydrated forms. In general, the solvated forms are equivalent to unsolvated forms and are intended to be encompassed within the scope of the present invention. Certain compounds of the present invention may exist in multiple crystalline or amorphous forms. In general, all physical forms are equivalent for the uses contemplated by the present invention and are intended to be within the scope of the present invention.
- the present invention provides compounds, which are in a prodrug form.
- Prodrugs of the compounds described herein are those compounds that readily undergo chemical changes under physiological conditions to provide the compounds of the present invention. Additionally, prodrugs can be converted to the compounds of the present invention by chemical or biochemical methods in an ex vivo environment.
- polymorphs of compounds of the present invention can be prepared by crystallization of the compounds under different conditions.
- the different conditions are, for example, using different commonly used solvents or their mixtures for crystallization; crystallization at different temperatures; various modes of cooling, ranging from very fast to very slow cooling during crystallizations.
- Polymorphs can also be obtained by heating or melting the compound followed by gradual or fast cooling.
- the presence of polymorphs can be determined by IR (Infra-red) spectroscopy, solid probe NMR (Nuclear Magnetic Resonance) spectroscopy, differential scanning calorimetry, powder X-ray diffraction or such other techniques.
- the present invention includes all possible geometric or cis-trans (E/Z) isomers of the compounds of the present invention.
- E/Z geometric or cis-trans
- the invention includes both the cis form and the trans form as well as mixtures of these forms in all ratios.
- the preparation of individual isomers can be carried out, if desired, by separation of a mixture by customary methods.
- active ingredient includes the compound of formula I or formula II.
- composition includes formulations or other preparations that are suitable for administration to a mammal.
- treating includes preventive (prophylactic) and palliative treatment.
- safe and effective amount means an amount of compound or composition, sufficient to significantly induce a positive modification in the condition to be regulated or treated, but low enough to avoid serious side effects (at a reasonable benefit/risk ratio), within the scope of sound medical judgment.
- the safe and effective amount of the compound or composition will vary with the particular condition being treated, the age and physical condition of the end user, the severity of the condition being treated/prevented, the duration of the treatment, the nature of concurrent therapy, the specific compound or composition employed, the particular pharmaceutically acceptable carrier utilized, and like factors. As used herein, all percentages are by weight unless otherwise specified.
- the term "mammal” includes a human. It will be appreciated by those skilled in the art that reference herein to treatment extends to prophylaxis as well as the treatment of established diseases or symptoms. Moreover, it will be appreciated that the amount of a compound of the invention required for use in treatment will vary with the nature of the condition being treated and the age and the condition of the patient and will be ultimately at the discretion of the attendant physician.
- the compound is administered in a daily dose of about 30 mg/kg of the body weight to about 300 mg/kg of the body weight, to a human in need thereof.
- the daily dose for a non-human mammal would be the same.
- the desired dose may conveniently be presented in a single dose or as divided doses administered at appropriate intervals, for example as two, three, four or more sub-doses per day.
- dosage form refers to physically discrete units suitable as unit dosage forms for mammals such as humans. Each dosage form contains a predetermined quantity of active materials calculated to produce the desired therapeutic effect, in association with a suitable pharmaceutical carrier.
- compositions according to the invention may contain between 0.1-99 % of the active ingredient, conveniently from 30-95 % for tablets and capsules and 3-50 % for liquid preparations.
- the term "pharmaceutically acceptable carrier” means a non-toxic, inert, solid, semi-solid, diluent, encapsulating material or formulation auxiliary of any type.
- materials which can serve as pharmaceutically acceptable carriers are sugars such as lactose, glucose, and sucrose; starches such as corn starch and potato starch; cellulose and its derivatives such as sodium carboxymethyl cellulose, ethyl cellulose and cellulose acetate; malt; gelatin; talc; as well as other non-toxic compatible lubricants such as sodium lauryl sulfate and magnesium stearate, as well as coloring agents, releasing agents, coating agents, sweetening, flavoring and perfuming agents; preservatives and antioxidants can also be present in the composition, according to the judgment of the formulator.
- the pharmaceutical compositions may contain additives such as, for example, fillers, antioxidants, dispersants, emulsifiers, defoamers, flavors, preservatives, solubilizers or colorants.
