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ALIROCUMAB
ALIROCUMAB
http://www.ama-assn.org/resources/doc/usan/alirocumab.pdf
Immunoglobulin G1, anti-(human neural apoptosis-regulated proteinase 1) (human REGN727 heavy chain), disulfide with human REGN727 κ-chain, dimer
Immunoglobulin G1, anti-(human proprotein convertase subtilisin/kexin type 9
(EC=3.4.21.-, neural apoptosis-regulated convertase 1, proprotein convertase 9,
subtilisin/kexin-like protease PC9)); human monoclonal REGN727 des-448-
lysine(CH3-K107)-1 heavy chain (221-220′)-disulfide with human monoclonal
REGN727 light chain dimer (227-227”:230-230”)-bisdisulfide
Clinical Trials for Compound
| Number of clinical trials registered at clinicaltrials.gov | 30 |
Biological Sequence
| Description | Sequence |
| Alirocumab heavy chain | EVQLVESGGGLVQPGGSLRLSCAASGFTFNNYAMNWVRQAPGKGLDWVSTISGSGGTTNY ADSVKGRFIISRDSSKHTLYLQMNSLRAEDTAVYYCAKDSNWGNFDLWGRGTLVTVSSAS TKGPSVFPLAPSSKSTSGGTAALGCLVKDYFPEPVTVSWNSGALTSGVHTFPAVLQSSGL YSLSSVVTVPSSSLGTQTYICNVNHKPSNTKVDKKVEPKSCDKTHTCPPCPAPELLGGPS VFLFPPKPKDTLMISRTPEVTCVVVDVSHEDPEVKFNWYVDGVEVHNAKTKPREEQYNST YRVVSVLTVLHQDWLNGKEYKCKVSNKALPAPIEKTISKAKGQPREPQVYTLPPSRDELT KNQVSLTCLVKGFYPSDIAVEWESNGQPENNYKTTPPVLDSDGSFFLYSKLTVDKSRWQQ GNVFSCSVMHEALHNHYTQKSLSLSPG |
| Alirocumab light chain | DIVMTQSPDSLAVSLGERATINCKSSQSVLYRSNNRNFLGWYQQKPGQPPNLLIYWASTR ESGVPDRFSGSGSGTDFTLTISSLQAEDVAVYYCQQYYTTPYTFGQGTKLEIKRTVAAPS VFIFPPSDEQLKSGTASVVCLLNNFYPREAKVQWKVDNALQSGNSQESVTEQDSKDSTYS LSSTLTLSKADYEKHKVYACEVTHQGLSSPVTKSFNRGEC |
1245916-14-6 CAS
C6472H9996N1736O2032S42
Alirocumab is a human monoclonal antibody designed for the treatment of hypercholesterolemia.[1]
This drug was discovered by Regeneron Pharmaceuticals and is being co-developed by Regeron and Sanofi.
When the results from Phase II trials of Sanofi and Regeneron’s proprotein convertase subtilisin kexin 9 (PCSK9) inhibitor alirocumab were presented in March, they stunned even the company representatives working on the trials. “I’m still amazed by the reduction in low-density lipoprotein cholesterol (LDL-C) that we saw with our drug,” says Bill Sasiela, vice president of cardiovascular and metabolic research at Regeneron. The monoclonal antibody (mAb) reduced LDL-C levels by up to 73% in three mid-stage trials, irrespective of baseline LDL-C levels or background treatment, offering hope for millions of patients who can’t hit the recommended cholesterol targets with statins — the standard therapies for lowering LDL-C levels in patients with cardiovascular disease. Spurred on by these results, Sanofi and Regeneron geared up into Phase III trials of the first-in-class alirocumab (also known as REGN727 and SAR236553) over the summer, and initiated the latest and largest trial — an 18,000-patient outcomes study
It is a Proprotein convertase subtilisin/kexin type 9, (also known as PCSK9) inhibitor . Phase III trials showed a 47% reduction in LDL-C. There was a high rate of adverse events with 69% experiencing side effects (most common problem was infection).
