This application claims the benefits of the Taiwan Patent Application Serial Number 106146214, filed on Dec. 28, 2017, the subject matter of which is incorporated herein by reference.
The present invention relates to a method for treating or preventing abnormal proteins aggregation diseases with a pharmaceutical composition. More specifically, the present invention relates to a method for treating or preventing abnormal β-amyloid aggregation diseases, and the pharmaceutical composition comprises artemisinin.
Alzheimer's disease (AD) is the most prevalent form of dementia in elderly patients causing neurodegeneration. The progressive cognitive decline and memory loss are usually observed in AD patients, and health expenditures and costs of care are high and expensive for AD patients.
Nowadays, some drugs are proved having efficacy of improving cognitive impairment. Currently, two kinds of drugs have been proved by the U.S. Food and Drug Administration, one is cholinesterase inhibitors including rivastigmine, donepezil and galantamine, and the other one is N-methyl-D-aspartate (NMDA) receptor antagonist such as memantine. Except for the administration of drugs for improving cognitive impairment, other suitable drugs also have to be administered to AD patients with other symptoms derived from AD such as depression and sleeplessness.
The worldwide populations with AD are gradually increased. Therefore, it is desirable to provide a method or a pharmaceutical composition for treating β-amyloid aggregation diseases, which can be used to treat neurodegenerative diseases such as AD to further delay disease progression and improve patients' quality of life.
The object of the present invention is to provide a pharmaceutical composition for treating or preventing fatty acid binding protein 3 induced β-amyloid aggregation diseases, wherein the pharmaceutical composition comprises artemisinin.
Another object of the present invention is to provide a pharmaceutical composition for inhibiting fatty acid binding protein 3 induced β-amyloid aggregation diseases, wherein the pharmaceutical composition comprises artemisinin.
Another object of the present invention is to provide a method for treating or preventing fatty acid binding protein 3 induced β-amyloid aggregation diseases with the pharmaceutical composition of the present invention, wherein the pharmaceutical composition comprises artemisinin.
A further object of the present invention is to provide a use of the pharmaceutical composition of the present invention for manufacturing a drug of fatty acid binding protein 3 induced β-amyloid aggregation diseases, wherein the pharmaceutical composition comprises artemisinin. In addition, another object of the present invention is to provide a pharmaceutical composition for inhibiting fatty acid binding protein 3 induced β-amyloid aggregation, wherein the pharmaceutical composition comprises artemisinin.
Yet another object of the present invention is to provide a method for inhibiting fatty acid binding protein 3 induced β-amyloid aggregation in a subject with the pharmaceutical composition of the present invention, wherein the pharmaceutical composition comprises artemisinin.
A further object of the present invention is to provide a use of the pharmaceutical composition of the present invention for manufacturing a drug for inhibiting fatty acid binding protein 3 induced β-amyloid aggregation, wherein the pharmaceutical composition comprises artemisinin.
In the present invention, the fatty acid binding protein 3 induced β-amyloid aggregation disease is not limited. Preferably, the fatty acid binding protein 3 induced β-amyloid aggregation disease is a neurodegenerative disease associated with β-amyloid aggregation. More preferably, the fatty acid binding protein 3 induced β-amyloid aggregation disease is Alzheimer's disease.
In the pharmaceutical composition of the present invention, the concentration of the artemisinin is not limited, and may be adjusted depending on disorder severity or complementary medicines. In one preferred embodiment of the present invention, the concentration of the artemisinin may, by way of example and not limitation, be in a range from 0.1 μM to 10 μM based on a total weight of the pharmaceutical composition.
In one preferred embodiment of the present invention, the pharmaceutical composition may prevent or treat the fatty acid binding protein 3 induced β-amyloid aggregation disease by inhibiting fatty acid binding protein 3 (FABP3).
In another preferred embodiment of the present invention, the pharmaceutical composition may inhibit β-amyloid aggregation by inhibiting fatty acid binding protein 3 (FABP3).
Moreover, yet another object of the present invention is to provide a method for treating or preventing an fatty acid binding protein 3 induced β-amyloid aggregation disease with the pharmaceutical composition of the present invention comprising artemisinin, wherein the artemisinin combines with fatty acid binding protein 3 (FABP3).
In the present invention, the fatty acid binding protein 3 induced β-amyloid aggregation disease is not limited. Preferably, the fatty acid binding protein 3 induced β-amyloid aggregation disease is a neurodegenerative disease associated with β-amyloid aggregation. More preferably, the fatty acid binding protein 3 induced β-amyloid aggregation disease is Alzheimer's disease.
