WO2011037610A1 - Prostaglandin transporter inhibitors and uses thereof - Google Patents

Prostaglandin transporter inhibitors and uses thereof Download PDF

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Publication number
WO2011037610A1
WO2011037610A1 PCT/US2010/002555 US2010002555W WO2011037610A1 WO 2011037610 A1 WO2011037610 A1 WO 2011037610A1 US 2010002555 W US2010002555 W US 2010002555W WO 2011037610 A1 WO2011037610 A1 WO 2011037610A1
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Prior art keywords
compound
reaction mixture
residue
eqs
halogen
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PCT/US2010/002555
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French (fr)
Inventor
Victor L. Schuster
Yuling Chi
Andrew S. Wasmuth
Richard S. Pottorf
Gary L. Olson
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Albert Einstein College Of Medicine Of Yeshiva University
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Priority to CA2811154A priority Critical patent/CA2811154C/en
Priority to US13/394,857 priority patent/US8952150B2/en
Priority to EP10819142.0A priority patent/EP2488032B1/en
Priority to AU2010298720A priority patent/AU2010298720B2/en
Publication of WO2011037610A1 publication Critical patent/WO2011037610A1/en

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Definitions

  • Prostaglandins are synthesized from arachidonic acid by cyclooxygenases (COX1 and COX2) and corresponding synthases (Helliwell et al. 2004). PGs play an important role in physiology and clinical settings.
  • PGs are involved in several major signaling pathways, including the mitogen-activated protein (MAP) kinase and protein kinase A pathways by upregulation of cAMP (Narumiya et al., 1999; Bos et al., 2004).
  • MAP mitogen-activated protein
  • cAMP protein kinase A pathway by upregulation of cAMP
  • PGT removes PGs from the extracellular compartment and thereby terminates their interactions with receptors on cell membranes.
  • PGT delivers PGs to cytoplasmic 15-OH PG dehydrogenase (Schuster, 2002; Nomura et al., 2004), resulting in oxidation and inactivation.
  • PGT is highly expressed in the tissues and organs where PGs are synthesized (Bao et al., 2002), and because PGT regulates a broad and complex PG signaling system, inhibitors of PGT are important for manipulating signaling. Inhibition of PGT lowers blood pressure by vasodilation and natriuresis and inhibits platelet aggregation (Chi et al., 2009).
  • PGT blockers include inhibitors of the organic anion transporters (OATs), such as bromcresol green and bromosulfophthalein, and some COX2 inhibitors, such as indomethacin and ibuprofen (Bito and Salvador, 1976; Kanai et al., 1995).
  • OATs organic anion transporters
  • COX2 inhibitors such as indomethacin and ibuprofen
  • One of the main problems with these inhibitors is that they are not specific for PGT (Jacquemin et al., 1994; Sweet et al., 1997).
  • specific PGT inhibitors have been developed (Chi et al., 2005; WO 2007/136638).
  • the present invention addresses the need for even more potent specific inhibitors of PGT.
  • the invention provides compounds that inhibit prostaglandin transporter (PGT)
  • compositions comprising any of the compounds disclosed herein and a pharmaceutically acceptable carrier.
  • the invention is further directed to methods of inhibiting prostaglandin transporter (PGT) activity in a subject comprising administering to the subject any of the compounds disclosed herein in an amount effective to inhibit PGT activity.
  • PGT prostaglandin transporter
  • the invention also provides methods of inhibiting cyclooxygenase 2 (COX2) activity in a subject comprising administering to the subject any of the compounds disclosed herein in an amount effective to inhibit COX2 activity.
  • COX2 cyclooxygenase 2
  • the invention further provides a method of treating a subject with a disease or disorder associated with prostaglandin activity and/or COX2 activity comprising administering to the subject any of the compounds disclosed herein in an amount effective to inhibit prostaglandin transporter (PGT) activity and/or COX2 activity.
  • PTT prostaglandin transporter
  • FIG. 1A-1B Prostaglandin transporter (PGT) inhibitors accelerate wound healing.
  • PTT Prostaglandin transporter
  • vehicle Veh2 2% EtOH
  • PGE 2 was applied to the other.
  • the invention provides compounds that inhibit prostaglandin transporter (PGT) activity, where the compounds are represented by the structure:
  • W is O or NR5
  • Rl is H, -CH 3 , -(CH 2 ) 2 OH,
  • R3 is -(CH 2 ) 5 CH 3 , -(CH 2 ) 6 C0 2 H, -(CH 2 ) 6 C0 2 CH 3 , -(CH 2 ) d NHCO-Ph, -(CH 2 ) 6 CONH-Ph,
  • R4 and R5 are independently H or -CH 3 ;
  • R6 is O or NR9
  • R7 is H, -CH 3 , -C(CH 3 ) 3 , -CH 2 OH, -(CH 2 ) 2 OH, -(CH 2 ) 2 0(CH 2 ) 2 OH, -(CH 2 CH 2 0) 3 CH 3 , -(CH 2 CH 2 0) 2 CH 2 C0 2 CH 3 , -(CH 2 ) 5 CH 3 ,
  • R8 is -OH, -CH 2 OH, -C0 2 H, -C0 2 CH 2 CH 3 , -CO(CH 2 ) 6 CH 3 , -OCH 3 , -NH 2 ,
  • R9 is H or -CH 3 ;
  • R10 is -CH 2 NH 2 , -C0 2 H or -C0 2 CH 3 ; -SO 2 -Ph, -CH 2 -Ph, -CONH-Ph, -COCH 3 ,
  • W is NR5.
  • R6 is R9.
  • At least one of R4, R5 and R9 is H, or all of R4, R5 and R9 are H.
  • at least R5 is H.
  • one of XI and X2 is H, and the other is halogen, -CF 3 , - CH 3 , -CO 2 H, -CO 2 CH 3 , -OCH 3 or phenyl; or both XI and X2 are halogen.
  • one of X3 and X4 is H, and the other is halogen, -CO 2 H, -CO 2 CH 3 , -CH 2 CO 2 H, - CH 2 CO 2 CH 3 , -OH, -OCH 3 or -O-Bn; or one of X3 and X4 is -OH, and the other is halogen, - CO 2 H or -CO 2 CH 3 .
  • one of X5 and X6 is H, and the other is halogen, -CF 3 , -OCH 3 or phenyl; or both X5 and X6 are halogen.
  • X7 is H, -CF 3 or -OCH 3 .
  • R8 is located in para position.
  • one or both of XI and X2 are located in ortho position, or one or both of XI and X2 are located in meta position, or XI is located in meta position and X2 is located in para position, or XI is located in ortho position and X2 is located in para position.
  • X3 is in meta position and X4 is in para position.
  • X5 or X6 is in meta position, or X5 or X6 is in para position.
  • Preferred compounds have the structure:
  • XI is H or halogen
  • X4 is H, halogen or -C0 2 H
  • X5 is H, halogen or -OCH 3 ; or a pharmaceutically acceptable salt thereof.
  • Preferred compounds have the structure:
  • W-Rl can be replaced with halogen.
  • Halogens are F, CI, Br, I and At.
  • Preferred halogens are Br, CI and F.
  • the invention provides a compound having the structure:
  • the invention also provides a pharmaceutical composition comprising any of the compounds disclosed herein and a pharmaceutically acceptable carrier.
  • pharmaceutically acceptable it is meant a material that (i) is compatible with the other ingredients of the composition without rendering the composition unsuitable for its intended purpose, and (ii) is suitable for use with subjects as provided herein without undue adverse side effects (such as toxicity, irritation, and allergic response). Side effects are “undue” when their risk outweighs the benefit provided by the composition.
  • pharmaceutically acceptable carriers include, without limitation, any of the standard pharmaceutical carriers such as phosphate buffered saline solutions, water, emulsions such as oil/water emulsions, microemulsions, and the like.
  • the invention provides a method of inhibiting prostaglandin transporter (PGT) activity in a subject comprising administering to the subject any of the compounds disclosed herein in an amount effective to inhibit PGT activity.
  • PGT prostaglandin transporter
  • the invention also provides a method of inhibiting cyclooxygenase 2 (COX2) activity in a subject comprising administering to the subject any of the compounds disclosed herein in an amount effective to inhibit COX2 activity.
  • COX2 cyclooxygenase 2
  • the invention further provides a method of treating a disease or disorder in a subject associated with prostaglandin activity and/or COX2 activity comprising administering to the subject any of the compounds disclosed herein in an amount effective to inhibit prostaglandin transporter (PGT) activity and/or COX2 activity.
  • PTT prostaglandin transporter
  • the disease or disorder can be, for example, arthritis, fever, common cold, hypertension, glaucoma, a wound, initiation of labor, dysmenorrhea, menstrual cramps, inflammatory bowel disease, Crohn's disease, emphysema, acute respiratory distress syndrome, asthma, bronchitis, chronic obstructive pulmonary disease, Alzheimer's disease, organ transplant toxicity, cachexia, allergic reactions, allergic contact hypersensitivity, cancer, tissue ulceration, peptic ulcers, gastritis, regional enteritis, ulcerative colitis, diverticulitis, recurrent gastrointestinal lesion, gastrointestinal bleeding, coagulation, anemia, synovitis, gout, ankylosing spondylitis, inflammation, restenosis, periodontal disease, epidermolysis bullosa, osteoporosis, loosening of artificial joint implants, atherosclerosis, aortic aneurysm, periarteritis nodosa, congestive heart failure, myocardi
  • compositions can be determined without undue experimentation using standard dose-response protocols.
  • compositions designed for oral, lingual, sublingual, buccal and intrabuccal administration can be made without undue experimentation by means well known in the art, for example with an inert diluent or with an edible carrier.
  • the compositions may be enclosed in gelatin capsules or compressed into tablets.
  • the pharmaceutical compositions of the present invention may be incorporated with excipients and used in the form of tablets, troches, capsules, elixirs, suspensions, syrups, wafers, chewing gums and the like. Tablets, pills, capsules, troches and the like may also contain binders, recipients, disintegrating agent, lubricants, sweetening agents, and flavoring agents.
  • binders include microcrystalline cellulose, gum tragacanth or gelatin.
  • excipients include starch or lactose.
  • disintegrating agents include alginic acid, cornstarch and the like.
  • lubricants include magnesium stearate or potassium stearate.
  • An example of a glidant is colloidal silicon dioxide.
  • sweetening agents include sucrose, saccharin and the like.
  • flavoring agents include peppermint, methyl salicylate, orange flavoring and the like.
  • the compounds can easily be administered parenterally such as for example, by intravenous, intramuscular, intrathecal or subcutaneous injection. Parenteral administration can be accomplished by incorporating the compounds into a solution or suspension.
  • Such solutions or suspensions may also include sterile diluents such as water for injection, saline solution, fixed oils, polyethylene glycols, glycerine, propylene glycol or other synthetic solvents.
  • Parenteral formulations may also include antibacterial agents such as for example, benzyl alcohol or methyl parabens, antioxidants such as for example, ascorbic acid or sodium bisulfite and chelating agents such as EDTA. Buffers such as acetates, citrates or phosphates and agents for the adjustment of tonicity such as sodium chloride or dextrose may also be . added.