About PCSK9 PCSK9 is known to be a determinant of circulating LDL levels, as it binds to LDL receptors resulting in their degradation so that fewer are available on liver cells to remove excess LDL-cholesterol from the blood. Moreover, traditional LDL-lowering therapies such as statins actually stimulate the production of PCSK9, which limits their own ability to lower LDL-cholesterol. Blocking the PCSK9 pathway is therefore a potentially novel mechanism for lowering LDL-cholesterol.
Alirocumab is an investigational, fully-human monoclonal antibody that targets and blocks PCSK9. It is administered via subcutaneous injection. By inhibiting PCSK9, a determinant of circulating LDL-C levels in the blood, alirocumab has been shown in pre-clinical studies to increase the number of LDL receptors on hepatocytes, thereby lowering LDL-C.
The investigational agent described above is currently under clinical development and its safety and efficacy have not been fully evaluated by any regulatory authority
References
- Statement On A Nonproprietary Name Adopted By The USAN Council – Alirocumab, American Medical Association.

PARIS and TARRYTOWN, N.Y., Oct. 16, 2013 /PRNewswire via COMTEX/ — Sanofi and Regeneron Pharmaceuticals, Inc. REGN -1.73% today announced that the Phase 3 ODYSSEY MONO trial with alirocumab, an investigational monoclonal antibody targeting PCSK9 (proprotein convertase subtilisin/kexin type 9), met its primary efficacy endpoint. The mean low-density lipoprotein-cholesterol (LDL-C, or “bad” cholesterol) reduction from baseline to week 24, the primary efficacy endpoint of the study, was significantly greater in patients randomized to alirocumab, as compared to patients randomized to ezetimibe (47.2% vs. 15.6%, p<0.0001). In the trial, which employed a dose increase (up-titration) for patients who did not achieve an LDL-C level of 70 milligrams/deciliter (mg/dL), the majority of patients remained on the initial low dose of alirocumab of 75 milligrams (mg). read at
Pipeline of selected PCSK9 inhibitors
| Drug name | Companies | Modality | Clinical phase |
|---|---|---|---|
| Alirocumab (also known as REGN727 and SAR236553) | Regeneron/Sanofi | Monoclonal antibody | III |
| AMG145 | Amgen | Monoclonal antibody | II |
| LGT209 | Novartis | Monoclonal antibody | II |
| RG7652 | Roche/Genentech | Monoclonal antibody | II |
| RN316 | Pfizer | Monoclonal antibody | II |
| BMS-962476 | Bristol-Myers Squibb | Adnectin | I |
| ALN-PCS | Alnylam | RNA interference | I |
| ISIS-405879/BMS-844421 | Isis/Bristol-Myers Squibb | Antisense | Discontinued |
| PCSK9, proprotein convertase subtilisin kexin 9. | |||

FINASTERIDE
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(5α, 17β)-N-(1 ,1-dimethylethyl)-3-oxo-4-aza-androst-1-ene-17-carboxamide, finasteride, a 4-aza-steroid compound 5 which exhibits pharmaceutical activity as an inhibitor of the enzyme testosterone 5-α-reductase, and is useful in the treatment of prostate cancer
Finasteride;YM-152;MK-906;Prodel;Propecia;
Chibro-Proscar;Finastid;Prostide;Andozac;Proscar
Finasteride (brand names Proscar and Propecia by Merck, among other generic names) is a synthetic drug for the treatment of benign prostatic hyperplasia (BPH) and male pattern baldness (MPB). It is a type II 5α-reductase inhibitor. 5α-reductase is an enzymethat converts testosterone to dihydrotestosterone (DHT).

Figure . Conversion of testosterone to dihydrotestosterone.