In the pharmaceutical composition, the concentration of artemisinin is not limited, and may be adjusted depending on disorder severity or complementary medicines. In one preferred embodiment, the concentration of artemisinin may, by way of example and not limitation, be in a range from 0.1 μM to 10 μM based on a total weight of the pharmaceutical composition.
In the present invention, the pharmaceutical composition may further comprise: at least one pharmaceutically acceptable carrier, diluent, or excipient.
In one preferred embodiment of the present invention, the pharmaceutical composition may prevent or treat the fatty acid binding protein 3 induced β-amyloid aggregation disease by inhibiting fatty acid binding protein 3 (FABP3).
The pharmaceutical composition may further comprise: at least one pharmaceutically acceptable carrier, diluent, or excipient. For example, the compound may be encapsulated into liposome to facilitate delivery and absorption. Alternatively, the compound may be diluted with aqueous suspension, dispersion or solution to facilitate injection. Or, the compound may be prepared in a form of a capsule or tablet for storage and carrying. In addition, an effective concentration of the compound of the artemisinin may be changed according to administration, use of excipient, or co-use with other active agents; and a person skilled in the art may adjust the concentration of the artemisinin in the pharmaceutical composition or the dose of the pharmaceutical composition to achieve the purpose of obtaining desired curative effect.
More specifically, the artemisinin of the present invention may be formulated in a solid or liquid form. The solid formulation form may include, but is not limited to, powders, granules, tablets, capsules and suppositories. The solid formulation may comprise, but is not limited to, excipients, flavoring agents, binders, preservatives, disintegrants, glidants and fillers. The liquid formation form may include, but is not limited to, water, solutions such as propylene glycol solution, suspensions and emulsions, which may be prepared by mixing with suitable coloring agents, flavoring agents, stabilizers and viscosity-increasing agents.
For example, a powder formulation may be prepared by simply mixing the artemisinin of the present invention with suitable pharmaceutically acceptable excipients such as sucrose, starch and microcrystalline cellulose. A granule formulation may be prepared by mixing the artemisinin of the present invention with suitable pharmaceutically acceptable excipients and/or suitable pharmaceutically acceptable binders such as polyvinyl pyrrolidone and hydroxypropyl cellulose, followed by wet granulation method using a solvent such as water, ethanol and isopropanol, or dry granulation method using compression force. Also, a tablet formulation may be prepared by mixing the granule formulation with suitable pharmaceutically acceptable glidants such as magnesium stearate, followed by tableting using a tablet machine. Hence, a person skilled in the art may appropriately choose suitable formulation according to his/her needs.
To implement the method according to the present invention, the above pharmaceutical composition may be administered via oral administering, parenteral administering, inhalation spray administering, topical administering, rectal administering, nasal administering, sublingual administering, vaginal administering, or implanted reservoir, and so on. The term “parenteral” used here refers to subcutaneous injection, intradermal injection, intravenous injection, intramuscular injection, intra-articular injection, intra-arterial injection, joint fluid injection, intrathoracic injection, intrathecal injection, injection at morbid site, and intracranial injection or injection technique.
The term “treat” or “treating” used herein refers to the treatment of a disease that alleviates, mitigates, or ameliorates: at least one symptom or condition of a disease; inhibits a disease or condition; prevents or mitigates the progression of a disease; recovers a disease or condition; mitigates the physiological condition caused by a disease; halts a disease symptom or physiological condition.
Other objects, advantages, and novel features of the invention will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings.
Animals
In the present embodiment, 3×Tg AD transgenic mice harboring human PS1M146V, human APPSwe, and human tauP301L were used, which were obtained from the Jackson Laboratory (004807). In the present embodiment, the 4-, 6-, and 24-month-old mice (n=3 per group) were respectively anesthetized with urethane (1.5 mg/kg) and transcardially perfused with physiological saline. Afterwards, the left hemispheres of brain tissues were collected in cold RIPA buffer supplemented with cOmplete™ Protease Inhibitor Cocktail (Sigma-Aldrich), homogenized by 22G and 26G (32 mm and 13 mm) needles (TERUMO Needle, NEOLUS) on ice, and then stored at −80° C.