- the additive may be selected from a group consisting of nutrients such as proteins, carbohydrates, sugars, talc, magnesium stearate, cellulose, calcium carbonate, starch-gelatin paste and/or pharmaceutically acceptable carriers, excipients, diluents or solvents.
- the treatment methods and methods for reducing cellular proliferation described herein include the administration of pharmaceutical compositions described above, by known administration routes, modes, etc. including the following.
- the composition can be administered orally, for example in the form of pills, tablets, coated tablets, capsules, granules, elixirs or syrup.
- the pharmaceutical composition may be in the forms normally employed, such as tablets, lozenges, capsules, powders, syrups, solutions, suspensions and the like specially formulated for oral, buccal, parenteral, transdermal, inhalation, intranasal, transmucosal, implant, or rectal administration.
- the formulation may take the form of tablets or lozenges formulated in conventional manner.
- Tablets and capsules for oral administration may contain conventional excipients such as binding agents, (for example, acacia, gelatin, sorbitol, tragacanth, mucilage of starch or polyvinylpyrrolidone), fillers (for example, lactose, sugar, micro crystalline cellulose, maize-starch, calcium phosphate or sorbitol), lubricants (for example, magnesium stearate, stearic acid, talc, polyethylene glycol or silica), disintegrants (for example, potato starch or sodium starch glycolate) or wetting agents, such as sodium lauryl sulfate.
- binding agents for example, acacia, gelatin, sorbitol, tragacanth, mucilage of starch or polyvinylpyrrolidone
- fillers for example, lactose, sugar, micro crystalline cellulose, maize-starch, calcium phosphate or sorbitol
- lubricants for example,
- the compounds of the present invention may be incorporated into oral liquid preparations such as aqueous or oily suspensions, solutions, emulsions, syrups or elixirs.
- formulations containing these compounds may be presented as a dry product for constitution with water or other suitable vehicle before use.
- Such liquid preparations may contain conventional additives such as suspending agents such as sorbitol syrup, methyl cellulose, glucose/sugar syrup, gelatin, hydroxyethylcellulose, carboxymethyl cellulose, aluminum stearate gel or hydrogenated edible fats; emulsifying agents such as lecithin, sorbitan mono-oleate or acacia; non-aqueous vehicles (which may include edible oils) such as almond oil, fractionated coconut oil, oily esters, propylene glycol or ethyl alcohol; and preservatives such as methyl or propyl p-hydroxybenzoates or sorbic acid.
- Such preparations may also be formulated as suppositories, e.g., containing conventional suppository bases such as cocoa butter or other glycerides.
- formulations of the present invention may be formulated for parenteral administration by injection or continuous infusion.
- Formulations for injection may take such forms as suspensions, solutions, or emulsions in oily or aqueous vehicles, and may contain formulatory agents such as suspending, stabilising and/or dispersing agents.
- the active ingredient may be in powder form for constitution with a suitable vehicle (e.g., sterile, pyrogen- free water) before use.
- EGTA ethylene glycol tetraacetic acid
- the methanol extract was partitioned between ethyl acetate and water.
- the aqueous layer was further extracted with n-butanol. Removal of the solvent in vacuo from ethyl acetate-soluble portion, n-butanol-soluble and aqueous phase yielded 46 g, 10.4 g and 50.1 g of fraction respectively.
- the ethyl acetate fraction (21 g) was subjected to silica gel chromatography with petroleum ether, chloroform-petroleum ether (1 :1), chloroform-petroleum ether (9:1) and chloroform as eluants.
- the compound was characterized by comparison of the spectral data obtained with literature data available.
- Mass spectra, ESI and GCMS were recorded in a Micro mass Q-TOF MicroTM spectrometer and SHIMADZU GCMS-QP5050A GAS CHROMATOGRAPH MASS SPECROMETER using ZB-5 capillary column respectively. Mass spectral data, correspond to ESIMS or GCMS are given in m/z unit.