Chemical synthesis
Propecia 1 mg & Finpecia 1 mg tablets
Finasteride is synthesized fromprogesterone:
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History
In 1974, Julianne Imperato-McGinley of Cornell Medical College in New York attended a conference on birth defects. She reported on a group of intersex children in the Caribbean who appeared sexually ambiguous at birth, and were initially raised as girls, but then grew external male genitalia and other masculine characteristic post-onset of puberty. Her research group found that these children shared agenetic mutation, causing deficiency of the 5α-reductase enzyme and male hormone dihydrotestosterone (DHT), which was found to have been the etiology behind abnormalities in male sexual development. Upon maturation, these individuals were observed to have smaller prostates which were underdeveloped, and were also observed to lack incidence of male pattern baldness.
In 1975, copies of Imperato-McGinley’s presentation were seen by P. Roy Vagelos, who was then serving as Merck’s basic-research chief. He was intrigued by the notion that decreased levels of DHT led to the development of smaller prostates. Dr. Vagelos then sought to create a drug which could mimic the condition found in these children in order to treat older men who were suffering from benign prostatic hyperplasia.
In 1992, finasteride (5 mg) was approved by the U.S. Food and Drug Administration (FDA) for treatment of benign prostatic hyperplasia(BPH), which Merck marketed under the brand name Proscar.
In 1997, Merck was successful in obtaining FDA approval for a second indication of finasteride (1 mg) for treatment of male pattern baldness (MPB), which was marketed under the brand name Propecia.
CHEMISTRY
Formerly known as MK-906, finasteride (Figure 1) ([5-
, 17-
-N-(1,1-dimethylethyl) -3-oxo-4-azaandrost- 1-ene-17-carboxamide) belongs to the 4-azasteroid structural class of compounds. (Click on the structure to the right to view a Chime rotatable structure.) Its synthesis, shown in Scheme 1, was published by Rasmusson et al. in 1986.[2] Briefly, beginning with a previously synthesized intermediate, the A-ring of the steroid skeleton was converted from its 3- keto precursor (1) to the required 4-aza system (3) through an open analog (2). Saturation of the B-ring using catalytic hydrogenation gave intermediate 4. Use of the 2-pyridyl thio ester (5) gave a reactive substrate to form the tertiary butyl carboxamide (6). The final step in the synthesis, dehydration of the A-ring with benzeneselenic anhydride, gave the final product, finasteride (7).

Scheme 1. Key intermediates in the synthesis of finasteride by Rasmusson et al. Reagents: a, KMnO4-NaIO4, t-BuOH, reflux; b, NH3, heat; c, H2, Pt, ArOH; d, 2,2′-dipyridyl disulfide, triphenylphosphine, toluene; e, t-butyl amine, THF; f, benzeneselenic anhydride, chlorobenzene.
The preparation of finasteride is described and claimed in U.S. Patent 4.377.584 and further described in U.S. Patent 4.760.071. Other patents which pertain to the preparation of finasteride include Canadian patent application 2.029.859: U.S. patents 5.084.574 and 5.116.983: and Canadian patent applications 2.049.882 and 2.049.881. All these teach the conversion of a final intermediate tofinasteride, which is purified and isolated as a crystalline solid. Althoughfinasteride polymorphs are not mentioned specifically in these items of prior art, the finasteride obtained using them, as a crystalline solid, must be in one or other of the known polymorphic forms, or a mixture of both of them.
Aforementioned Canadian Patent Application 2.103.107 Dolling et a published May 20, 1994, describes preparations of finasteride and the specific polymorphic Form I and Form II thereof. In particular, it teaches that polymorphic Form I can be prepared by crystallization from a mixture of finasteride in an organic solvent and optionally water, such that the amount of organic solvent and water in the mixture is sufficient to cause the solubility of the non-solvated form of finasteride(Form I) to be exceeded and the non- solvated form of finasteride to be less soluble than any other form of finasteride in the mixture. It also teaches that the polymorphic Form I of finasteride can be prepared by heating the polymorphic Form II of finasteride to at least 25°C in water or an organic solvent for a sufficient period of time to effect the conversion. The same reference teaches that polymorphic Form II finasteride can be prepared by crystallization from a mixture of finasteride in an organic solvent and water, such that the amount of organic solvent and water in the mixture is sufficient to cause the solubility of the solvated form of finasteride to be exceeded and the solvated form of finasteride to be less soluble than any other form of finasteride in the mixture, followed by recovery of the solid and removal of the solvent therefrom; or by heating polymorphic Form I finasteride to at least to about 150°C for sufficient time to complete the conversion.