Western Blot Analysis
The protein concentrations were detected with BCA protein assay kit (Thermo scientific), and each equal amount of protein samples (40 μg) was resolved on 12.5% SDS-PAGE. After electrophoresis and semi-thy blotting, the PVDF membrane was blocked with 5% non-fat milk solution in TBST at room temperature for one hour or overnight at 4° C., then, washed thrice with TBST for five minutes. Subsequently; the membrane was incubated with anti-Aβ (6E10), FABP3 or GAPDH primary antibodies in dilute buffer overnight at 4° C. In addition, GAPDH was used as the loading control. After washing in TBST buffer for five min thrice, the membrane was treated with HRP-conjugated secondary antibodies at room temperature for one hour. The proteins were visualized by using an ECL detection reagent (Millipore) and detected with an ImageQuest™ LAS-4000 (Fujifilm Co., Tokyo, Japan). The expression of protein was quantified by ImageJ (National Institute of Health, USA).
Aβ42 Oligomer Preparation
Synthetic Aβ42 peptides (AnaSpec) were solubilized in hexafluoroisopropanol (HFIP), and then HFIP was allowed to be evaporated completely under nitrogen flow. Aβ42 peptides were resuspended using phosphate buffered saline (PBS) to 65 mM, and were incubated to assemble oligomers at room temperature for 24 hours prior to use. The oligomeric status of AP was verified by sodium dodecyl sulfate polyacrylamide gel electrophoresis (SDS-PAGE).
In the present embodiment, it was examined that whether artemisinin, isolated from Chinese herb Artemisia annua, is a potential anti-AD agent by targeting FABP3. These data suggest that Aβ42 oligomerization induced by FABP3 could be prevented mitigated by artemisinin, and thus it can be used to prepare an anti-AD agent.
Cell Culture
Human neuroblastoma SH-SY5Y cell line was obtained from American Type Culture Collection (ATCC® CRL-2266™) and maintained in Dulbecco's Modified Eagle Medium with nutrient mixture F-12 (DMEM/F12; Invitrogen) media supplemented with 10% FBS, 100 U/mL penicillin and 100 μg/mL streptomycin at 37° C. in a 5% CO2 humidified incubator.
FABP3 cDNA Construction and the Establishment of Stably Transfected Cell Line
Human FAPB3 cDNA, which was reverse transcribed from the total RNA of SH-SY5Y cells, was amplified by polymerase chain reaction (PCR) using primers (5′-CACCATGGTGGACGCTITCCTG and 5′-TGCCTCTTCTCATAAGTG) and then cloned into pcDNA™3.1D/V5-His-TOPO vector (Invitrogen). SH-SY5Y cells stably expressing human FABP3 were obtained using lipofectamine transfection with selection via cultivation in DMEM/F12 medium (Gibco) containing 500 g/mL G418 (Sigma-Aldrich).
As shown in
The present embodiment established a stably transfected human FABP3-SH-SY5Y cell model, and examined whether artemisinin can inhibit the Aβ42 cell cytotoxicity induced by FABP3. These data suggest that artemisinin may effectively reduce the Aβ42 cell cytotoxicity induced by FABP3.
Cell Culture
Human neuroblastoma SH-SY5Y cell line was obtained from American Type Culture Collection (ATCC® CRL-2266™) and maintained in Dulbecco's Modified Eagle Medium with nutrient mixture F-12 (DMEM/F12; Invitrogen) media supplemented with 10% FBS, 100 U/mL penicillin and 100 μg/mL streptomycin at 37° C. in a 5% CO2 humidified incubator.
FABP3 cDNA Construction and the Establishment of Stably Transfected Cell Line
Human FAPB3 cDNA, which was reverse transcribed from the total RNA of SH-SY5Y cells, was amplified by polymerase chain reaction (PCR) using primers (5′-CACCATGGTGGACGCTTTCCTG and 5′-TGCCTCTrTCTCATAAGTG) and then cloned into pcDNA™3.1D/V5-His-TOPO vector (Invitrogen). SH-SY5Y cells stably expressing human FABP3 were obtained using lipofectamine transfection with selection via cultivation in DMEM/F12 medium (Gibco) containing 500 μg/mL G418 (Sigma-Aldrich).
As shown in
The results from Example 3 and Example 4 indicate that artemisinin may effectively attenuate the cytotoxicity of Aβ42 induced by FABP3 and reduce Aβ42 trimer and tetramer.
Ligand Docking Experiment
Three coordinates of FABP3 in complexes with 6-chloro-2-methyl-4-phenyl-quinoline-3-carboxylic acid (5M8, from PDBID: 5HZ9), oleic acid (OLA, PDBID: 5CE4), and 8-anilinonaphthalene-1-sulfonic acid (2AN, from PDBID:3WBG), respectively, were downloaded from the PDB database. The ligand and water molecules were removed from docking. The FABP3 coordinates were individually uploaded to the SwissDock web server, together with the ligand coordinate of artemisinin obtained from the ZINC database with the entry number 8143788. After docking, the results that contained the molecule of artemisinin with a variety of orientations were retrieved from the server. The results were inspected and the top docking results were shown in the figures using the UCSF Chimera package. To determine the feasibility of the docking experiments, the coordinates of 5M8, OLA, and 2AN were also used respectively for docking.