- Infrared spectra were recorded on a JASCO-FT-IR Model-410. Spectra were calibrated against the polystyrene absorption at 1601cm-l. Samples were scanned in neat or KBr discs. Analytical thin layer chromatography (TLC) was performed on standard Merck TLC silica gel 60 F254 aluminium sheets. Visualization of the spots on TLC plate was achieved either by exposure to iodine vapour or UV light. All reactions were monitored by employing TLC technique. Column chromatography was carried out on a silica gel 60-120 mesh.
- the compound B (5 g, 0.033 mol) was heated at 170°C temperature for 2 hours under N 2 atmosphere. After completion of the reaction, the crude reaction mixture was purified by column chromatography (silica gel: 60-120) using petroleum ether with increasing concentration of chloroform. The pure compounds corresponding to Compound No. 16 and Compound No. 1 were eluted with 45 % and 75 % chloroform in petroleum ether respectively.
- reaction mixture was purified by column chromatography (silica gel: 60-120 mesh) using petroleum ether with increasing concentration of chloroform. Elution of 60 % and 75 % chloroform in petroleum ether yielded pure compounds corresponding to Compound No. 2 and Compound No. 3 as liquids respectively.
- reaction mixture was cooled to 0°C, 20 mL of cold distilled water was added, the reaction
- reaction mixture was quenched with 20 xL of cold distilled water, evaporated to dryness and
- TEPA triethyl phosphonoacetate
- PBMC peripheral blood mononuclear cells
- PHA phytohemagglutinin
- Culture supernatants were harvested and IIL-4 and IL-5 cytokines were quantitated by Cytometric Bead Array (CBATM) kit (Becton Dickinson, USA) following manufacturers instructions using a Flow Cytometer (BD LSR, Becton Dickinson) and CBATM analysis software (Becton Dickinson). Results are given in Table 1.
- CBATM Cytometric Bead Array
- mice (6-8 wks old, 18-22 grams) were obtained from IICB Marie and VPCI, Delhi. Ethical clearance has been obtained from Institutional Ethical Committee. Mice were acclimatized for at least one week under the laboratory conditions (25 ⁇ 2°C, 60% humidity) before starting the experiments. After one week, baseline Penh (enhanced pause) was measured in Buxco unrestrained single chamber plethysmography (WBP, Buxco, Troy, NY). The mice showed high fluctuations in baseline Penh were excluded from the study. Sensitization and challenge:
- mice were sensitized with 0.2 ml PBS containing 50 ⁇ g ovalbumin (OVA) (Sigma, USA) and 4 mg aluminum hydroxide in saline intraperitonially (i.p.) on days 0, 7 and 14 as shown in Figure 1.
- Sham group mice were sensitized with only alum dissolved in PBS. From day 18 to 27, mice were exposed to aerosol of OVA (3%) inhalation 25 minutes daily in a Plexiglas chamber (20 x 20 x 10 cm 3 ). The aerosol was generated by a nebulizer (OMRON CX model) with an airflow rate of 9 L/minute. Sham group mice were challenged with PBS alone.
- OVA ovalbumin
- mice were divided into 7 groups, 3-4 mice in each group as shown in Fig.2.
- Compound 1 of formula I was dissolved in 50% ethanol. So 50% ethanol was used as a vehicle.
- Group I was alum sensitized, saline challenged and treated with vehicle (SHAM/SAL/VEH)
- group II was OVA sensitized
- group III, IV, V, VI were OVA sensitized, OVA challenged and treated with 0.05, 0.1, 5 and 10 mg/kg compound 1 of formula I.
- Drug was given in the volume of 10 ⁇ orally twice per day.
- Airway responsiveness was measured by barometric plethysmography using whole -body plethysmography (WBP; Buxco, Troy, NY) 12 hours after last saline or ovalbumin challenge. At the time of measurement the animals were awake and breathing spontaneously. Enhanced pause (Penh) to methacholine as measured using barometric plethysmography is a valid indicator of broncho constriction in mice and can be used to measure AHR (Am J Respir Crit Care Med 1997, 156, 766-775). Baseline Penh was taken initially, and then PBS followed by increasing concentrations (4-48 mg/ml) of methacholine was nebulized through an inlet of the main chamber for 3 min. Readings were taken and averaged for 5 minutes from the starting time of nebulisation. Airway responsiveness to MCh was evaluated by the concentration of MCh required to increase the Penh to twice the baseline value (MCh PC200).