MORE INFO
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Finasteride, marketed under the tradename of PROSCAR®, by Merck & Co., Inc is 17β-(N-tert-butyl carbamoyl)-4-aza-5α-androst-1-en-3-one and is a 5α-reductase inhibitor for use in treating acne, female hirsutism, and particularly benign prostatic hyperplasia. See US Patent 4,760,071 (1988), the entire disclosure of which is incorporated herein by reference..
-
[0002]The synthesis of finasteride in US Patent 4,760,071 involves reacting the 17β-(2-pyridylthio) carboxylate of 4-aza-5α-androst-1-ene-3-one with t-butylamine. A further synthesis of finasteride is described in Synthetic Communications, 30 (17), p. 2683-2690 (1990). including the reacting of the 17-acylimidazole of 4-aza-5α-androst-1-en-3-one with t-butylamine.
-
[0003]However, both of these reactions require the use of heterocyclic aromatic amines which are expensive and give rise to environmental safety and toxicity considerations. Both of these intermediates are prepared from the 17β-carboxylic acid.
-
[0004]The Bodroux reaction, described by F. Bodroux in the references, Bull. Soc. Chim. France 33, 831 ( 1905); 35, 519 (1906); 1, 912 (1907); Compt. Rend. 138, 1427 (1904); 140, 1108 (1905); 142, 401 (1906) discloses the reaction of the magnesium halide salts of amines with esters. However, there is no description or teaching that the reaction can be applied to the reaction of a sterically hindered amine, e.g. t-butyl amine, with a sterically hindered ester such as 1.

The first method (International Patent: W0200507M97A) is finasteridedihydro as raw materials, benzeneseleninic anhydride synthesis of finasteride, the reaction is as follows:
Used in this reaction toxic and expensive reagents benzeneseleninic anhydride, yield only about 50%, and the product to column chromatography to separate, while the use of certain toxic chlorobenzene as solvent, the cost is very high , environmental hazards large.
[0005] The second method (U.S. Patent No.: US20070167477A1) is finasteridedihydro as raw materials, the use of DDQ / BSTFA (i.e. 3,3 – dichloro-5 ,6 – dicyano-p-benzoquinone / second (third trimethylsilyl) trifluoroacetamide) Oxidation get finasteride, the reaction is as follows:
The reaction yield about 65%, the resulting fluorine-containing wastewater intractable, quinones great harm to the environment.
[0006] The third method (international patent: W02008101308A) is dihydrofinasteride as raw material, the use of phenyl sulfide oxidation get finasteride, the reaction is as follows:
The method steps and more complicated to operate, the total yield of only 60%, the use of expensive lithium diisopropylamide, lithium bis trimethylsilyl test Qi IJ, the cost is higher.
REF
Rasmusson, G.H.; Reynolds, G.F. (Merck & Co., Inc.); 17beta-Substd.-4-aza-5alpha-androstenones and their use as 5alpha-reductase inhibitors. AU 8539167; EP 0155096; EP 0314199; ES 8702430; JP 1985222497; JP 1989093600; US 4760071 .
Rasmusson, G.H.; Reynolds, G.F. (Merck & Co., Inc.); Treatment of prostatic carcinoma with 17beta-N-monosubstd.-carbamoyl-4-aza-5-alpha-androst-1-en-3-ones. EP 0285383 .