  • the parenteral preparation can be enclosed in ampules, disposable syringes or multiple dose vials made of glass or plastic.
  • Rectal administration includes administering the compound, in a pharmaceutical composition, into the rectum or large intestine. This can be accomplished using suppositories or enemas.
  • Suppository formulations can easily be made by methods known in the art. For example, suppository formulations can be prepared by heating glycerin to about 120° C, dissolving the composition in the glycerin, mixing the heated glycerin after which purified water may be added, and pouring the hot mixture into a suppository mold.
  • Transdermal administration includes percutaneous absorption of the composition through the skin.
  • Transdermal formulations include patches (such as the well-known nicotine patch), ointments, creams, gels, salves and the like.
  • Topical administration may be preferred for localized application of the compound, for example, for promoting wound healing or for ocular administration (e.g., eye drops).
  • the present invention includes nasally administering to the mammal a
  • therapeutically effective amount of the compound for example, as a nasal spray, nasal drop, suspension, gel, ointment, cream powder, or using a nasal tampon or nasal sponge.
  • the compound is administered peripherally such that it must cross the blood-brain barrier
  • the compound is preferably formulated in a pharmaceutical composition that enhances the ability of the compound to cross the blood-brain barrier of the mammal.
  • Such formulations are known in the art and include lipophilic compounds to promote absorption. Uptake of non-lipophilic compounds can be enhanced by combination with a lipophilic substance.
  • Lipophilic substances that can enhance delivery of the compound across the nasal mucus include but are not limited to fatty acids (e.g., palmitic acid), gangliosides (e.g., GM-1), phospholipids (e.g., phosphatidylserine), and emulsifiers (e.g., polysorbate 80), bile salts such as sodium deoxycholate, and detergent-like substances including, for example, polysorbate 80 such as TweenTM, octoxynol such as TritonTM X-100, and sodium tauro-24,25-dihydrofusidate (STDHF).
  • fatty acids e.g., palmitic acid
  • gangliosides e.g., GM-1
  • phospholipids e.g., phosphatidylserine
  • emulsifiers e.g., polysorbate 80
  • bile salts such as sodium deoxycholate
  • the compound is combined with micelles comprised of lipophilic substances.
  • the compound can be combined with liposomes (lipid vesicles) to enhance absorption.
  • the compound can be contained or dissolved within the liposome and/or associated with its surface.
  • Suitable liposomes include phospholipids (e.g., phosphatidylserine) and/or gangliosides (e.g., GM-1). Bile salts and their derivatives and detergent-like substances can also be included in the liposome formulation.
  • the invention also provides for the use of any of the compounds disclosed herein for treating a subject and for the use of any of the compounds disclosed herein for the preparation of a pharmaceutical composition for treating a subject, where the subject is being treated to inhibit prostaglandin transporter (PGT) activity or inhibit cyclooxygenase 2 (COX2) activity or the subject has a disease or disorder associated with prostaglandin activity and/or COX2 activity.
  • PTT prostaglandin transporter
  • COX2 cyclooxygenase 2
  • HPLC was performed on Rainin SD-300 or Varian ProStar equipped with a single wavelength UV detector at 214 nm and linear gradients.
  • Analytical HPLC was performed on a Varian C 18 column (microsorb 60-8, 4.6 x 250 mm) at a flow rate of 1 mL/min.
  • Semi-preparative HPLC was performed on a Varian Ci 8 column (microsorb 60- 8, 10.0 x 250 mm) at a flow rate of 5 mL/min.
  • Preparative HPLC was routinely performed on a Varian C ] 8 column (microsorb 60-8, 21.4 x 250 mm) at a flow rate of 20 mL/min.
  • the solvent system used on linear gradients was water with 0.075% TFA (solvent A) vs
  • ester 14 To a solution of 4-(aminomethyl)benzoic acid (1 eq.) in benzene (0.3 mL) and MeOH (0.3 mL) was added TMSCHN 2 (1.3 eqs.). The reaction mixture was stirred for 1.0 h, after which the reaction mixture was concentrated in vacuo. Ester 14 was used without further purification.
  • T26A [000144] Studies were conducted using compound T26A (Table 1). Two full-thickness wounds with diameter of 5 mm were created on the back of mice symmetrically under the shoulder blades. 50 ⁇ . vehicle (2% DMSO + 2% cremophor in water) was applied to one wound ( Figure 1 A, top panel), and that of 2 mM T26A was applied to the other ( Figure 1 A, bottom panel), immediately after surgery and every other day afterwards. T26A accelerates wound healing as shown over a 10 day period in Figure 1 A. T26A increased vascularization and blood flow in the wound.
  • Figure IB shows averaged wound areas of 4 mice, each of them had 2 wounds and received topically applied vehicle Vehl (2% DMSO + 2% cremophor in water) on one wound and T26A on the other.
  • vehicle Veh2 2% EtOH, yellow
  • PGE 2 green

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Abstract

Disclosed are compounds for inhibiting prostaglandin transporter (PGT) activity, pharmaceuticals compositions including the compounds, and methods of treating subjects using the compounds.

Description

PROSTAGLANDIN TRANSPORTER INHIBITORS AND USES THEREOF
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application claims the benefit of U.S. Provisional Patent Application No. 61/277,291, filed September 23, 2009, the content of which is hereby incorporated by reference into the subject application.
BACKGROUND OF THE INVENTION
[0002] Various publications are referred to in parentheses throughout this application. Full citations for these references may be found at the end of the specification immediately preceding the claims. The disclosures of these publications are hereby incorporated by reference in their entireties into the subject application to more fully describe the art to which the subject application pertains.
[0003] Prostaglandins (PGs) are synthesized from arachidonic acid by cyclooxygenases (COX1 and COX2) and corresponding synthases (Helliwell et al. 2004). PGs play an important role in physiology and clinical settings. Their biological effects include triggering inflammation, fever and pain (Blatteis and Sehic, 1997; Bley et al., 1998; Vanegas and Schaible, 2001; Samad et al., 2002); induction of labor (Ulmann et al, 1992); modulation of renal hemodynamics and of water and solute reabsorption (Epstein, 1986; Wang et al., 1998; Yokoyama et al., 2002); arterial vasodilatation (Clyman et al., 1978; Coceani and Olley, 1988; Smith et al., 1994); stimulation of cell proliferation and angiogenesis (Ferrara et al, 1997; Tsujii et al, 1998; Young, 2004; Mann et al, 2006; Sheng et al, 2001 ; Shao et al, 2006); and mediating sensitization of sensory neurons (Southall and Vasko, 2000; Southall and Vasko, 2001 ; Seybold et al., 2003). PG analogues, such as latanoprost and unoprostone, have been used to treat glaucoma (Stjernschantz, 1995; Aim, 1998; Susanna et al., 2002;
Stjernschantz, 2004). At the cellular level, PGs are involved in several major signaling pathways, including the mitogen-activated protein (MAP) kinase and protein kinase A pathways by upregulation of cAMP (Narumiya et al., 1999; Bos et al., 2004).
[0004] The magnitude of PG effects depends not only on their production but also their metabolism. The prostaglandin transporter (PGT) (Kanai et al., 1995; U.S. Patent No.
5,792,851) removes PGs from the extracellular compartment and thereby terminates their interactions with receptors on cell membranes. PGT delivers PGs to cytoplasmic 15-OH PG dehydrogenase (Schuster, 2002; Nomura et al., 2004), resulting in oxidation and inactivation. Because PGT is highly expressed in the tissues and organs where PGs are synthesized (Bao et al., 2002), and because PGT regulates a broad and complex PG signaling system, inhibitors of PGT are important for manipulating signaling. Inhibition of PGT lowers blood pressure by vasodilation and natriuresis and inhibits platelet aggregation (Chi et al., 2009).
[0005] Known PGT blockers include inhibitors of the organic anion transporters (OATs), such as bromcresol green and bromosulfophthalein, and some COX2 inhibitors, such as indomethacin and ibuprofen (Bito and Salvador, 1976; Kanai et al., 1995). One of the main problems with these inhibitors is that they are not specific for PGT (Jacquemin et al., 1994; Sweet et al., 1997). Recently, specific PGT inhibitors have been developed (Chi et al., 2005; WO 2007/136638). The present invention addresses the need for even more potent specific inhibitors of PGT.
SUMMARY OF THE INVENTION
[0006] The invention provides compounds that inhibit prostaglandin transporter (PGT)
activity, where the compounds are represented by the structure
Figure imgf000003_0001
where the variables Rl, R2, R3, R4 and W are defined herein below.
[0007] The invention provides pharmaceutical compositions comprising any of the compounds disclosed herein and a pharmaceutically acceptable carrier.
[0008] The invention is further directed to methods of inhibiting prostaglandin transporter (PGT) activity in a subject comprising administering to the subject any of the compounds disclosed herein in an amount effective to inhibit PGT activity.
[0009] The invention also provides methods of inhibiting cyclooxygenase 2 (COX2) activity in a subject comprising administering to the subject any of the compounds disclosed herein in an amount effective to inhibit COX2 activity.
[00010] The invention further provides a method of treating a subject with a disease or disorder associated with prostaglandin activity and/or COX2 activity comprising administering to the subject any of the compounds disclosed herein in an amount effective to inhibit prostaglandin transporter (PGT) activity and/or COX2 activity.
BRIEF DESCRIPTION OF THE DRAWINGS
[00011] Figure 1A-1B. Prostaglandin transporter (PGT) inhibitors accelerate wound healing. A. Inhibitor T26A applied directly to the wound accelerates wound healing in mice (bottom row) compared to treatment with vehicle (Veh) (top row). B. Averaged wound areas of 4 mice, each of them had 2 wounds and received topically applied vehicle Vehl (2% DMSO + 2% cremophor in water) on one wound and T26A on the other. On the wounds of a separate group of 4 mice, vehicle Veh2 (2% EtOH) was applied to one wound and 200 μΜ PGE2 was applied to the other.
DETAILED DESCRIPTION OF THE INVENTION
[00012] The invention provides compounds that inhibit prostaglandin transporter (PGT) activity, where the compounds are represented by the structure:
Figure imgf000004_0001
wherein
W is O or NR5;
Rl is H, -CH3, -(CH2)2OH,
Figure imgf000004_0002
R3 is -(CH2)5CH3, -(CH2)6C02H, -(CH2)6C02CH3, -(CH2)dNHCO-Ph, -(CH2)6CONH-Ph,
Figure imgf000005_0001
R4 and R5 are independently H or -CH3;
R6 is O or NR9;
R7 is H, -CH3, -C(CH3)3, -CH2OH, -(CH2)2OH, -(CH2)20(CH2)2OH, -(CH2CH20)3CH3, -(CH2CH20)2CH2C02CH3, -(CH2)5CH3,
Figure imgf000005_0002
R8 is -OH, -CH2OH, -C02H, -C02CH2CH3, -CO(CH2)6CH3, -OCH3, -NH2,
Figure imgf000005_0003
R9 is H or -CH3;
R10 is -CH2NH2, -C02H or -C02CH3; -SO2-Ph, -CH2-Ph, -CONH-Ph, -COCH3,
Figure imgf000006_0001
where XI, X2, X3, X4, X5, X6 and X7 are independently H, halogen, -OH, -CH3, -CF3, -OCH3, -CO2H, -CO2CH3j -CH2CO2H, -CH2CO2CH3, phenyl or -O-Bn; and where a = 0-2; b = 1-6; c = 0-1 ; d = 4-7; and e = 0-1 ; or a pharmaceutically acceptable salt thereof.