- OVA-specific IgE levels in sera were measured by enzyme linked immunosorbent assay (ELISA) as described previously with little modification (Inflam. Res. 2003, 52, 101-106). Absorbance values at 450nm were converted to arbitrary values by multiplying with 100. IL-4 levels in lung homogenates were measured by ELISA method as per manufacturer's instructions (BD Pharmingen, USA). Lung homogenates were prepared by homogenizing the lung tissue (approximately 100 mg) with 1 ml PBS followed by centrifugation at lOOOOg for 30 min at 4° C. Results were expressed in pg/ 50 ⁇ g protein. Protein estimation was done by BCA method.
- the excised lung portion was fixed in 10 % buffered formalin.
- the fixed, paraffin embedded tissue were cut into 4 ⁇ sections and stained with haematoxylin-eosin (H&E) to assess inflammation.
- H&E haematoxylin-eosin
- OVA/OVA/VEH mice showed decreased (about 3 fold) Mch PC 2 oo value compared to SHAM/SAL/VEH mice. This indicates that the mice were properly sensitized and challenged which caused airway hyperresponsiveness.
- the sensitized and challenged mice were treated with compound 1 of formula I at increasing concentrations (0.05, 0.1, 5 and 10 mg/kg body weight)
- the PC200 Mch values were found to be increased in a dose dependent manner ( Figures 2 and 3). The maximum improvement was found with 10 mg compound 1 of formula I /kg dose.
- mice were divided into 5 groups: SHAM/SAL/VEH, OVA/OVA/VEH, OVA/OVA/DEX, OVA/OVA/compound 1 of formula I 5mg, OVA/OVA/compound 1 of formula I 10 mg.
- Dexamethasone (0.75 mg/kg) was administered orally once per day. As shown in Figure 3, it was observed that compound 1 of formula I (10 mg/kg) was able to improve lung function almost similar to the level of dexamethasone.
- OVA/OVA/VEH mice showed a significant increase in IL-4 levels in lung homogenates and OVA specific IgE levels in sera (P ⁇ 0.01) compared to SHAM/SAL/VEH mice.
- it also significantly reduced the OVA specific IgE levels in sera P ⁇ 0.01 vs. OVA/OVA/VEH).
- the extent of the lung inflammation in the mice lungs were assessed by H & E staining of the paraffin embedded sections. Representative photomicrographs are shown in Fig 6.
- the lungs of SHAM/SAL/VEH mice showed normal structure with no sign of inflammation (Fig 6a).
- the lungs of OVA/OVA/VEH mice showed a significant increase in the perivascular and peribronchial distribution of inflammatory cells (Fig 6b, inset showed migration of eosinophils from the vessel to bronchi).
- RBC red bCood corpuscles
- MCV Mean ceCCvoCume of red cells
- RDW ⁇ Sgd ceil distribution width
- HCT hematocrit
- PLT pCateCet count
- MPV mean pCateCet volume
- WBC 'White biood corpuscle count
- HGB JfemogCobin concentration
- LYMF Lymphocyte
- GRAN granulocyte
- Clinical biochemistry was performed using detection kit purchased from SPINREACT, SA, Spain. The blood left after the hematological studies were allowed to clot for 2 h and serum separated by centrifugation at 3000 rpm for 5min and subsequently used for clinical biochemistry. Details of the clinical biochemistry (Table 4) and relative organ weight (Table 5) are given below. All the values of different parameters are within the normal range except the marginal rise in the serum bilirubin at the highest dose of compound 1 of 5 formula I. However dose dependency was not observed and therefore the difference is ruled out.
- Bilirubin 1.41 ⁇ 0.3 0.19 ⁇ 0.22 0.28 ⁇ 0.30 0.19 ⁇ 0.08
- Table 5 Percentage Relative organ weights of mice following oral administration of compound 1 of formula I on day 14
- mice In mice, an acute oral of 23 mg/kg was established based on body weight, organ weight, gross necropsy, immunotoxicity, hematology, clinical chemistry and cage side observation.
- LD50of ICB 14 C6 was derived from in vitro cytotoxicity assay by NRUmethod in 3T3 cells.