Rasmusson, G.H.; Reynolds, G.F.; Steinberg, N.G.; Walton, E.; Patel, G.F.; Liang, T.; Cascieri, M.A.; Cheung, A.H.; Brooks, J.R.; Berman, C.; Azasteroids: structure-activity relationships for inhibition of 5 alpha-reductase and of androgen receptor binding. J Med Chem 1986, 29, 11, 2298.
Castaner, J.; Prous, J.; Finasteride. Drugs Fut 1991, 16, 11, 996.
The oxidative cleavage of N-tert-butyl-3-oxo-5alpha-androst-4-ene-17beta-carboxamide (I) with NaIO4 and KMnO4 in tert butanol – aqueous Na2CO3 gives the seco-ketoacid (II), which is cyclized with liquid ammonia in ethylene glycol at 180 C to afford the DELTA5-azasteroid (III). Hydrogenation of (III) with H2 over PtO2 in acetic acid yields the corresponding saturated aza-steroid (IV), which is finally dehydrogenated with benzeneseleninic anhydride in refluxing chlorobenzene or with 2,3-dichloro-5,6-dicyanobenzoquinone (DDQ) and bis(trimethylsilyl)trifluoroacetamide (BSTFA) in refluxing dioxane.
NEW DRUG APPROVALS ACHIEVES ONE LAKH VIEWS IN 166 COUNTRIES

DR A .M. CRASTO
THIS BLOG NEW DRUG APPROVALS ACHIEVES ONE LAKH VIEWS IN 166 COUNTRIES …………….16 TH OCT 2013

Boehringer Ingelheim submits lung cancer treatment, Nintedanib, for approval in the EU
October 14 ,2013 | By Márcio Barra

Nintedanib (trade name Vargatef) has been submitted for approval in Europe as a second-line treatment alongside docetaxel (a chemotherapy agent) for the treatment of locally advanced, metastatic or recurrent non-small cell lung cancer (NSCLC) in patients whose tumours are adenocarcinomas – cancer developed from the cells that produce mucus in the lining of the airways – the most common type of lung cancer.
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Vitamin B3- Niacin or Nicotinamide
Vitamin B3 is another one of the water-soluble B vitamins. It was first discovered in 1873 by Hugo Weidel during his studies of nicotine. Vitamin B3 is essential in multiple steps in metabolism and is needed for good adrenal gland and nervous system function. It is mostly obtained in the diet from animal sources such as chicken, beef, and fish. Liver and kidney and heart have the highest amounts. The best plant sources include shiitake mushrooms, nuts, whole grains, beans, avocados and dates. The body can also synthesize Vitamin B3 using the amino acid tryptophan. Interestingly vitamin B3 deficiency became epidemic when corn started being adopted by Europeans as a food source after the discovery of the Americas (corn is native to central america and therefore was unknown in Europe until the 1500s). The Mayans and other native americans that ate corn did not have vitamin B3 deficiency. This was because they cooked the corn using a…
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StemCells, Inc. Receives FDA Authorization to Expand Spinal Cord Injury Trial to the United States
Last week, StemCells, Inc. received FDA authorization to expand its spinal cord injury trial to the United States.
The arrival of this Phase 1/2 study, which is currently ongoing in Switzerland and Canada and involves patients with chronic spinal cord injury, will significantly ease the travel burden for North American patients. Early results from the trial have been promising, showing two patients had gains in sensory function, first seen at 6 months and persisting 12 months after transplantation. No safety issues have been seen.
To date, seven patients from Germany, Norway, Italy, Israel, Canada and the United States have been transplanted at Balgrist University Hospital in Zurich. StemCells is now focused on opening up trial sites in the United States. Information about the clinical trial is available at the ClinicalTrials.gov website of the National Institutes of Health at http://www.clinicaltrials.gov/ct2/show/NCT01321333?lead=StemCells+Inc.&rank=4.
Russo Partners secured coverage of the announcement across industry publications…
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Understand UNANI SYSTEM OF MEDICINE
Unani System of Medicine developed in ARAB countries and practiced there. Later it came back to India and flourised in this INDIAN continent.