[00013] As used herein in chemical structures, "Ph" stands for phenyl, "Bn" stands for benzyl (-CH2Ph), "Bz" stands for benzoyl (-(C=O)Ph), and "Me" stands for methyl (-CH3). The point of attachment of the side group substitution to the main part of the compound is indicated by "( )." The terms ortho, meta and para refer to the positions of substitutions in relation to the main part of the compound.
[00014] In preferred compounds, W is NR5. In preferred compounds, R6 is R9.
[00015] In preferred compounds, at least one of R4, R5 and R9 is H, or all of R4, R5 and R9 are H. Preferably, at least R5 (out of R4, R5 and R9) is H.
[00016] In preferred compounds, one of XI and X2 is H, and the other is halogen, -CF3, - CH3, -CO2H, -CO2CH3, -OCH3 or phenyl; or both XI and X2 are halogen. In preferred compounds, one of X3 and X4 is H, and the other is halogen, -CO2H, -CO2CH3, -CH2CO2H, - CH2CO2CH3, -OH, -OCH3 or -O-Bn; or one of X3 and X4 is -OH, and the other is halogen, - CO2H or -CO2CH3. In preferred compounds, one of X5 and X6 is H, and the other is halogen, -CF3, -OCH3 or phenyl; or both X5 and X6 are halogen. In preferred compounds, X7 is H, -CF3 or -OCH3.
[00017] In preferred compounds, R8 is located in para position. In preferred compounds, one or both of XI and X2 are located in ortho position, or one or both of XI and X2 are located in meta position, or XI is located in meta position and X2 is located in para position, or XI is located in ortho position and X2 is located in para position. In preferred compounds, X3 is in meta position and X4 is in para position. In preferred compounds, X5 or X6 is in meta position, or X5 or X6 is in para position.
[00018] Preferred compounds have the structure:
Figure imgf000007_0001
; or a pharmaceutically acceptable salt thereof.
[00019] In preferred compounds,
Rl is
Figure imgf000007_0002
Figure imgf000008_0001
where XI, X2, X3, X4, X5 and X6 are independently H, halogen, -OH, -CH3, -CF3, -OCH3> -C02H, -C02CH3, -CH2C02H or -CH2C02CH3; and where a = 1-2; and b = 1-5; or a pharmaceutically acceptable salt thereof.
[00020] In preferred compounds,
Figure imgf000008_0002
where XI is H or halogen; where X4 is H, halogen or -C02H; and where X5 is H, halogen or -OCH3; or a pharmaceutically acceptable salt thereof.
[00021] Preferred compounds have the structure:
Figure imgf000008_0003
or a pharmaceutically acceptable salt thereof.
[00022] In the compounds described herein, W-Rl can be replaced with halogen.
[00023] Halogens are F, CI, Br, I and At. Preferred halogens are Br, CI and F.
[00024] The invention provides a compound having the structure:
Figure imgf000009_0001
Figure imgf000010_0001
Figure imgf000011_0001
Figure imgf000012_0001
Figure imgf000013_0001
Figure imgf000014_0001
Figure imgf000015_0001
Figure imgf000016_0001
Figure imgf000017_0001
Figure imgf000018_0001
Figure imgf000019_0001
Figure imgf000020_0001
Figure imgf000021_0001
compounds have the structure:
Figure imgf000021_0002
Figure imgf000022_0001
Figure imgf000023_0001
; or a pharmaceutically acceptable salt thereof.
[00026] The invention also provides a pharmaceutical composition comprising any of the compounds disclosed herein and a pharmaceutically acceptable carrier. By
"pharmaceutically acceptable" it is meant a material that (i) is compatible with the other ingredients of the composition without rendering the composition unsuitable for its intended purpose, and (ii) is suitable for use with subjects as provided herein without undue adverse side effects (such as toxicity, irritation, and allergic response). Side effects are "undue" when their risk outweighs the benefit provided by the composition. Non-limiting examples of pharmaceutically acceptable carriers include, without limitation, any of the standard pharmaceutical carriers such as phosphate buffered saline solutions, water, emulsions such as oil/water emulsions, microemulsions, and the like.
[00027] The invention provides a method of inhibiting prostaglandin transporter (PGT) activity in a subject comprising administering to the subject any of the compounds disclosed herein in an amount effective to inhibit PGT activity.
[00028] The invention also provides a method of inhibiting cyclooxygenase 2 (COX2) activity in a subject comprising administering to the subject any of the compounds disclosed herein in an amount effective to inhibit COX2 activity.
[00029] The invention further provides a method of treating a disease or disorder in a subject associated with prostaglandin activity and/or COX2 activity comprising administering to the subject any of the compounds disclosed herein in an amount effective to inhibit prostaglandin transporter (PGT) activity and/or COX2 activity. The disease or disorder can be, for example, arthritis, fever, common cold, hypertension, glaucoma, a wound, initiation of labor, dysmenorrhea, menstrual cramps, inflammatory bowel disease, Crohn's disease, emphysema, acute respiratory distress syndrome, asthma, bronchitis, chronic obstructive pulmonary disease, Alzheimer's disease, organ transplant toxicity, cachexia, allergic reactions, allergic contact hypersensitivity, cancer, tissue ulceration, peptic ulcers, gastritis, regional enteritis, ulcerative colitis, diverticulitis, recurrent gastrointestinal lesion, gastrointestinal bleeding, coagulation, anemia, synovitis, gout, ankylosing spondylitis, inflammation, restenosis, periodontal disease, epidermolysis bullosa, osteoporosis, loosening of artificial joint implants, atherosclerosis, aortic aneurysm, periarteritis nodosa, congestive heart failure, myocardial infarction, stroke, cerebral ischemia, head trauma, spinal cord injury, neuralgia, neuro-degenerative disorders, autoimmune disorders, Huntington's disease, Parkinson's disease, migraine, depression, peripheral neuropathy, pain, gingivitis, cerebral amyloid angiopathy, nootropic or cognition enhancement, amyotrophic lateral sclerosis, multiple sclerosis, ocular angiogenesis, corneal injury, macular degeneration, conjunctivitis, abnormal wound healing, muscle or joint sprains or strains, tendonitis, skin disorders, myasthenia gravis, polymyositis, myositis, bursitis, bums, diabetes, tumor invasion, tumor growth, tumor metastasis, corneal scarring, scleritis, immunodeficiency diseases, sepsis, premature labor, hyporothrombinemia, hemophilia, thyroiditis, sarcoidosis, Behcet's syndrome, hypersensitivity, kidney disease, rickettsial infections, protozoan diseases, reproductive disorders or septic shock. Preferably, the disease or disorder is inflammation, pain, a wound, or a cardiovascular disease, such as hypertension or atherosclerosis.
[00030] The above-described compounds can be formulated without undue
experimentation for administration to a mammal, including humans, as appropriate for the particular application. Additionally, proper dosages of the compositions can be determined without undue experimentation using standard dose-response protocols.
[00031] Accordingly, compositions designed for oral, lingual, sublingual, buccal and intrabuccal administration can be made without undue experimentation by means well known in the art, for example with an inert diluent or with an edible carrier. The compositions may be enclosed in gelatin capsules or compressed into tablets. For the purpose of oral therapeutic administration, the pharmaceutical compositions of the present invention may be incorporated with excipients and used in the form of tablets, troches, capsules, elixirs, suspensions, syrups, wafers, chewing gums and the like. Tablets, pills, capsules, troches and the like may also contain binders, recipients, disintegrating agent, lubricants, sweetening agents, and flavoring agents. Some examples of binders include microcrystalline cellulose, gum tragacanth or gelatin. Examples of excipients include starch or lactose. Some examples of disintegrating agents include alginic acid, cornstarch and the like. Examples of lubricants include magnesium stearate or potassium stearate. An example of a glidant is colloidal silicon dioxide. Some examples of sweetening agents include sucrose, saccharin and the like. Examples of flavoring agents include peppermint, methyl salicylate, orange flavoring and the like. [00032] The compounds can easily be administered parenterally such as for example, by intravenous, intramuscular, intrathecal or subcutaneous injection. Parenteral administration can be accomplished by incorporating the compounds into a solution or suspension. Such solutions or suspensions may also include sterile diluents such as water for injection, saline solution, fixed oils, polyethylene glycols, glycerine, propylene glycol or other synthetic solvents. Parenteral formulations may also include antibacterial agents such as for example, benzyl alcohol or methyl parabens, antioxidants such as for example, ascorbic acid or sodium bisulfite and chelating agents such as EDTA. Buffers such as acetates, citrates or phosphates and agents for the adjustment of tonicity such as sodium chloride or dextrose may also be . added. The parenteral preparation can be enclosed in ampules, disposable syringes or multiple dose vials made of glass or plastic.
[00033] Rectal administration includes administering the compound, in a pharmaceutical composition, into the rectum or large intestine. This can be accomplished using suppositories or enemas. Suppository formulations can easily be made by methods known in the art. For example, suppository formulations can be prepared by heating glycerin to about 120° C, dissolving the composition in the glycerin, mixing the heated glycerin after which purified water may be added, and pouring the hot mixture into a suppository mold.
[00034] Transdermal administration includes percutaneous absorption of the composition through the skin. Transdermal formulations include patches (such as the well-known nicotine patch), ointments, creams, gels, salves and the like.
[00035] Topical administration may be preferred for localized application of the compound, for example, for promoting wound healing or for ocular administration (e.g., eye drops).
[00036] The present invention includes nasally administering to the mammal a
therapeutically effective amount of the compound, for example, as a nasal spray, nasal drop, suspension, gel, ointment, cream powder, or using a nasal tampon or nasal sponge.
[00037] Where the compound is administered peripherally such that it must cross the blood-brain barrier, the compound is preferably formulated in a pharmaceutical composition that enhances the ability of the compound to cross the blood-brain barrier of the mammal. Such formulations are known in the art and include lipophilic compounds to promote absorption. Uptake of non-lipophilic compounds can be enhanced by combination with a lipophilic substance. Lipophilic substances that can enhance delivery of the compound across the nasal mucus include but are not limited to fatty acids (e.g., palmitic acid), gangliosides (e.g., GM-1), phospholipids (e.g., phosphatidylserine), and emulsifiers (e.g., polysorbate 80), bile salts such as sodium deoxycholate, and detergent-like substances including, for example, polysorbate 80 such as Tween™, octoxynol such as Triton™ X-100, and sodium tauro-24,25-dihydrofusidate (STDHF).
[00038] In particular embodiments of the invention, the compound is combined with micelles comprised of lipophilic substances. Alternatively, the compound can be combined with liposomes (lipid vesicles) to enhance absorption. The compound can be contained or dissolved within the liposome and/or associated with its surface. Suitable liposomes include phospholipids (e.g., phosphatidylserine) and/or gangliosides (e.g., GM-1). Bile salts and their derivatives and detergent-like substances can also be included in the liposome formulation.
