Structure of 35237-37-7
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The BI-3802 was designed by Boehringer Ingelheim and could be obtained free of charge through the Boehringer Ingelheim open innovation portal opnMe.com, associated with its negative control.
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| CAS No. : | 35237-37-7 |
| Formula : | C12H25NO2 |
| M.W : | 215.33 |
| SMILES Code : | CCCCCCCCCCC(N)C(O)=O |
| MDL No. : | MFCD00020390 |
| InChI Key : | QUBNFZFTFXTLKH-UHFFFAOYSA-N |
| Pubchem ID : | 307925 |
| GHS Pictogram: |
|
| Signal Word: | Warning |
| Hazard Statements: | H315-H319-H335 |
| Precautionary Statements: | P261-P305+P351+P338 |
| Num. heavy atoms | 15 |
| Num. arom. heavy atoms | 0 |
| Fraction Csp3 | 0.92 |
| Num. rotatable bonds | 10 |
| Num. H-bond acceptors | 3.0 |
| Num. H-bond donors | 2.0 |
| Molar Refractivity | 64.28 |
| TPSA ? Topological Polar Surface Area: Calculated from |
63.32 Ų |
| Log Po/w (iLOGP)? iLOGP: in-house physics-based method implemented from |
2.65 |
| Log Po/w (XLOGP3)? XLOGP3: Atomistic and knowledge-based method calculated by |
1.71 |
| Log Po/w (WLOGP)? WLOGP: Atomistic method implemented from |
2.93 |
| Log Po/w (MLOGP)? MLOGP: Topological method implemented from |
0.06 |
| Log Po/w (SILICOS-IT)? SILICOS-IT: Hybrid fragmental/topological method calculated by |
2.54 |
| Consensus Log Po/w? Consensus Log Po/w: Average of all five predictions |
1.98 |
| Log S (ESOL):? ESOL: Topological method implemented from |
-1.59 |
| Solubility | 5.5 mg/ml ; 0.0256 mol/l |
| Class? Solubility class: Log S scale |
Very soluble |
| Log S (Ali)? Ali: Topological method implemented from |
-2.66 |
| Solubility | 0.476 mg/ml ; 0.00221 mol/l |
| Class? Solubility class: Log S scale |
Soluble |
| Log S (SILICOS-IT)? SILICOS-IT: Fragmental method calculated by |
-2.98 |
| Solubility | 0.225 mg/ml ; 0.00104 mol/l |
| Class? Solubility class: Log S scale |
Soluble |
| GI absorption? Gatrointestinal absorption: according to the white of the BOILED-Egg |
High |
| BBB permeant? BBB permeation: according to the yolk of the BOILED-Egg |
Yes |
| P-gp substrate? P-glycoprotein substrate: SVM model built on 1033 molecules (training set) |
No |
| CYP1A2 inhibitor? Cytochrome P450 1A2 inhibitor: SVM model built on 9145 molecules (training set) |
No |
| CYP2C19 inhibitor? Cytochrome P450 2C19 inhibitor: SVM model built on 9272 molecules (training set) |
No |
| CYP2C9 inhibitor? Cytochrome P450 2C9 inhibitor: SVM model built on 5940 molecules (training set) |
No |
| CYP2D6 inhibitor? Cytochrome P450 2D6 inhibitor: SVM model built on 3664 molecules (training set) |
No |
| CYP3A4 inhibitor? Cytochrome P450 3A4 inhibitor: SVM model built on 7518 molecules (training set) |
No |
| Log Kp (skin permeation)? Skin permeation: QSPR model implemented from |
-6.4 cm/s |
| Lipinski? Lipinski (Pfizer) filter: implemented from |
0.0 |
| Ghose? Ghose filter: implemented from |
None |
| Veber? Veber (GSK) filter: implemented from |
0.0 |
| Egan? Egan (Pharmacia) filter: implemented from |
0.0 |
| Muegge? Muegge (Bayer) filter: implemented from |
0.0 |
| Bioavailability Score? Abbott Bioavailability Score: Probability of F > 10% in rat |
0.55 |
| PAINS? Pan Assay Interference Structures: implemented from |
0.0 alert |
| Brenk? Structural Alert: implemented from |
0.0 alert: heavy_metal |
| Leadlikeness? Leadlikeness: implemented from |
No; 1 violation:MW<2.0 |
| Synthetic accessibility? Synthetic accessibility score: from 1 (very easy) to 10 (very difficult) |
2.34 |
* All experimental methods are cited from the reference, please refer to the original source for details. We do not guarantee the accuracy of the content in the reference.