Unani system of medicine is very near to AYURVEDA.
For convenient to understand basics of the Unani system , see and observe the loaded pages.
Tasquinimod for patients with metastatic castrate-resistant prostate cancer (mCRPC) who have not yet received chemotherapy
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Tasquinimod
Tasquinimod (ABR-215050, CID 54682876) is a novel, oral drug currently being investigated for the treatment of solid tumors. Tasquinimod has been mostly studied in prostate cancer, but its mechanism of action suggests that it could be used to treat other cancers. Castration-resistant prostate cancer (CRPC), formerly called hormone-resistant or hormone-refractory prostate cancer, is prostate cancer that grows despite medical or surgical androgen deprivation therapy. Tasquinimod targets the tumor microenvironment and counteracts cancer development by inhibiting angiogenesis and metastasis and by modulating the immune system. It is now in phase III development, following successful phase II trial outcomes.
Collaborative studies by laboratories at The Johns Hopkins University School of Medicine, Baltimore, Maryland, USA, and Active Biotech Research AB, Lund, Sweden, identified tasquinimod as the lead agent for developing a treatment for prostate cancer.Tasquinimod was one of several second-generation quinoline-3-carboxamide variants synthesized using the drug roquinimex as a starting point, and it performed well in pre-clinical studies of cancer models
Tasquinimod is a novel small molecule that targets the tumor microenvironment by binding to S100A9 and modulating regulatory myeloid cell functions, exerting immunomodulatory, anti-angiogenic and anti-metastatic properties. Tasquinimod may also suppress the tumor hypoxic response, contributing to its effect on the tumor microenvironment. Today the development of tasquinimod is principally focused on the treatment of prostate cancer, but clinical studies in other cancer indications are performed. The ongoing 10TASQ10 trial is a randomized, double-blind, placebo-controlled, global Phase III clinical trial evaluating tasquinimod in patients with metastatic castrate-resistant prostate cancer (mCRPC) who have not yet received chemotherapy.
The aim of the 10TASQ10 study is to confirm tasquinimod’s efficacy, with radiological Progression Free Survival (rPFS) as primary endpoint and overall survival (OS) as key secondary endpoint. The Phase III 10TASQ10 trial met its enrollment target in December 2012 with 1,245 randomized patients as planned in the clinical protocol. The study recruited patients in 37 countries covering more than 200 centers. Active Biotech and Ipsen plan to conduct the primary PFS analysis for the 10TASQ10 trial in 2014, at the same time as the first interim overall survival (OS) analysis.
About Active Biotech
Active Biotech AB (nasdaq omx nordic:ACTI) is a biotechnology company with focus on autoimmune/inflammatory diseases and cancer. Projects in pivotal phase are laquinimod, an orally administered small molecule with unique immunomodulatory properties for the treatment of multiple sclerosis, tasquinimod for prostate cancer and ANYARA primarily for the treatment of renal cell cancer. In addition, laquinimod is also in Phase II development for Crohn’s and Lupus. The company also has one additional project in clinical development, the orally administered compound paquinimod (57-57) for systemic sclerosis. Please visit http://www.activebiotech.com for more information.
About Ipsen
Ipsen is a global specialty-driven pharmaceutical company with total sales exceeding EUR1.2 billion in 2012. Ipsen’s ambition is to become a leader in specialty healthcare solutions for targeted debilitating diseases. Its development strategy is supported by 3 franchises: neurology, endocrinology and uro-oncology. Moreover, the Group has an active policy of partnerships. Ipsen’s R&D is focused on its innovative and differentiated technological platforms, peptides and toxins. In 2012, R&D expenditure totaled close to EUR250 million, representing more than 20% of Group sales. The Group has close to 4,900 employees worldwide. Ipsen’s shares are traded on segment A of Euronext Paris (stock code:IPN)(isin code:FR0010259150) and eligible to the “Service de Reglement Differe” (“SRD”). The Group is part of the SBF 120 index. Ipsen has implemented a Sponsored Level I American Depositary Receipt (ADR) program, which trade on the over-the-counter market in the United States under the symbol IPSEY. For more information on Ipsen, visit http://www.ipsen.com.