[00039] The invention also provides for the use of any of the compounds disclosed herein for treating a subject and for the use of any of the compounds disclosed herein for the preparation of a pharmaceutical composition for treating a subject, where the subject is being treated to inhibit prostaglandin transporter (PGT) activity or inhibit cyclooxygenase 2 (COX2) activity or the subject has a disease or disorder associated with prostaglandin activity and/or COX2 activity.
[00040] The present invention is illustrated in the following Experimental Details section, which is set forth to aid in the understanding of the invention, and should not be construed to limit in any way the scope of the invention as defined in the claims that follow thereafter.
EXPERIMENTAL DETAILS
A. Preparation of Chemical Compounds
[00041] Compounds were made according to one of 11 generic schemes described below. For each scheme, a specific example with a corresponding experimental description is given. Other compounds made via that same scheme are listed in tabular form beneath the experimental description. The compounds were synthesized at Provid Pharmaceuticals, Inc., North Brunswick NJ.
[00042] General procedures. HPLC was performed on Rainin SD-300 or Varian ProStar equipped with a single wavelength UV detector at 214 nm and linear gradients. Analytical HPLC was performed on a Varian C18 column (microsorb 60-8, 4.6 x 250 mm) at a flow rate of 1 mL/min. Semi-preparative HPLC was performed on a Varian Ci8 column (microsorb 60- 8, 10.0 x 250 mm) at a flow rate of 5 mL/min. Preparative HPLC was routinely performed on a Varian C] 8 column (microsorb 60-8, 21.4 x 250 mm) at a flow rate of 20 mL/min. The solvent system used on linear gradients was water with 0.075% TFA (solvent A) vs
Acetonitrile with 0.075% TFA (solvent B). Silica gel used in flash column chromatography was obtained from Sorbent Technologies (Atlanta, GA). LC-MS spectra were taken on Waters ZQ LC/MS-ESI or APCI.
[00043] Scheme 1:
Generic Scheme:
Scheme 1
CI
Figure imgf000027_0001
Experimental:
Figure imgf000027_0002
[00044] Preparation of amine 1 : To a solution of Boc-l-amino-3, 6-dioxa-8-octane diamine (1 eq.) and benzoyl chloride (1.2 eqs.) in CH2C12 (40 mL) was added TEA (2.5 eqs.). The reaction mixture was stirred overnight. Subsequently, the reaction mixture was partitioned between saturated aqueous NaHC03 and CH2C12, the layers separated, and the aqueous layer extracted with CH2C12 (3x). The combined organics were dried over Na2S04, filtered and concentrated in vacuo. The residue was used without further purification. The obtained residue was dissolved in TFA (20 mL) and stirred at ambient temperature for 1 hour. The reaction mixture was concentrated in vacuo and amine 1 was used without further purification.
Figure imgf000027_0003
[00045] Preparation of triazine 2a: To a solution of cyanuric chloride (1.14 eqs) and aniline (1.0 eq.) in THF (27 mL) was added 'Pr2NEt (3.0 eqs.). The reaction mixture was stirred at ambient temperature for 1 h. The reaction mixture was then partitioned between water and EtOAc, the layers separated, and the aqueous layer was extracted with EtOAc (3x). The combined organics were dried over Na2SO4, filtered and concentrated in vacuo. The residue was used without further purification.
[00046] To a solution of the residue (1.0 eq.) and 4-(lH-tetrazol-5-yl)aniline (1.1 eqs.) in THF (3.0 mL) was added 'Pr2NEt (5.0 eqs.). The reaction mixture was warmed to 50 °C and stirred overnight. The reaction mixture was then cooled to ambient temperature and partitioned between EtOAc and water. The layers were separated and the aqueous extracted with EtOAc (3x). The combined organics were dried over Na2SO4, filtered and concentrated in vacuo. The residue was used without further purification.
[00047] To a solution of the residue (1.0 eq.) and amine 1 (1.1 eqs.) in THF (3.3 mL) was added 'Pr2NEt (2.5 eqs.). Some methanol was added to help solubilize the starting material. The reaction mixture was warmed to 65 °C and stirred overnight. The reaction mixture was then cooled to ambient temperature and partitioned between EtOAc and water. The layers were separated and the aqueous extracted with EtOAc (3x). The combined organics were dried over Na2SO4, filtered and concentrated in vacuo. The obtained residue was purified via reverse phase HPLC to yield triazine 2a (4.3 mg, 2.2% overall yield). MS (LCMS, ESI): Rt = 7.58 mins (>90% pure) m/z = 582 (M+H)+.
[00048] The following compounds were or could be made by the procedure described for triazine 2a:
Figure imgf000029_0001
Figure imgf000029_0002
Figure imgf000030_0002
[00049] Scheme 2: Generic Scheme:
Figure imgf000030_0001
Experimental:
Figure imgf000031_0001
[00050] To a solution of cyanuric chloride (1.14 eqs.) and 'butyl 4-aminobenzoate (1 eq.) in THF (81 mL) was added 'Pr2NEt (1.1 eqs.). The reaction mixture was stirred at ambient temperature for 1 hour. The reaction mixture was partitioned between water and EtOAc. The aqueous layer was extracted with EtOAc (3x), and the combined organics were dried over Na2S04, filtered and concentrated in vacuo. The residue was used without further purification.
[00051] To a solution of the residue (1 eq.) and 5-aminoindazole (1.1 eqs.) in THF (22 mL) was added 'Pr2NEt (3.0 eqs.). The reaction mixture was warmed to 50 °C and stirred overnight. The reaction mixture was cooled to ambient temperature and partitioned between water and EtOAc. The aqueous layer was extracted with EtOAc (3x), and the combined organics were dried over Na2S04, filtered and concentrated in vacuo. The residue was used without further purification.
[00052] To a solution of the residue (1 eq.) and amine 1 (1.1 eqs.) in THF (7.2 mL) was added 'Pr2NEt (3.0 eqs.). The reaction mixture was warmed to 65 °C and stirred overnight. The reaction mixture was then cooled to ambient temperature and partitioned between EtOAc and water. The layers were separated and the aqueous extracted with EtOAc (3x). The combined organics were dried over Na2S04, filtered and concentrated in vacuo. The residue was purified via column chromatography over silica gel (2: l/hexanes:EtOAc ->
95:5/CH2Cl2:MeOH) to yield a residue (0.115 g, 24% overall yield) that was used without further purification.
[00053] The residue (1 eq.) was dissolved in TFA (1.8 mL) and stirred at ambient temperature for 1 hour. The reaction mixture was then concentrated in vacuo and the obtained residue used without any further purification.
[00054] To a mixture of the residue (1 eq.), benzyl amine (1.1 eqs.), EDAC HCl (1.2 eqs.) and anhydrous HOBT (1.2 eqs.) was added DMF (1.0 mL). Subsequently, 'Pr2NEt (10 eqs.) was added to the reaction mixture and the resulting solution stirred overnight. The reaction mixture was concentrated in vacuo and the residue purified via reverse-phase HPLC to yield triazine 3a (9.4 mg, 20% yield over 2 steps). MS (LCMS, ESI): Rt = 7.56 mins (>90% pure) m/z = 687 (M+H)+ .
[00055] The following compounds were or could be made by the procedure described for triazine 3a:
Figure imgf000032_0001
Figure imgf000032_0003
[00056] Scheme 3:
Generic Scheme:
Figure imgf000032_0002
Figure imgf000033_0001
[00057] Preparation of triazine 4a: To a solution of cyanuric chloride (1.14 eqs.) and 4- benzyloxy aniline hydrochloride (1 eq.) in THF (2.7 mL) was added 'Pr2NEt (5.0 eqs.). The reaction mixture was allowed to stir at ambient temperature for 1.0 hour. Subsequently, p- anisidine (1.05 eqs.) was added to the reaction mixture and the reaction stirred overnight at 50 °C. The reaction mixture was cooled to ambient temperature then partitioned between water and EtOAc, the layers separated, and the aqueous layer extracted with EtOAc (3x). The combined organics were dried over Na2S04, filtered and concentrated in vacuo. The residue was used without further purification.
[00058] To a solution of the residue (1 eq.) and amine 1 (1.1 eqs.) in THF (2.4 mL) was added 'Pr2NEt (1.5 eqs.). The reaction mixture was heated to 65 °C and stirred overnight. The reaction mixture was concentrated in vacuo and the residue filtered over a plug of silica gel (CH2C12 - 49: l/CH2Cl2:MeOH). The organics from the 49: l/CH2Cl2:MeOH elution were collected and concentrated in vacuo. The obtained residue was used without further purification. J
[00059] A solution of benzyl ether (1 eq.) in TFA (1.2 mL) and DMS (1.2 mL) was heated to 40 °C and stirred overnight. The reaction mixture was then concentrated in vacuo and the residue purified via reverse phase HPLC to yield triazine 4a (18.0 mg, 13.6% overall yield). MS (LCMS, ESI): Rt = 6.21 mins (>90% pure) m/z = 560 (M+H)+ .
[00060] The following compounds were or could be made by the procedure described for triazine 4a: P
Figure imgf000034_0001
Figure imgf000034_0002
Figure imgf000035_0002
[00061] Scheme 4: Generic Scheme:
[00062] Preparation of amine 5: To a solution of 2-[2-(Boc-amino)ethoxy]ethoxy acetic acid dicyclohexylamine salt (1 eq.) in benzene (8 mL) and MeOH (2 mL) was added
TMSCHN2 (2.0 eqs.). The reaction mixture was stirred for 1.0 h, after which the reaction mixture was concentrated in vacuo. The obtained residue was then treated with saturated methanolic HC1. The resulting reaction mixture was stirred for 1 hour before being concentrated in vacuo. The residue was used without further purification.
Figure imgf000036_0001
[00063] Preparation of triazine product 6a: A solution of cyanuric chloride (1 eq.) in THF (5 mL) was treated with 4-benzyloxyaniline hydrochloride (0.85 eq.) and 'Pr2NEt (2.0 eqs.) with stirring at ambient temperature for 0.5 h. The reaction mixture was poured into 50 mL EtOAc and the organic solution was washed with H20 (2x) and with brine (lx). The organic layer was dried over MgS04, filtered, and concentrated in vacuo. The obtained residue was used without further purification.
[00064] To a solution of the residue (1 eq.) and aniline (1.1 eqs.) in THF (7.2 mL) was added 'Pr2NEt (2.0 eqs.). The reaction mixture was warmed to 50 °C and stirred overnight. The reaction mixture was cooled to ambient temperature and partitioned between water and EtOAc. The aqueous layer was extracted with EtOAc (3x), and the combined organics were dried over Na2S04, filtered and concentrated in vacuo. The residue was used without further purification.
[00065] To a solution of chlorotriazine (1 eq.) and amine 5 (1.1 eqs.) in THF (3.5 mL) was added 'Pr2NEt (3.0 eqs.). Subsequently, CH2C12 (1.0 mL) was added in order to make the reaction homogenous. The reaction mixture was warmed to 65 °C and stirred overnight. The reaction mixture was then cooled to ambient temperature and partitioned between EtOAc and water. The layers were separated and the aqueous extracted with EtOAc (3x). The combined organics were dried over Na2S04, filtered and concentrated in vacuo. The residue was used without further purification.