| Yield | Reaction Conditions | Operation in experiment |
|---|---|---|
| 54% | Alkaline conditions; | 2-Aminododecanoic acid was synthesised as described in the literature with 1-bromodecane and diethyl acetoamidomalonate.26 The free amine of 2-aminohexadecanoic acid was then Boc-protected by reaction with di-tert-butyl dicarbonate in a basic environment as previously reported.26,41 C12 was prepared to afford the pure product in 54.0% yield (1.31g): Rf=0.65 (DCM/MeCN/AcOH); ESI-MS (C17H33NO4, 315.2): m/z=316.4 [M+H]+ (calcd 316.2), 338.2 [M+Na]+ (calcd 338.2); 1H NMR: delta=4.94-4.92 (1H, d, J 7.1Hz, OCONH), 4.26 (1H, m, alpha-CH), 1.82-1.67 (2H, m, beta-CH), 1.42 (9H, s, C(CH3)3), 1.23 (16H, br s, 8CH2), 0.86 (3H, t, J 7.0Hz, CH3). |
| Yield | Reaction Conditions | Operation in experiment |
|---|---|---|
| With thionyl chloride; In tert-butyl methyl ether; isopropyl alcohol; | a alpha-Aminolauric acid isopropyl ester 50 ml of isopropanol is stirred at 0 C. under argon and mixed drop by drop with 3.12 ml (41.6 mmol) of thionyl chloride. 30 minutes later, 7.40 g (34.4 mmol) of alpha-aminolauric acid is added in portions, stirred for one hour at room temperature and the batch then is allowed to reflux for two hours. After cooling off to room temperature, the batch is completely concentrated by evaporation, the residue is taken up in tert-butyl methyl ether and shaken out from aqueous sodium carbonate solution. The organic phase is dried on magnesium sulfate, filtered and concentrated by evaporation. Yield: 7.49 g (92.1% of theory) of colorless oil. Analysis: Cld: C 69.09 H 12.01 N 5.75 O 13.15 Fnd: C 69.02 H 12.22 N 5.81. |
| Yield | Reaction Conditions | Operation in experiment |
|---|---|---|
| EXAMPLE 7 12-(1,2-benzisoselenazol-3(2H)-on-2-yl)-dodecanoic acid similar to example 1 from: 11.35 g of o-chloroselenobenzoic acid chloride 10.76 g of aminododecanoic acid Yield: 8.18 g (46.3% of the theory); m.p. 104-105 C. |
| Yield | Reaction Conditions | Operation in experiment |
|---|---|---|
| In ethanol; water; at 20 - 40℃; | General procedure: 1:1 Molar Ratio. TOB-LAA10-11, TOB-LAA12-11, and TOB-LAA14-11, equimolar ion pairs between TOB and the LAA bearing a side alkyl chain of 7, 9, or 11 carbon atoms, respectively (Fig. 1) were prepared by co-evaporation of a co-solution of the two components. TOB base (0.3 mmol) was dissolved in water, while the appropriate LAA (0.3 mmol) was dissolved under magnetic stirring in absolute ethanol. The two solutions were mixed for about 4 h at 40 C and then at overnight room temperature. Ethanol and part of the water were removed under high vacuum at an external temperature of 40 C. Residual water was finally removed by freeze-drying (Edward Modulyo). The resulting fluffy, white powders were stored in tight closed glass vials at 4 +/- 1 C until use.1:3 Molar Ratio. TOB-LAA10-13 and TOB-LAA12-13 were obtained in a similar manner, starting from 0.3 mmol TOB and 0.9 mmol of the chosen LAA.1:5 Molar Ratio. TOB-LAA10-15 and TOB-LAA12-15 were obtained in a similar manner, starting from 0.2 mmol TOB and 1 mmol of the chosen LAA. |
| Yield | Reaction Conditions | Operation in experiment |
|---|---|---|
| In ethanol; water; at 20 - 40℃; | General procedure: 1:1 Molar Ratio. TOB-LAA10-11, TOB-LAA12-11, and TOB-LAA14-11, equimolar ion pairs between TOB and the LAA bearing a side alkyl chain of 7, 9, or 11 carbon atoms, respectively (Fig. 1) were prepared by co-evaporation of a co-solution of the two components. TOB base (0.3 mmol) was dissolved in water, while the appropriate LAA (0.3 mmol) was dissolved under magnetic stirring in absolute ethanol. The two solutions were mixed for about 4 h at 40 C and then at overnight room temperature. Ethanol and part of the water were removed under high vacuum at an external temperature of 40 C. Residual water was finally removed by freeze-drying (Edward Modulyo). The resulting fluffy, white powders were stored in tight closed glass vials at 4 +/- 1 C until use.1:3 Molar Ratio. TOB-LAA10-13 and TOB-LAA12-13 were obtained in a similar manner, starting from 0.3 mmol TOB and 0.9 mmol of the chosen LAA.1:5 Molar Ratio. TOB-LAA10-15 and TOB-LAA12-15 were obtained in a similar manner, starting from 0.2 mmol TOB and 1 mmol of the chosen LAA. |
| Yield | Reaction Conditions | Operation in experiment |
|---|---|---|
| In ethanol; water; at 20 - 40℃; | General procedure: 1:1 Molar Ratio. TOB-LAA10-11, TOB-LAA12-11, and TOB-LAA14-11, equimolar ion pairs between TOB and the LAA bearing a side alkyl chain of 7, 9, or 11 carbon atoms, respectively (Fig. 1) were prepared by co-evaporation of a co-solution of the two components. TOB base (0.3 mmol) was dissolved in water, while the appropriate LAA (0.3 mmol) was dissolved under magnetic stirring in absolute ethanol. The two solutions were mixed for about 4 h at 40 C and then at overnight room temperature. Ethanol and part of the water were removed under high vacuum at an external temperature of 40 C. Residual water was finally removed by freeze-drying (Edward Modulyo). The resulting fluffy, white powders were stored in tight closed glass vials at 4 +/- 1 C until use.1:3 Molar Ratio. TOB-LAA10-13 and TOB-LAA12-13 were obtained in a similar manner, starting from 0.3 mmol TOB and 0.9 mmol of the chosen LAA.1:5 Molar Ratio. TOB-LAA10-15 and TOB-LAA12-15 were obtained in a similar manner, starting from 0.2 mmol TOB and 1 mmol of the chosen LAA. |