In 2011, Active Biotech and Ipsen entered into a broad partnership for the co-development and commercialization of tasquinimod. Under the terms of the agreement, Active Biotech has granted Ipsen exclusive rights to commercialize tasquinimod worldwide, except for North and South America and Japan, where Active Biotech has retained all commercial and marketing rights. Both companies co-develop tasquinimod for the treatment of metastatic castrate-resistant prostate cancer (mCRPC) and Ipsen is developing tasquinimod also in other cancer indications. Active Biotech is responsible for conducting and funding the Phase III 10TASQ10 pivotal clinical trial and will receive up to EUR 200M (whereof EUR 25M upfront and EUR 32M in milestones have been received so far) upon achievement of clinical, regulatory and commercial milestones. In addition, Ipsen will pay Active Biotech tiered double-digit royalties on all sales of TASQ in Ipsen’s territories
N-alkyl-N-phenyl-quinoline-3-carboxamides such as paquinimod (herein below also referred to as A), laquinimod (herein below also referred to as B), andtasquinimod (herein below also referred to as C), have been prepared by a method involving distillation of the volatiles from a mixture comprising an ester, aniline and an aliphatic solvent such as n-heptane or n-octane.
Paquinimod (A) Laquinimod (B) Tasquinimod (C)
This method is described in US patent No. 6,875,869.
The prior art synthetic protocol (Org. Process. Res&Dev. 2007, 11, 674-680) for N-alkyl-N- phenyl-quinoline-3-carboxamides such as paquinimod (A), laquinimod (B), and tasquinimod (C) is exemplified with synthesis of paquinimod in Scheme 1. The route starts with an an- thranilic acid 1 which is transformed into an isatoic anhydride 2. The isatoic anhydride is methylated to give 3, which is condensed with dimethylmalonate to give the corresponding methyl ester 4. The methyl ester is subsequently condensed with the appropriate aniline, to give the desired final compound.
Scheme 1. The synthetic route to N-alkyl-N-phenyl-quinoline-3-carboxamides, exemplified with the synthesis of paquinimod (A) via the corresponding methyl ester 4.
This manufacturing method is short and avoids the use of expensive reagents. All intermediates are stable and easy to isolate in high purity by precipitation and filtration. The main impurity in the final condensation step is remaining alkyl ester. Alternative methods, such as carbodiimide mediated coupling between a carboxylic acid and aniline, or the condensation of N-alkyl-N-phenyl-malonamic acid methyl ester with an isatoic anhydride (US patent No. 5,912,349) are either longer or yield product of lower purity.
The final condensation step is an equilibrium (Scheme 2) that favors the alkyl ester and a action mechanism involving a ketene intermediate 5 has been strongly indicated (J. Org. Chem. 2006, 71, 1658-1667 and J Phys. Chem. A 2008, 112, 4501-4510).
Scheme 2. An intermediate ketene 5 is involved in the equilibrium between 4 and A. Usually formation of amides from esters and anilines requires very high reaction temperatures that also cause extensive byproduct formation. The above-mentioned reaction is enabled at moderate temperatures by the ability of 4 to unimolecularly form the ketene intermediate 5 instead of a tetrahedral intermediate. The method, which is described e.g. in US patent No. 6,875,869, comprises charging the reactor with an appropriate ester and an aniline derivative in an aliphatic solvent such as n-heptane or n-octane.
The equilibrium is driven towards the desired product by distilling off the solvent and any formed alcohol. After complete reaction the mixture is cooled and the precipitated raw product is isolated by filtration. Unlike most other reactions where esters are transformed into thermodynamically more stable amides this particular reaction needs a very efficient removal of formed alcohol in order to give a high yield.
DRUG APPROVALS BY DR ANTHONY MELVIN CRASTO
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