[00066] To a solution of benzyl ether (1.0 eq.) in TFA (1.1 mL) was added DMS (1.1 mL). The reaction mixture was warmed to 35 °C and stirred overnight. The reaction mixture was concentrated in vacuo and the residue purified via reverse-phase HPLC to yield a residue that was used without further purification.
[00067] A heterogeneous mixture of methyl ester (1.0 eq.) and LiOH (30 eqs.) in THF (0.3 mL), MeOH (0.3 mL) and H20 (0.3 mL) was stirred at ambient temperature overnight. The reaction mixture was then acidified via addition of TFA and the reaction mixture
concentrated in vacuo. The residue was purified via reverse phase HPLC to yield triazine 6a (14.0 mg, 9.6% overall yield). MS (LCMS, ESI): Rt = 5.55 mins (>90% pure) m/z =
441(M+H)+.
[00068] The following compounds were or could be made by the procedure described for triazine 6a:
Figure imgf000037_0001
Figure imgf000037_0002
[00069] Scheme 5:
Generic Scheme:
Scheme 5
Figure imgf000037_0003
Experimental:
Figure imgf000038_0001
[00070] Preparation of amine 7: To a solution of bis(2-hydroxyethyl)ether (1.0 eq) and 'Pr2NEt (4.0 eqs.) in CH2C12 (24 niL) was added MsCl (2.2 eqs.). The reaction mixture was stirred at ambient temperature for 1 h. The reaction mixture was partitioned between water and CH2C12, the layers separated, and the aqueous layer extracted with CH2C12 (3x). The combined organics were dried over Na2S04, filtered and concentrated in vacuo. The residue was used without further purification.
[00071] To a solution of the residue (1.0 eq.) and Nal (0.2 eqs.) in DMF (24 mL) was added NaN3 (2.3 eqs.). The reaction mixture was warmed to 65 °C and stirred overnight. The reaction mixture was cooled to ambient temperature then partitioned between water and ether. The layers were separated and the aqueous extracted with ether (3x). The combined organics were dried over Na2S04, filtered and concentrated in vacuo. The residue was used without further purification.
[00072] To a solution of the residue (1.0 eq.) in THF (0.6 mL), ether (3 mL) and 1.0 M HC1 (3 mL, aqueous) was added PPh3 (1.05 eqs.). The reaction mixture was stirred at ambient temperature for 60 hours. Subsequently, the organics were removed from the reaction mixture in vacuo. Diethyl ether was added and the layers separated and the ethereal layer washed with 4.0 M HC1 in water (50 mL). The combined aqueous layers were extracted with ether (2x) and the aqueous layer basicified to a pH~14 by addition of solid NaOH. The aqueous layer was then extracted with CH2C12 (3x) and the combined dichloromethane layers dried over Na2S04, filtered and concentrated in vacuo. The obtained residue was used without further purification.
[00073] To a solution of the residue (1.0 eq.) and benzoyl chloride (1.1 eqs.) in CH2C12 (20 mL) was added TEA (2.5 eqs.). The reaction mixture was stirred overnight. Subsequently, the reaction mixture was partitioned between saturated aqueous NaHC03 and CH2C12, the layers separated, and the aqueous layer extracted with CH2C12 (3x). The combined organics were dried over Na2S04, filtered and concentrated in vacuo. The residue (0.182 g, 33% crude yield over 4 steps) was used without further purification. [00074] To a solution of the residue (1.0 eq.) in THF (3.2 mL) and H20 (1.0 mL) was added PMe3 (3.0 eqs.). The reaction mixture was stirred for 2 hours. The reaction mixture was concentrated in vacuo and the desired product used without further purification.
Figure imgf000039_0001
[00075] Preparation of triazine 8a: To a solution of cyanuric chloride (1.14 eqs.) and 'butyl 4-aminobenzoate (1.0 eq.) in THF (81 mL) was added 'Pr2NEt (1.1 eqs.). The reaction mixture was stirred at ambient temperature for 1 hour. The reaction mixture was partitioned between water and EtOAc. The aqueous layer was extracted with EtOAc (3x), and the combined organics were dried over Na2S04, filtered and concentrated in vacuo. The residue was used without further purification.
[00076] To a solution of the residue (1.0 eq.) and 4-benzyloxyaniline (1.1 eqs.) in THF (52 mL) was added 'Pr2NEt (3.0 eqs). The reaction mixture was warmed to 50 °C and stirred overnight. The reaction mixture was cooled to ambient temperature and partitioned between water and EtOAc. The aqueous layer was extracted with EtOAc (3x), and the combined organics were dried over Na2S04, filtered and concentrated in vacuo. The residue was used without further purification.
[00077] To a solution of the residue (1.0 eq.) and amine 7 (1.2 eqs.) in THF (1.5 mL) was added 'Pr2NEt (3.0 eqs.). The reaction mixture was warmed to 65 °C and stirred overnight. The reaction mixture was concentrated in vacuo and the residue was purified via column chromatography over silica gel (2:l/hexanes:EtOAc -> 98:2/CH2Cl2:Me0H). The obtained residue (0.024 g, 26 % yield over 3 steps) was used without further purification.
[00078] The residue (1.0 eq.) was dissolved in TFA (1.0 mL) and DMS (1.0 mL). The reaction mixture was warmed to 50 °C and stirred overnight. The reaction mixture was concentrated in vacuo and the residue used without further purification.
[00079] To a mixture of the residue (1.0 eq.), 4-fluorobenzylamine (1.1 eqs.), EDAC HC1 (1.2 eqs.) and anhydrous HOBT (1.2 eqs.) was added DMF (1 mL). Subsequently, 'Pr2NEt (3.0 eqs.) was added to the reaction mixture and the resulting solution stirred overnight. The reaction mixture was then concentrated in vacuo and the residue purified via reverse phase HPLC to yield triazine 8a (2.0 mg, 8.7% over 2 steps). MS (ESI): m/z = 637 (M+H)+;
analytical HPLC (10-90% MeCN in H20, 20 mins, flow rate = 1.0 mL/min.) Rt = 14.61 mins (>92% pure).
[00080] The following compounds were or could be made by the procedure described for triazine 8a:
Figure imgf000041_0001
Figure imgf000041_0002
Figure imgf000042_0001
Figure imgf000043_0001
Figure imgf000044_0001
[00081] Scheme 6: Generic Scheme:
Figure imgf000045_0001
[00082] Preparation of aniline 9: To a solution of methyl 5-amino salicylate (1.0 eq.), in MeOH (10 mL) was added Boc20 (1.1 eqs.) followed by TEA (1.1 eqs.). The reaction mixture was allowed to stir for 1 hour. Subsequently, imidazole (0.5 eqs.) was added and the reaction mixture stirred for 10 mins at ambient temperature. The reaction mixture was concentrated in vacuo and the residue partitioned between CH2C12 and water. The layers were separated and the aqueous extracted with CH2C12 (3x). The combined organics were then washed with 0.1 M HC1 (lx, aqueous), dried over Na2S04, filtered and concentrated in vacuo. The residue was used without further purification.
[00083] To a solution of the residue (1.0 eq.) in DMF (10 mL) was added K2C03 (1.2 eqs.) followed by BnBr (1.1 eqs.). The reaction mixture was heated to 60 °C and stirred overnight. The reaction mixture was concentrated in vacuo and the residue partitioned between CH2C12 and water. The layers were separated and the aqueous extracted with CH2C12 (3x). The combined organics were dried over Na2S04, filtered and concentrated in vacuo. The residue was used without further purification.
[00084] The residue was dissolved EtOAc (3 mL) and concentrated HC1 (3 mL) was added. The reaction mixture was stirred for 1 hour at ambient temperature before the reaction mixture was concentrated in vacuo. The residue was used without further purification.
Figure imgf000046_0001
[00085] To a solution of cyanuric chloride (1.14 eqs.) and 'butyl 4-aminobenzoate (1.0 eq.) in THF (81 mL) was added 'Pr2NEt (1.1 eqs.). The reaction mixture was stirred at ambient temperature for 1 hour. The reaction mixture was partitioned between water and EtOAc. The aqueous layer was extracted with EtOAc (3x), and the combined organics were dried over Na2SO4, filtered and concentrated in vacuo. The residue was used without further purification.
[00086] To a solution of the residue (1.0 eq.) and aniline 9 (1.1 eqs.) in THF (52 mL) was added 'Pr2NEt (3.0 eqs). The reaction mixture was warmed to 50 °C and stirred overnight. The reaction mixture was cooled to ambient temperature and partitioned between water and EtOAc. The aqueous layer was extracted with EtOAc (3x), and the combined organics were dried over Na2SO4, filtered and concentrated in vacuo. The residue was used without further purification.
[00087] To a solution of the residue (1.0 eq.) and amine 1 (1.2 eqs.) in THF (1.5 mL) was added 'Pr2NEt (3.0 eqs.). The reaction mixture was warmed to 65 °C and stirred overnight. The reaction mixture was concentrated in vacuo and the residue was purified via column chromatography over silica gel (2: l/hexanes:EtOAc - 98:2/CH2Cl2:MeOH). The obtained residue (0.1 16 g, 78 % yield over 3 steps) was used without further purification.
[00088] The residue (1.0 eq.) was dissolved in TFA (1.0 mL) and DMS (1.0 mL). The reaction mixture was warmed to 50 °C and stirred overnight. The reaction mixture was concentrated in vacuo and the residue used without further purification.
[00089] To a mixture of the residue (1.0 eq.), 4-fluorobenzylamine (1.1 eqs.), EDAC HCl (1.2 eqs.) and anhydrous HOBT (1.2 eqs.) was added DMF (1 mL). Subsequently, 'Pr2NEt (3.0 eqs.) was added to the reaction mixture and the resulting solution stirred overnight. The reaction mixture was then concentrated in vacuo and the residue purified via reverse phase HPLC to yield triazine 8iii (25.0 mg, 18% yield over 2 steps).
[00090] A heterogeneous mixture of triazine 8iii (1.0 eq.) and LiOH (30 eq.) in THF (0.3 mL), MeOH (0.3 mL) and H2O (0.3 mL) was stirred at ambient temperature overnight. The reaction mixture was then concentrated in vacuo and the residue purified via reverse phase HPLC to yield triazine 10a (13.0 mg, 59% yield):MS (ESI): m/z = 725 (M+H)+; analytical HPLC (10-90% MeCN in H20, 20 mins, flow rate = 1.0 mL/min.) R, = 14.91 mins (>96% pure).
[00091] The following compounds were or could be made by the procedure described for triazine 10a:
Figure imgf000047_0001
Figure imgf000047_0002
[00092] Scheme 7:
Generic Scheme:
Figure imgf000048_0001
[00093] Preparation of amine 11 : To a solution of ethanolamine (1.0 eq.) and imidazole (2.0 eqs.) in CH2C12 (8.0 mL) was added TBSC1 (1.5 eqs.). The reaction mixture was quenched by addition of 1.0 M NaHS04 in water. The layers were separated and the aqueous extracted with CH2C12 (3x). The combined organics were dried over Na2S04, filtered and concentrated in vacuo. The residue was used without further purification.