- the predicted acute oral LD50 was found to be 168 mg/kg.
- In vivo acute oral LD50 was found to be 268 mg/kg bw.
- the highest dose selected was one-fourth of the limit dose.
- Four different doses of ICB14 C6 (47, 23, 12 and 0 [vehicle] mg/kg body weight) were prepared in ground nut oil daily for 5 days a week for 90d.
- Compound 1 of formula I was administered by oral gavage in water using blunt ended steel canula.
- Pellet food and water treated in a reverse osmosis plant were given to the animals ad libitum.
- mice On each working day, all mice were inspected and observations recorded. All the mice were weighed weekly.
- Blood samples were taken from the retro-orbital sinus on day 91 for hematological and clinical chemistry analyses.
- Clinical analysis included serum creatinine, serum gammaGT, serum uric acid, serum glucose, serum protein, serum bilirubin, serum GOT/ AST and serum GPT/ALT.
- Hematology including white blood cell count was analyzed with the help of Automatic Hematology Analyzer (Medonic).
- Feed and water consumption in compound 1 of formula I treated mice were comparable to sham controls as judged from the leftover feed and water level in the bottles.
- Table 8 Percentage Relative organ weights of mice following oral administration of compound 1 of formula I for 90 days
- Creatinine 1.36 ⁇ 0.56 1.10 ⁇ 0.65 1.03 ⁇ 0.48 0.87 ⁇ 0.30
- FIG. 7 Histological features of spleen from sham control mice showed normal histoarchitecture with germinal centre, red pulp and marginal zone of white pulp. Similar features were apparent in spleen sections of 47 mg/kg of compound 1 of formula I treated mice in all the doses (Fig 7). Liver sections from sham treated control mice revealed the presence of polygonal hepatic cells. Few binucleated hepatic cells were also visible in the treated group. Kuffer cells on to the sinusoidal wall were not observed. In liver section of 47 mg/kg bw treated mice, a few hypertrophied hepatocytes were observed. Kuffer cells were not visible. Mild necrosis of the hepatocytes were seen in the liver of mice treated with 47 mg/kg of compound 1 of formula I. At other doses no change in the structure of hepatic cells were observed (Fig 8).
- the corticular region of the sham treated kidney showed enormous number of Bowman's capsules that were uniformly distributed throughout the corticular region. Majority of the capsules were oval and round in shape but few elliptical shaped Bowman's capsules were also encountered. In the kidney of compound 1 of formula I treated mice no significant changes were observed (Fig 9).
- mice The lungs of sham treated mice showed normal cellular architecture with thin intercellular septum.
- Mouse treated with compound 1 of formula I at a dose of 47mg/kg showed fair distribution of alveoli with slight thickening of intercellular septum and migration of polymorphonuclear lymphocytes (Fig 10). In the heart sections no significant changes in the histo -architecture was observed between the vehicle control and compound 1 of formula I treated mice Fig 11).
- Lymph node lymphocyte, splenocytes and bone marrow cell viabilities were found >94% in all the groups of compound 1 of formula I treated mice. Sharp decrease in total IgG level was observed in mice treated at a dose of 47 mg/kg. IgE level remained unaffected. Dose dependant decrease in B cell function was observed. HA titre followed a similar pattern as the PFC response. Cell mediated immune response in terms of % increase in paw volume also followed a dose dependent increase in mice. However, changes were insignificant in comparison to sham control.
- Present invention provides compounds for the treatment of bronchial asthma.
- Bronchial asthma may be treated by the inhibition of IL-4 or IL-5 pathway.
- Asthma can be treated by administering the compound of general formula 1 through oral , intranasal, route or by inhalation to a mammal in need thereof.