Generation of the Electrostatic Potential Surface and Molecular Graphics
Molecular graphics images were obtained using the UCSF Chimera package from the Computer Graphics Laboratory, University of California, San Francisco. To generate the electrostatic potential surface, the models of FABP3 were uploaded to a web service to generate the PQR files by using the PDB2PQR tool, which were subsequently used to generate the DX files by using the APBS tool, as implemented in the Chimera Image Tutorial. The resulting electrostatic potential map was used to color the molecular surfaces in the Chimera. Molecular superimposition was also conducted using the Chimera package.
In addition, the molecular interactions between human FABP3 and artemisinin were predicted using the SwissDock web server. In each docking experiment, many binding modes had been generated and clustered. As shown in
As shown in
Animals
In the present embodiment, 3×Tg AD transgenic mice were obtained from the Jackson Laboratory (004807), and wild-type C57BL/6 mice were purchased from the National Laboratory Animal Center. The body weights of the animals were measured every eight weeks from 12th to 36th week-old. The animals were i.p. administered with pure water or artemisinin (1 mg/kg) every other day from 12 weeks to 36 weeks of age; the WT-W group was water vehicle-treated wild-type mice; the AD-W group was water vehicle-treated 3×Tg AD transgenic mice; and AD-R group was artemisinin-treated 3×Tg AD transgenic mice. The animals were examined by using behavioral tasks, including Morris water maze test, spontaneous alternation behavior Y-maze test, and novel object recognition task test, when they were 36-week-old.
Morris Water Maze Test
To evaluate whether artemisinin ameliorates the spatial learning and memory deficits, the Morris water maze test was performed. For Morris water maze test, the 36-week-old mice (n=6 per group) administered with aforementioned treatment were given swim training in a white circular pool (100 cm in diameter and 35 cm in height) for 60 seconds in the absence of the platform before the experiment, and then four training trials per day for four consecutive days, with an inter-trial interval of 15 minutes. After the last trail, mice were subjected to the probe test that the platform was removed, and the time spent in quadrants was recorded by a computer-controlled system.
As shown in
Spontaneous Alternation Behavior Y-Maze Test
The spontaneous alternation behavior Y-maze test was used to estimate short-term memory. The Y-maze was a three-arm maze (30 cm long and 5 cm wide with 12 cm in height) with equal angles and the arms were labeled A, B, and C. The 36-week-old mice (n=6 per group) administered with aforementioned treatment were initially placed within one arm, and the number of arm entries and the number of alternations were recorded for eight min period for each mouse. Between each trial, the arms of Y-maze were cleaned by 70% ethanol to remove odors and residues. The percentage of alternation was calculated by the following equation: Alternation (%)=[(Number of alternation)/(Total arm entries−2)]×100.
As shown in
Novel Object Recognition Test
The novel object recognition was conducted to examine whether artemisinin can restore recognition memory, which involves the frontal cortex, entorhinal cortex and hippocampus; it was used to evaluate the inborn tendency of the rodents to explore novel objects rather than familiar ones. During the first two days, mice were habituated to open field (50×40 cm, with 22 cm in height) for two sessions of 10 min each day in order to be familiar with the apparatus. On the third day, each mouse was submitted to a five min sample phase that two identical objects A were placed in the opposite corner of the open field arena, with the distance of 10 cm from the walls. After a five min delay, the mouse was removed and a familiar object was replaced with a novel one B in the same location. During the test phase, the mouse was placed back in the arena and exposed to two objects. The time spent exploring the objects (TA and TB, respectively) was defined as the distance from nose to object within 1-2 cm or/and touching it with the nose and forepaws. After each session, arena and objects were cleaned with 70% ethanol to prevent the olfactory cues. The discrimination index was calculated as percentage ratio of TB/(TA+TB)×100. A discrimination index of higher than 50% represents good cognitive performance.
As shown in
Taken together, these data suggest that artemisinin may be able to improve memory impairments and cognition loss in AD mice.
Although the present invention has been explained in relation to its preferred embodiment, it is to be understood that many other possible modifications and variations can be made without departing from the spirit and scope of the invention as hereinafter claimed.
Number | Date | Country | Kind |
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106146214 | Dec 2017 | TW | national |