Figure imgf000048_0002
[00094] Preparation of triazine 12: To a solution of cyanuric chloride (1.14 eqs.) and 'butyl 4-aminobenzoate (1.0 eq.) in THF (81 mL) was added 'Pr2NEt (1.1 eqs.). The reaction mixture was stirred at ambient temperature for 1 hour. The reaction mixture was partitioned between water and EtOAc, the layers separated and the aqueous layer was extracted with EtOAc (3x). The combined organics were dried over Na2S04, filtered and concentrated in vacuo. The residue was used without further purification.
[00095] To a solution of the residue (1.0 eq.) and 4-benzyloxyaniline (1.1 eqs.) in THF (52 mL) was added 'Pr2NEt (3.0 eqs). The reaction mixture was warmed to 50 °C and stirred overnight. The reaction mixture was cooled to ambient temperature and partitioned between water and EtOAc. The aqueous layer was extracted with EtOAc (3x), and the combined organics were dried over Na2SO4, filtered and concentrated in vacuo. The residue was used without further purification. [00096] To a solution of the residue (1.0 eq.) and amine 1 (1.2 eqs.) in THF (1.5 mL) was added 'Pr2NEt (3.0 eqs.). The reaction mixture was warmed to 65 °C and stirred overnight. The reaction mixture was concentrated in vacuo and the residue was purified via column chromatography over silica gel (2: l/hexanes:EtOAc - 98:2/CH2Cl2:MeOH). The obtained residue (0.116 g, 78 % yield over 3 steps) was used without further purification.
[00097] The residue (1.0 eq.) was dissolved in TFA (1.0 mL) and DMS (1.0 mL). The reaction mixture was warmed to 50 °C and stirred overnight. The reaction mixture was concentrated in vacuo and the residue used without further purification.
[00098] To a mixture of the residue (1.0 eq), amine 11 (1.1 eqs.), EDAC HCl (1.2 eqs.) and anhydrous HOBT (1.2 eqs.) was added DMF (1.0 mL). Subsequently, 'Pr2NEt (3.0 eqs.) was added to the reaction mixture and the resulting solution stirred overnight. The reaction mixture was concentrated in vacuo. The residue was dissolved in THF (1.0 mL) and to the solution was added TBAF (1.1 eqs.). The reaction mixture was stirred for 1 hour. The reaction mixture was then concentrated in vacuo and the residue purified via reverse phase HPLC to yield triazine 12 (13.0 mg, 41% yield): MS (LCMS, ESI): Rt = 5.24 mins (>90% pure) m/z = 617(M+H)+.
[00099] Scheme 8:
Generic Scheme:
Figure imgf000049_0001
Figure imgf000050_0001
[000100] A solution of cyanuric chloride (1 eq.) in THF (5 mL) was treated with 4- benzyloxyaniline hydrochloride (0.85 eq.) and 'Pr2NEt (2.0 eqs.) with stirring at ambient temperature for 0.5 h. The reaction mixture was poured into 50 mL EtOAc and the organic solution was washed with H20 (2x) and with brine (lx). The organic layer was dried over MgS04, filtered, and concentrated in vacuo. The obtained residue was used without further purification.
[000101] To a solution of the residue (1.0 eq.) in THF (29 mL) was added 'Pr2NEt (2.0 eqs.) followed by aniline (1.1 eqs.). The reaction mixture was heated to 50 °C and stirred for 4 hours. The reaction mixture was cooled to ambient temperature and partitioned between EtOAc and water. The layers were separated and the aqueous extracted with EtOAc (3x). The combined organics were dried over Na2S04, filtered and concentrated in vacuo. The residue was used without further purification.
[000102] To a solution of the residue (1 eq.) and Boc-l-amino-3, 6-dioxa-8-octanediamine (1.1 eqs.) in THF (29 mL) was added 'Pr2NEt (2.5 eqs.). The reaction mixture was warmed to 65 °C and stirred overnight. The reaction mixture was then cooled to ambient temperature and partitioned between EtOAc and water. The layers were separated and the aqueous extracted with EtOAc (3x). The combined organics were dried over Na2S04, filtered and concentrated in vacuo. The residue was used without further purification.
[000103] To a solution of the residue (1 eq.) in CH2C12 (29 mL) was added TFA (9.5 mL). The reaction mixture was stirred for 1 h after which the reaction mixture was concentrated in vacuo. The residue was used without further purification.
[000104] Preparation of triazine 13a: To a solution of the residue (1 eq.) and 4- methoxybenzoyl chloride (1.1 eqs.) in CH2C12 (1.0 mL) was added 'Pr2NEt (4 eqs.). The reaction mixture was stirred overnight. The reaction mixture was then concentrated in vacuo and the residue used without further purification.
[000105] A solution of the residue (1 eq.) in DMS (0.5 mL) and TFA (0.5 mL) was heated to 40 °C and stirred overnight. The reaction mixture was then concentrated in vacuo and the residue purified via reverse phase FIPLC to yield triazine 13a (6.6 mg, 25% overall yield). MS (LCMS, ESI): Rt = 6.43 mins (>90% pure) m/z = 560 (M+H)+ .
[000106] Preparation of triazine 13b: To a solution of the residue (1 eq.) and
benzenesulfonyl chloride (1.1 eqs.) in CH2C12 (1.0 mL) was added 'Pr2NEt (4 eqs.). The reaction mixture was stirred overnight. The reaction mixture was then concentrated in vacuo and the residue used without further purification.
[000107] A solution of the residue (1 eq.) in DMS (0.5 mL) and TFA (0.5 mL) was heated to 40 °C and stirred overnight. The reaction mixture was then concentrated in vacuo and the residue purified via reverse phase HPLC to yield triazine 13b (5.8 mg, 22% overall yield). MS (LCMS, ESI): Rt = 6.98 mins (>90% pure) m/z = 566 (M+H)+
[000108] Preparation of triazine 13c: To a mixture of the residue (1.0 eq.), a, a, a- trifluoromethyl toluic acid (1.1 eqs.), EDAC-HCl (1.2 eqs.) and anhydrous HOBT (1.2 eqs.) was added DMF (1.0 mL). Subsequently, 'Pr2NEt (10 eqs.) was added to the reaction mixture and the resulting solution stirred overnight. The reaction mixture was concentrated in vacuo and the residue used without further purification.
[000109] A solution of the residue (1 eq.) in DMS (0.5 mL) and TFA (0.5 mL) was heated to 40 °C and stirred overnight. The reaction mixture was then concentrated in vacuo and the residue purified via reverse phase HPLC to yield triazine 13c (11.0 mg, 32% overall yield). MS (LCMS, ESI): Rt = 7.05 mins (>90% pure) m/z = 598 (M+H)+
[000110] The following compounds were or could be made by the procedures described for triazines 13a, 13b or 13c:
Figure imgf000053_0001
Figure imgf000053_0002
Figure imgf000054_0002
[000111] Scheme 9: Generic Scheme:
Figure imgf000054_0001
Figure imgf000055_0001
[000112] Preparation of ester 14: To a solution of 4-(aminomethyl)benzoic acid (1 eq.) in benzene (0.3 mL) and MeOH (0.3 mL) was added TMSCHN2 (1.3 eqs.). The reaction mixture was stirred for 1.0 h, after which the reaction mixture was concentrated in vacuo. Ester 14 was used without further purification.
Figure imgf000055_0002
[000113] Preparation of triazine 15: To a solution of cyanuric chloride (1.14 eqs.) and 'butyl 4-aminobenzoate (1.0 eq.) in THF (81 mL) was added 'Pr2NEt (1.1 eqs.). The reaction mixture was stirred at ambient temperature for 1 hour. The reaction mixture was partitioned between water and EtOAc. The aqueous layer was extracted with EtOAc (3x), and the combined organics were dried over Na2S04, filtered and concentrated in vacuo. The residue was used without further purification.
[000114] To a solution of the residue (1.0 eq.) and 4-benzyloxyaniline-HCl (1.1 eqs.) in THF (52 mL) was added 'Pr2NEt (3.0 eqs). The reaction mixture was warmed to 50 °C and stirred overnight. The reaction mixture was cooled to ambient temperature and partitioned between water and EtOAc. The aqueous layer was extracted with EtOAc (3x), and the combined organics were dried over Na2S04, filtered and concentrated in vacuo. The residue was used without further purification.
[000115] To a solution of the residue (1.0 eq.) and amine 1 (1.2 eqs.) in THF (1.5 mL) was added 'Pr2NEt (3.0 eqs.). The reaction mixture was warmed to 65 °C and stirred overnight. The reaction mixture was concentrated in vacuo and the residue was purified via column chromatography over silica gel (2:l/hexanes:EtOAc - 98:2/CH2Cl2:MeOH). The obtained residue (0.116 g, 78 % yield over 3 steps) was used without further purification.
[000116] The residue (1.0 eq.) was dissolved in TFA (1.0 mL) and DMS (1.0 mL). The reaction mixture was warmed to 50 °C and stirred overnight. The reaction mixture was concentrated in vacuo and the residue used without further purification. [000117] To a mixture of the residue (1.0 eq.), amine 14 (1.1 eqs.), EDAC HCl (1.2 eqs.) and anhydrous HOBT (1.2 eqs.) was added DMF (1 mL). Subsequently, 'Pr2NEt (3.0 eqs.) was added to the reaction mixture and the resulting solution stirred overnight. The reaction mixture was then concentrated in vacuo and the used without further purification.
[000118] A heterogeneous mixture of the residue (1 eq.) and LiOH (30 eqs.) in THF (0.3 mL), MeOH (0.3 mL) and H20 (0.3 mL) was stirred at ambient temperature overnight. The reaction mixture was then acidified via addition of TFA and the reaction mixture
concentrated in vacuo. The reaction mixture was concentrated in vacuo and the residue purified via reverse-phase HPLC. The obtained residue was then stirred in methanolic HCl (1.0 mL) overnight. Upon completion, the reaction mixture was concentrated in vacuo to yield triazine 15 (2.0 mg, 6.5% overall yield):MS (ESI): m/z = 721 (M+H)+; analytical HPLC (10-90% MeCN in H20, 20 mins, flow rate = 1.0 mL/min.) Rt = 14.42 mins (>90% pure).
[000119] Scheme 10:
Generic Scheme:
Figure imgf000057_0001
[000120] Preparation of amine 16: To a solution of bis(2-hydroxyethyl)ether (1.0 eqs) and 'Pr2NEt (4.0 eqs.) in CH2C12 (24 mL) was added MsCl (2.2 eqs.). The reaction mixture was stirred at ambient temperature for 1 h. The reaction mixture was partitioned between water and CH2C12, the layers separated, and the aqueous layer extracted with CH2C12 (3x). The combined organics were dried over Na2S04, filtered and concentrated in vacuo. The residue was used without further purification. [000121] To a solution of the residue (1.0 eq.) and Nal (0.2 eqs.) in DMF (24 mL) was added NaN3 (2.3 eqs.). The reaction mixture was warmed to 65 °C and stirred overnight. The reaction mixture was cooled to ambient temperature and partitioned between water and ether. The layers were separated and the aqueous extracted with ether (3x). The combined organics were dried over Na2S04, filtered and concentrated in vacuo. The residue was used without further purification.
