| Literature DB >> 31939313 |
Aurélie Hurtevent1, Morgan Le Naour1, Veronique Leclerc1, Pascal Carato2, Patricia Melnyk1, Nathalie Hennuyer3, Bart Staels3, Monique Beucher-Gaudin4, Daniel-Henri Caignard5, Catherine Dacquet4, Nicolas Lebegue1.
Abstract
A series of nitrogen heterocycles containing α-ethoxyphenylEntities:
Keywords: PPAR; SPPARγM; Type 2 diabetes; benzothiazol-2-one; body weight gain
Mesh:
Substances:
Year: 2020 PMID: 31939313 PMCID: PMC7006651 DOI: 10.1080/14756366.2020.1713771
Source DB: PubMed Journal: J Enzyme Inhib Med Chem ISSN: 1475-6366 Impact factor: 5.051
Figure 1.Design of α–alkoxyphenylpropionic acid derivatives bearing various central nitrogen heterocycles.
Scheme 1.Synthesis of 5-benzoyl-3,3-difluoro-1,3-dihydro-2H-indol-2-one 11. Reagents and conditions: (a) DAST, DCM, r.t.; (b) i: i-PrMgCl, n-BuLi, dry THF, 0 °C; ii: benzaldehyde, −78 °C; (c) Dess-Martin periodinane, DCM, r.t.
Scheme 2.Synthesis of optically pure α–alkoxyphenylpropionic acids 21, 22. Reagents and conditions: (a) ethanol or trifluoroethanol [Rh(OAc)2]2,toluene, reflux; (b) 1,2-bromo-chloroethane, K2CO3, CH3CN, reflux; (c) NaH, dry THF, 0 °C to r.t.; (d) H2, Pd/C, ethanol, r.t.; (e) LiOH, THF/H2O, r.t.; (f) 1-ethyl-3–(3-dimethylaminopropyl)-carbodiimide hydrochloride, triethylamine, HOBT, (S)-(-)-2-phenylglycinol, DCM, 0 °C to r.t.; (g) 5 M H2SO4, dioxane/H2O, reflux.
Scheme 3.Synthesis of PPAR agonists 31–38. Reagents and conditions: (a) K2CO3, DMF, 120 °C; (b) LiOH, THF/H2O, r.t.
Scheme 4.Synthesis of optically pure and oxime derived PPAR agonists 39–46. Reagents and conditions: (a) K2CO3, 17a or 17 b, DMF, 120 °C; (b) LiOH, THF/H2O, r.t; (c) hydroxylamine hydrochloride or O-methylhydroxylamine hydrochloride, pyridine, reflux; (d) NaH, 21a,b or 22a,b, HMPA, r.t.
In vitro profile of compounds 31–38 on PPARγ affinity and PPARα/γ transactivation.
| Cmpd | X | n | Posa | hPPAR gene reporter | ||||
|---|---|---|---|---|---|---|---|---|
| αGal4 (%)c | αEC50 (nM)d | γGal4 (%)c | γEC50 (nM)d | |||||
| S | 0 | 5 | 8 | 81 | 256 | 145 | 61 | |
| S | 0 | 6 | 4 | 100 | 2400 | 89 | 15 | |
| S | 1 | 6 | 220 | 19 | 10000 | 69 | 219 | |
| S | 1 | 7 | 4 | 116 | 2050 | 97 | 37 | |
| O | 1 | 6 | 3 | 97 | 10,000 | 119 | 2 | |
| O | 1 | 7 | 1 | 80 | 10,000 | 113 | 80 | |
| CH2 | 0 | 5 | 6.5 | 100 | 10,000 | 60 | 40 | |
| CF2 | 0 | 5 | 4 | 89 | 10,000 | 75 | 5 | |
| 8 | 28 | 10,000 | 100 | 4 | ||||
| 2 | 84 | 595 | 128 | 3 | ||||
| / | 100 | 10,000 | N.A. | N.A. | ||||
Pos: position of the benzoyl substitution on the heterocycle.
hPPARγ binding affinity: Ki values were calculated according to the equation Ki = IC50/(1 + [L]/Kd), where IC50 is the concentration of test compound required to inhibit 50% of the specific binding of the radioligand, [L] is the concentration of the radioligand used, and Kd is the dissociation constant for the radioligand at the PPARγ receptor.