- Compound of general formula 1 may be used for reducing perivascular and peribronchial inflammation
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Priority Applications (4)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| AU2012241488A AU2012241488A1 (en) | 2011-04-11 | 2012-04-11 | Substituted catechols as inhibitors of IL-4 and IL-5 for the treatment bronchial asthma |
| US14/110,869 US9302967B2 (en) | 2011-04-11 | 2012-04-11 | Substituted cathechols as inhibitors of IL-4 and IL-5 for the treatment of bronchial asthma |
| CA2831933A CA2831933C (en) | 2011-04-11 | 2012-04-11 | Substituted catechols as inhibitors of il-4 and il-5 for the treatment bronchial asthma |
| GB1317701.9A GB2503395B (en) | 2011-04-11 | 2012-04-11 | Substituted catechols as inhibitors of IL-4 and IL-5 for the treatment bronchial asthma |
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| IN01032/DEL/2011 | 2011-04-11 | ||
| IN1032DE2011 | 2011-04-11 |
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| WO2012140574A1 true WO2012140574A1 (en) | 2012-10-18 |
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| PCT/IB2012/051757 Ceased WO2012140574A1 (en) | 2011-04-11 | 2012-04-11 | Substituted catechols as inhibitors of il-4 and il-5 for the treatment bronchial asthma |
Country Status (5)
| Country | Link |
|---|---|
| US (1) | US9302967B2 (en) |
| AU (1) | AU2012241488A1 (en) |
| CA (1) | CA2831933C (en) |
| GB (1) | GB2503395B (en) |
| WO (1) | WO2012140574A1 (en) |
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| CN106673967B (en) * | 2016-11-14 | 2020-05-22 | 湖南海利株洲精细化工有限公司 | Preparation method of 4- (2-methallyl) -1, 2-benzenediol |
Citations (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JPS63115834A (en) * | 1986-10-31 | 1988-05-20 | Green Cross Corp:The | Aromatic compound |
| JPH04360855A (en) * | 1991-06-04 | 1992-12-14 | Meiji Milk Prod Co Ltd | Catechol derivative, production thereof and use thereof |
| US20020086068A1 (en) * | 2000-10-16 | 2002-07-04 | Santu Bandyopadhyay | Herbal composition of blend of active components prepared from murrya koenigii and piper betle useful for blocking of 5 lipoxygenase activity leading to the inhibition of leukotriene synthesis, suppression of interleukin-4 production, and enhancement of gamma interferon release |
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| KR100355497B1 (en) * | 1998-12-18 | 2002-12-28 | 한국과학기술연구원 | Essential Oil Components with Leukotriene Production Inhibition Activity |
| WO2002049655A1 (en) * | 2000-12-18 | 2002-06-27 | Council Of Scientific And Industrial Research | Extracts of piper betle leaves as immunomodulator |
-
2012
- 2012-04-11 CA CA2831933A patent/CA2831933C/en active Active
- 2012-04-11 AU AU2012241488A patent/AU2012241488A1/en not_active Abandoned
- 2012-04-11 WO PCT/IB2012/051757 patent/WO2012140574A1/en not_active Ceased
- 2012-04-11 US US14/110,869 patent/US9302967B2/en not_active Expired - Fee Related
- 2012-04-11 GB GB1317701.9A patent/GB2503395B/en not_active Expired - Fee Related
Patent Citations (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JPS63115834A (en) * | 1986-10-31 | 1988-05-20 | Green Cross Corp:The | Aromatic compound |
| JPH04360855A (en) * | 1991-06-04 | 1992-12-14 | Meiji Milk Prod Co Ltd | Catechol derivative, production thereof and use thereof |
| US20020086068A1 (en) * | 2000-10-16 | 2002-07-04 | Santu Bandyopadhyay | Herbal composition of blend of active components prepared from murrya koenigii and piper betle useful for blocking of 5 lipoxygenase activity leading to the inhibition of leukotriene synthesis, suppression of interleukin-4 production, and enhancement of gamma interferon release |
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| RESPIRATORY RESEARCH, vol. 2, 2001, pages 66 - 70 |
Also Published As
| Publication number | Publication date |
|---|---|
| GB2503395B (en) | 2019-08-21 |
| GB2503395A (en) | 2013-12-25 |
| GB201317701D0 (en) | 2013-11-20 |
| US9302967B2 (en) | 2016-04-05 |
| US20140135393A1 (en) | 2014-05-15 |
| CA2831933C (en) | 2020-09-29 |
| AU2012241488A1 (en) | 2013-10-17 |
| CA2831933A1 (en) | 2012-10-18 |
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