[000122] To a solution of the residue (1.0 eq.) in THF (0.6 mL), ether (3 mL) and 1.0 M HC1 (3 mL, aqueous) was added PPh3 (1.05 eqs.). The reaction mixture was stirred at ambient temperature for 60 hours. Subsequently, the organics were removed from the reaction mixture in vacuo. Diethyl ether was added and the layers separated and the ethereal layer washed with 4.0 M HC1 in water (50 mL). The combined aqueous layers were extracted with ether (2x) and the aqueous layer basicified to a pH~14 by addition of solid NaOH. The aqueous layer was then extracted with CH2C12 (3x) and the combined dichloromethane layers dried over Na2S04, filtered and concentrated in vacuo. The obtained residue was used without further purification.
[000123] A solution of the residue (1.0 eq.) and Boc20 (1.1 eqs.) in CH2C12 (70 mL) was added TEA (2.0 eqs.). The reaction mixture was stirred at ambient temperature for 2.0 hours. The reaction mixture was concentrated in vacuo. The residue was filtered over a plug of silica gel (2: l/hex:EtOAc) and the obtained residue (1.27 g, 38%) used with any further purification.
[000124] To a biphasic solution of the residue (1.0 eq.) in THF (23 mL) and water (6.6 mL) was added PMe3 (5.0 eqs.). The reaction mixture was stirred for 2 hours. Subsequently, the reaction mixture was concentrated in vacuo and the residue dissolved in CH2C12 (53 mL). To the reaction mixture was added trifluoroacetic anhydride (1.2 eqs.) followed by TEA (2.0 eqs.). The reaction mixture was stirred at ambient temperature overnight. The mixture was then partitioned between water and CH2C12, the layers separated and the aqueous extracted with CH2C12 (3x). The combined organics were dried over Na2S04, filtered and concentrated in vacuo. The residue was used without any further purification.
[000125] To a solution of the residue (1.0 eq.) in EtOAc (40 mL) was added concentrated HC1 (13.6 mL). The reaction mixture was stirred at ambient temperature for 1 hour. The reaction mixture was then concentrated in vacuo and the obtained amine 16 was used without any further purification.
Figure imgf000059_0001
[000126] Preparation of triazines 17a, 17b and 17c: To a solution of cyanuric chloride (1.14 eqs.) and 'butyl 4-amino benzoate (1.0 eq.) in THF (51 mL) was added 'Pr2NEt (2.0 eqs.). The reaction mixture was stirred at ambient temperature for 1 hour. To the solution was then added 4-benzyloxy aniline hydrochloride (1.3 eqs.) and 'Pr2NEt (2.0 eqs.). The reaction mixture was warmed to 50 °C and stirred overnight. The reaction mixture was then cooled to ambient temperature and partitioned between EtOAc and water. The layers were separated and the aqueous extracted with EtOAc (3x). The combined organics were dried over Na2SO4, filtered and concentrated in vacuo. The residue was used without further purification.
[000127] To a solution of the residue (1.0 eq.) and amine 16 (1.07 eqs.) in THF (51 mL) was added 'Pr2NEt (6.0 eqs.). The reaction mixture was warmed to 65 °C and stirred overnight. The reaction mixture was concentrated in vacuo and the residue filtered over a plug of silica gel (2: l/hexanes:EtOAc - 98:2/CH2Cl2:MeOH). The organics from the 98:2/CH2Cl2:MeOH were collected and concentrated in vacuo. The obtained residue (1.69 g, 49% crude yield) was used without further purification.
[000128] The obtained residue (1.0 eq.) was dissolved in TFA (10 mL) and the solution was stirred for 1 hour at ambient temperature. The reaction mixture was concentrated in vacuo and the residue dissolved in DMF (25 mL). To the reaction mixture was added benzylamine (1.1 eqs.), EDAC HCl (1.2 eqs.) and anhydrous HOBT (1.2 eqs.). Subsequently, 'Pr2NEt (5.0 eqs.) was added to the reaction mixture and the resulting solution stirred overnight. The reaction mixture was concentrated in vacuo and the residue used without further purification.
[000129] To a solution of the residue (1.0 eq.) in MeOH (22 mL) and water (4.0 mL) was added K2C03 (5.0 eqs.). The heterogeneous mixture was heated to 45 °C and stirred vigorously overnight. Subsequently, the reaction mixture was concentrated in vacuo and the residue used without further purification.
[000130] For 17a: To a mixture of the residue (1.0 eq.) and 4-fluorobenzoyl chloride (1.1 eqs) was added DMF (1.0 mL) followed by 'Pr2NEt (2.0 eqs.). The reaction mixture was stirred overnight. Subsequently, the reaction mixture was concentrated in vacuo and the residue used without further purification. The residue (1.0 eq.) was dissolved in TFA (1 mL) and DMS (1 mL) and the obtained reaction mixture was warmed to 40 °C and stirred overnight. The reaction mixture was then concentrated in vacuo and the residue purified via reverse phase HPLC to yield triazine 17a (3.0 mg, 9.0% overall yield). MS (ESI): m/z = 637 (M+H)+; analytical HPLC (10-90% MeCN in H20, 20 mins, flow rate = 1.0 mL/min.) Rt = 14.57 mins (>90% pure).
[000131] For 17b: To a mixture of the residue (1.0 eq.), a, a, a-trifluoromethyl toluic acid (1.1 eqs.), EDAC HCl (1.2 eqs.) and anhydrous HOBT (1.2 eqs.) was added DMF (1.0 mL). Subsequently, 'Pr2NEt (2.0 eqs.) was added to the reaction mixture and the resulting solution stirred overnight. The reaction mixture was concentrated in vacuo and the residue used without further purification. The residue (1.0 eq.) was dissolved in TFA (1 mL) and DMS (1 mL) and the obtained reaction mixture was warmed to 40 °C and stirred overnight. The reaction mixture was then concentrated in vacuo and the residue purified via reverse phase HPLC to yield triazine 17b (3.4 mg, 10.7% overall yield). MS (ESI): m/z = 687 (M+H)+; analytical HPLC (10-90% MeCN in H20, 20 mins, flow rate = 1.0 mL/min.) Rt = 14.83 mins (>90% pure).
[000132] For 17c: To a solution of the residue (1.0 eq.) in DCE/EtOH (2 mL, l :l/v:v) was added benzaldehyde (1.2 eqs.) and AcOH (3 drops). The reaction mixture was stirred for 1 hour before sodium trisacetoxy borohydride (5.0 eqs.) was added. The reaction mixture was concentrated in vacuo and the residue used without further purification. The residue (1.0 eq.) was dissolved in TFA (1 mL) and DMS (1 mL) and the obtained reaction mixture was warmed to 40 °C and stirred overnight. The reaction mixture was then concentrated in vacuo and the residue purified via reverse phase HPLC to yield triazine 17c (2.4 mg, 8.0% overall yield). MS (ESI): m/z = 605 (M+H)+; analytical HPLC (10-90% MeCN in H20, 20 mins, flow rate = 1.0 mL/min.) R, = 12.85 mins (90% pure).
[000133] The following compounds were or could be made by the procedure described for triazines 17a, 17b or 17c:
Figure imgf000061_0001
Figure imgf000061_0002
[000134] Scheme 11 :
Generic Scheme:
Figure imgf000062_0001
[000135] To a solution of cyanuric chloride (1.14 eqs.) and methyl 4-amino benzoate (1.0 eq.) in THF (3.0 mL) was added 'Pr2NEt (4.0 eqs.). The reaction mixture was stirred at ambient temperature for 1 hour. To the solution was then added 4-[(N- Boc)aminomethyl] aniline (1.3 eqs.) and the reaction mixture warmed to 50 °C and stirred overnight. The reaction mixture was then cooled and partitioned between EtOAc and water. The layers were separated and the aqueous extracted with EtOAc (3x). The combined organics were dried over Na2S04, filtered and concentrated in vacuo. The residue was used without further purification.
[000136] To a solution of the residue (1.0 eq.) and 4-benzyloxy aniline hydrochloride (2.0 eqs.) in THF (3.5 mL) was added 'Pr2NEt (4.0 eqs). The reaction mixture was warmed to 65 °C and stirred overnight. The reaction mixture was concentrated in vacuo and the residue filtered over a plug of silica gel (2: l/hexanes:EtOAc 98:2/CH2Cl2:MeOH). The organics collected from the 98:2/CH2Cl2:MeOH elution were concentrated in vacuo and the obtained residue was used without further purification. [000137] A heterogeneous mixture of the residue (1.0 eq.) and LiOH (30 eqs.) in THF (1.0 niL), MeOH (1.0 mL) and H20 (1.0 mL) was stirred at ambient temperature overnight. The reaction mixture was concentrated in vacuo and the residue dissolved in DMF (3.0 mL). To the solution was added 4-fluorobenzylamine (1.1 eqs.), EDAC HCl (1.2 eqs.) and anhydrous HOBT (1.2 eqs.). Subsequently, 'Pr2NEt (4.0 eqs.) was added to the reaction mixture and the resulting solution stirred overnight. The reaction mixture was concentrated in vacuo and the residue used without further purification.
[000138] The residue (1.0 eq.) was dissolved in TFA (3.5 mL) and the reaction mixture stirred at ambient temperature for 1 hour. The reaction mixture was concentrated in vacuo and the residue used without further purification.
[000139] To a solution of the residue (1.0 eq.) in DCE:EtOH (1.5 mL: 1.5 mL) was added benzylaldehyde (1.2 eqs.). The reaction mixture was stirred at ambient temperature for 1 hour before sodium trisacetoxy borohydride (5.0 eqs.) was added. The reaction mixture was allowed to stir an additional 3 hours at ambient temperature before being concentrated in vacuo. The residue was then dissolved in TFA (1.5 mL) and DMS (1.5 mL) and stirred at 45 °C overnight. . The reaction mixture was then concentrated in vacuo and the residue purified via reverse phase HPLC to yield triazine 18 (5.2 mg, 2.4% overall yield). MS (ESI): m/z = 641 (M+H)+; analytical HPLC (10-90% MeCN in H20, 20 mins, flow rate = 1.0 niL/min.) Rt = 14.33 mins (95% pure).
B. Inhibitory Properties of Compounds
[000140] MDCK cells stably transfected with rat PGT (Endo et al., 2002) were seeded at 15-20% confluence on 24-well plates. The day on which the cells were seeded was considered day 1. PGE2 uptake experiments were conducted on day 4. All of the PGE2 uptake experiments were conducted at room temperature. On day 4, cells were washed twice with Waymouth buffer (135 mM NaCl, 13 mM H-Hepes, 13 mM Na-Hepes, 2.5 mM CaCl2, 1.2 niM MgCl2, 0.8 mM MgS04, 5 mM KC1, and 28 mM D-glucose). Then 200 of
Waymouth buffer containing [3H]PGE2 (purchased from Perkin Elmer) was added to each well. At the designed time, the uptake of [3H]PGE2 was stopped by aspiration of uptake buffer; this was followed by immediate washing twice with 500 of chilled Waymouth buffer. Cells were then lysed with 100 xL lysis buffer containing 0.25% SDS and 0.05 N NaOH. 1.5 mL of scintillation solution was added to each well, and intracellular [3H]PGE2 was counted by MicroBeta Counter. [000141] For preliminary testing of the compounds, 20 μΐ, of Waymouth buffer containing the compound was added to each well; this was immediately followed by the addition of 180 μΐ, of Waymouth buffer containing [3H]PGE2. In each well, the total volume of uptake medium was 200 iL. Organic compounds were first dissolved in EtOH and then diluted in Waymouth buffer. The percent inhibition of [ H]PGE2 uptake by compounds was calculated as [(uptakevehicie - uptakeinhibitor) ÷ (uptakevehicie)] x 100.