Efficiency: Emax was the maximal PPAR fold activation relative to maximum activation obtained with WY14643 (10 µM) and rosiglitazone (1 μM) corresponded to 100% in GAL4 chimeric hPPARα and hPPARγ system.
EC50: Concentration required to induce 50% maximum activity of tested compound.
Rosiglitazone.
Muraglitazar.
NA: not active.
In vitro profile of compounds 32, 39–46 on PPARγ affinity and PPARα/γ transactivation.
| Cmpd | X | R | Stereo | hPPAR gene reporter | ||||
|---|---|---|---|---|---|---|---|---|
| αGal4 (%)c | αEC50 (nM)d | γGal4 (%)c | γEC50 (nM)d | |||||
| O | CH3 | 4 | 100 | 2400 | 89 | 15 | ||
| NOH | CH3 | 2 | 129 | 10,000 | 91 | 24 | ||
| NOH | CF3 | 165 | 29 | 10,000 | 44 | 10 | ||
| NOCH3 | CH3 | 4 | 159 | 129 | 87 | 2 | ||
| NOCH3 | CF3 | 1.3 | 56 | 180 | 95 | 7 | ||
| O | CH3 | 0.5 | 166 | 522 | 142 | 8 | ||
| O | CH3 | 70 | 0 | 10,000 | 39 | 300 | ||
| NOH | CH3 | 0.5 | 153 | 10,000 | 123 | 16 | ||
| NOCH3 | CH3 | 0.7 | 154 | 32 | 115 | 2 | ||
| NOCH3 | CF3 | 3 | 59 | 525 | 150 | 0.9 | ||
| NOH | CH3 | 210 | 30 | 10,000 | 66 | 799 | ||
| NOCH3 | CH3 | 86 | 124 | 1480 | 87 | 558 | ||
| NOCH3 | CF3 | 33 | 117 | 1665 | 116 | 9 | ||
| 8 | 28 | 10,000 | 100 | 4 | ||||
| 2 | 84 | 595 | 128 | 3 | ||||
| / | 100 | 10,000 | N.A. | N.A. | ||||
Pos: position of the benzoyl substitution on the heterocycle.
Ki values were calculated according to the equation Ki = IC50/(1 + [L]/Kd), where IC50 is the concentration of test compound required to inhibit 50% of the specific binding of the radioligand, [L] is the concentration of the radioligand used, and Kd is the dissociation constant for the radioligand at the PPARγ receptor.
Potency: Emax was the maximal PPAR fold activation relative to maximum activation obtained with WY14643 (10 µM) and rosiglitazone (1 μM) corresponded to 100% in GAL4 chimeric hPPARα and hPPARγ system.
EC50: Concentration required to induce 50% maximum activity of tested compound.
Rosiglitazone.
Muraglitazar.
NA: not active.
Figure 2.Predicted binding mode of (A) ( (pink) and ( (cyan) and (C) ( (pink) and ( (cyan) enantiomers with PPARγ LBD (PDB id 1I7I). Key amino acid side chains are shown in white stick format and are labelled and hydrogen bonds are shown in red dotted lines. Overlapping and molecular surface maps of (B) ( (pink) and ( (cyan) and (D) ( (pink) and ( (cyan) enantiomers with PPARγ LBD (PDB id 1I7I). The protein and key amino acid side chains are shown in white rounded ribbon and white stick format, respectively. The molecular surface maps are shown in grey.
In vivo efficacy of compounds 39a,b, 40a,b, 43a, 44a,b, 45a in ob/ob mice animal models.
| Change | (%)a | |||
|---|---|---|---|---|
| Cmpd | TGb | Glyc | Insd | ΔBWe |
| −69 | −49 | −34 | −10 | |
| −30 | −18 | 10 | 75 | |
| −83 | −58 | −76 | 188 | |
| −54 | −37 | −55 | −70 | |
| −33 | −55 | −29 | 113 | |
| −79 | −46 | −81 | 177 | |
| −69 | −36 | −89 | −17 | |
| 21 | −7 | 51 | 328 | |
| −46 | −57 | −73 | 100 | |
| −34 | −46 | −46 | 206 |
aPercent change versus control for ob/ob mice at day 4.
bTriglycerides.
cGlycemia.
dInsulin.
eBody weight variation between day 0 and day 4 are expressed in% of rosiglitazone in the same study.
fRosiglitazone.
gMuraglitazar.