[000142] To determine IC50 of each compound, 20 μί, of Waymouth buffer containing various concentrations of the compound was added to each well; this was immediately followed by the addition of 180 \iL of Waymouth buffer containing [3H]PGE2. IC50 was calculated by fitting an equation of y = ml - ml *(m0/(m2+m0)).
[000143] Results for the compounds are presented in Table 1, Inhibitory Activities of PGT Inhibitors. Abbreviations: Bn = benzyl (-CH2Ph), Bz = benzoyl (-(C=0)Ph), Me = methyl (-CH3), Ph = phenyl.
Figure imgf000065_0001
Figure imgf000066_0001
Figure imgf000067_0001
Figure imgf000068_0001
Figure imgf000069_0001
Figure imgf000070_0001
Figure imgf000071_0001
Figure imgf000072_0001
Figure imgf000073_0001
Figure imgf000074_0001
Figure imgf000075_0001
Figure imgf000076_0001
Figure imgf000077_0001
Figure imgf000078_0001
Figure imgf000079_0001
Figure imgf000080_0001
Figure imgf000081_0001
Figure imgf000082_0001
Figure imgf000083_0001
Figure imgf000084_0001
Figure imgf000085_0001
Figure imgf000086_0001
Figure imgf000087_0001
Figure imgf000088_0001
Figure imgf000090_0001
Figure imgf000091_0001
Figure imgf000092_0001
Figure imgf000093_0001
Figure imgf000094_0001
Figure imgf000095_0001
C. Acceleration of Wound Healing by Inhibitors of Prostaglandin Transporter (PGT)
[000144] Studies were conducted using compound T26A (Table 1). Two full-thickness wounds with diameter of 5 mm were created on the back of mice symmetrically under the shoulder blades. 50 μΐ. vehicle (2% DMSO + 2% cremophor in water) was applied to one wound (Figure 1 A, top panel), and that of 2 mM T26A was applied to the other (Figure 1 A, bottom panel), immediately after surgery and every other day afterwards. T26A accelerates wound healing as shown over a 10 day period in Figure 1 A. T26A increased vascularization and blood flow in the wound. Figure IB shows averaged wound areas of 4 mice, each of them had 2 wounds and received topically applied vehicle Vehl (2% DMSO + 2% cremophor in water) on one wound and T26A on the other. On the wounds of a separate group of 4 mice, vehicle Veh2 (2% EtOH, yellow) was applied to one wound and 200 μΜ PGE2 (green) was applied to the other. Results were statistically significant (p < 0.05, T26A vs. vehicle).
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Claims

What is claimed is: A compound having the structure:
Figure imgf000100_0001
wherein
W is O or NR5;
Rl is H, -CH3, -(CH2)2OH,
Figure imgf000100_0002
-(CH2)5CH3, -(CH2)6C02H, -(CH2)6C02CH3, -(CH2)dNHCO-Ph,
Figure imgf000101_0001
R6 is O or NR9;
R7 is H, -CH3, -C(CH3)3, -CH2OH, -(CH2)2OH, -(CH2)20(CH2)2OH, -(CH2CH20)3CH3, -(CH2CH20)2CH2C02CH3, -(CH2)5CH3,
Figure imgf000101_0002
R8 is H, -OH, -CH2OH, -C02H, -C02CH2CH3, -CO(CH2)6CH3, -OCH3, -NH2,
Figure imgf000102_0001
R9 is H or -CH3;
RIO is -CH2NH2, -C02H or -C02CH3;
Rl 1 is -S02-Ph, -CH2-Ph, -CONH-Ph, -COCH3,
Figure imgf000102_0002
where XI, X2, X3, X4, X5, X6 and X7 are independently H, halogen, -OH, -CH3, -CF3, -OCH3, -C02H, -CO2CH3, -CH2C02H, -CH2C02CH3, phenyl or -O-Bn; and where a = 0-2; b = 1-6; c = 0-1 ; d = 4-7; and e = 0-1; . or a pharmaceutically acceptable salt thereof.
2. The compound of Claim 1, wherein W is NR5.
3. The compound of Claim 1 or 2, wherein R6 is NR9
4. The compound of any of Claims 1-3, wherein at least one of 4, R5 and R9 is H.
5. The compound of any of Claims 1-3, wherein all of R4, R5 and R9 are H.
6. The compound of any of Claims 1-5, wherein R8 is located in para position.
7. The compound of any of Claims 1-6, wherein one of XI and X2 is H, and the other is halogen, -CF3, -CH3, -C02H, -C02CH3, -OCH3 or phenyl.
8. The compound of any of Claims 1-6, wherein both XI and X2 are halogen.
9. The compound of any of Claims 1-8, wherein one of X3 and X4 is H, and the other is halogen, -C02H, -C02CH3, -CH2C02H, -CH2C02CH3, -OH, -OCH3 or -O-Bn.
10. The compound of any of Claims 1-8, wherein one of X3 and X4 is -OH, and the other is halogen, -C02H or -C02CH3.
11. The compound of any of Claims 1-10, wherein one of X5 and X6 is H, and the other is halogen, -CF3, -OCH3 or phenyl.
12. The compound of any of Claims 1-10, wherein both X5 and X6 are halogen.
13. The compound of any of Claims 1-12, wherein X7 is H, -CF3 or - OCH3.
14. The compound of any of Claims 1-13, wherein one or both of XI and X2 are located in ortho position.
15. The compound of any of Claims 1-13, wherein one or both of XI and X2 are located in meta position.
16. The compound of any of Claims 1-13, wherein XI is located in meta position and X2 is located in para position.
17. The compound of any of Claims 1-13, wherein XI is located in ortho position and X2 is located in para position.
18. The compound of any of Claim 1-17, wherein X3 is in meta position and X4 is in para position.
19. The compound of any of Claims 1-18, wherein X5 or X6 is in meta position.
20. The compound of any of Claims 1-19, wherein X5 or X6 is in para position.
21. The compound of any of Claims 1 -20 having the structure:
Figure imgf000104_0001
or a pharmaceutically acceptable salt thereof.
The compound of any of Claims 1-20 havin the structure:
Figure imgf000104_0002
or or a pharmaceutically acceptable salt thereof.
The compound of any of Claims 1-20 having the structure:
Figure imgf000105_0001
or a pharmaceutically acceptable salt thereof.
The compound of Claim 1, wherein
Figure imgf000105_0002
where XI, X2, X3, X4, X5 and X6 are independently H, halogen, -OH, -CH3, -CF3, -OCH3, -C02H, -C02CH3, -CH2C02H or -CH2C02CH3; and where a = 1-2; and b = 1-5; or a pharmaceutically acceptable salt thereof.
25. The compound of Claim 1 , wherein
Figure imgf000106_0001
where XI is H or halogen;
where X4 is H, halogen or -C02H; and
where X5 is H, halogen or -OCH3; or a pharmaceutically acceptable salt thereof.
26. The compound of any of Claims 1-25, where R5 is H.
27. The compound of Claim 1 having the structure:
Figure imgf000107_0001
or a pharmaceutically acceptable salt thereof.
28. The compound of Claim 1 , wherein W-Rl is replaced with halogen.
29. The compound of any of Claims 1-28, wherein the halogen is Br, CI or F.
30. A compound having the structure:
Figure imgf000107_0002
Figure imgf000108_0001
Figure imgf000109_0001
Figure imgf000110_0001
Figure imgf000111_0001
Figure imgf000112_0001
Figure imgf000113_0001
Figure imgf000114_0001
Figure imgf000115_0001
Figure imgf000116_0001
Figure imgf000117_0001
pharmaceutically acceptable salt thereof.
The compound of Claim 1 having the structure:
Figure imgf000117_0002
Figure imgf000118_0001
Figure imgf000119_0001
or a pharmaceutically acceptable salt thereof.
32. A pharmaceutical composition comprising the compound of any of Claims 1-31 and a pharmaceutically acceptable carrier.
33. A method of inhibiting prostaglandin transporter (PGT) activity in a subject comprising administering the compound of any of Claims 1-31 to the subject in an amount effective to inhibit PGT activity.
34. A method of inhibiting cyclooxygenase 2 (COX2) activity in a subject comprising administering the compound of any of Claims 1-31 to the subject in an amount effective to inhibit COX2 activity.
35. A method of treating a disease or disorder in a subject associated with prostaglandin activity and/or COX2 activity comprising administering the compound of any of Claims 1-31 to the subject in an amount effective to inhibit prostaglandin transporter (PGT) activity and/or COX2 activity.
36. The method of any of Claims 33-35, wherein the subject has a disease or disorder
selected from the group consisting of arthritis, fever, common cold, hypertension, glaucoma, a wound, initiation of labor, dysmenorrhea, menstrual cramps, inflammatory bowel disease, Crohn's disease, emphysema, acute respiratory distress syndrome, asthma, bronchitis, chronic obstructive pulmonary disease, Alzheimer's disease, organ transplant toxicity, cachexia, allergic reactions, allergic contact hypersensitivity, cancer, tissue ulceration, peptic ulcers, gastritis, regional enteritis, ulcerative colitis, diverticulitis, recurrent gastrointestinal lesion, gastrointestinal bleeding, coagulation, anemia, synovitis, gout, ankylosing spondylitis, inflammation, restenosis, periodontal disease, epidermolysis bullosa, osteoporosis, loosening of artificial joint implants, atherosclerosis, aortic aneurysm, periarteritis nodosa, congestive heart failure, myocardial infarction, stroke, cerebral ischemia, head trauma, spinal cord injury, neuralgia, neuro-degenerative disorders, autoimmune disorders, Huntington's disease, Parkinson's disease, migraine, depression, peripheral neuropathy, pain, gingivitis, cerebral amyloid angiopathy, nootropic or cognition enhancement, amyotrophic lateral sclerosis, multiple sclerosis, ocular angiogenesis, corneal injury, macular degeneration, conjunctivitis, abnormal wound healing, muscle or joint sprains or strains, tendonitis, skin disorders, myasthenia gravis, polymyositis, myositis, bursitis, burns, diabetes, tumor invasion, tumor growth, tumor metastasis, corneal scarring, scleritis, immunodeficiency diseases, sepsis, premature labor, hyporothrombinemia, hemophilia, thyroiditis, sarcoidosis, Behcet's syndrome, hypersensitivity, kidney disease, rickettsial infections, protozoan diseases, reproductive disorders and septic shock. The method of any of Claims 33-35, wherein the subject has a disease or disorder selected from the group consisting of cardiovascular disease, inflammation, pain, and wound.
38. The method of Claim 37, wherein the cardiovascular disease is hypertension or atherosclerosis.
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