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CAS No. : | 30992-29-1 | MDL No. : | MFCD00042973 |
Formula : | C9H17NO4 | Boiling Point : | - |
Linear Structure Formula : | H2O(C2H3NO)C2H4C5H8O2 | InChI Key : | MFNXWZGIFWJHMI-UHFFFAOYSA-N |
M.W : | 203.24 | Pubchem ID : | 2733845 |
Synonyms : |
2-((tert-Butoxycarbonyl)amino)-2-methylpropanoic acid
|
Num. heavy atoms : | 14 |
Num. arom. heavy atoms : | 0 |
Fraction Csp3 : | 0.78 |
Num. rotatable bonds : | 5 |
Num. H-bond acceptors : | 4.0 |
Num. H-bond donors : | 2.0 |
Molar Refractivity : | 51.7 |
TPSA : | 75.63 ?2 |
GI absorption : | High |
BBB permeant : | No |
P-gp substrate : | No |
CYP1A2 inhibitor : | No |
CYP2C19 inhibitor : | No |
CYP2C9 inhibitor : | No |
CYP2D6 inhibitor : | No |
CYP3A4 inhibitor : | No |
Log Kp (skin permeation) : | -6.75 cm/s |
Log Po/w (iLOGP) : | 1.81 |
Log Po/w (XLOGP3) : | 1.11 |
Log Po/w (WLOGP) : | 1.37 |
Log Po/w (MLOGP) : | 0.83 |
Log Po/w (SILICOS-IT) : | 0.09 |
Consensus Log Po/w : | 1.04 |
Lipinski : | 0.0 |
Ghose : | None |
Veber : | 0.0 |
Egan : | 0.0 |
Muegge : | 0.0 |
Bioavailability Score : | 0.56 |
Log S (ESOL) : | -1.47 |
Solubility : | 6.9 mg/ml ; 0.0339 mol/l |
Class : | Very soluble |
Log S (Ali) : | -2.29 |
Solubility : | 1.04 mg/ml ; 0.00511 mol/l |
Class : | Soluble |
Log S (SILICOS-IT) : | -1.03 |
Solubility : | 18.8 mg/ml ; 0.0925 mol/l |
Class : | Soluble |
PAINS : | 0.0 alert |
Brenk : | 0.0 alert |
Leadlikeness : | 1.0 |
Synthetic accessibility : | 2.18 |
Signal Word: | Warning | Class: | N/A |
Precautionary Statements: | P261-P305+P351+P338 | UN#: | N/A |
Hazard Statements: | H315-H319-H335 | Packing Group: | N/A |
GHS Pictogram: |
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* 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 |
---|---|---|
88% | Stage #1: With pyridine; di-<i>tert</i>-butyl dicarbonate In acetonitrile at 20℃; for 0.333333 h; Stage #2: With ammonia In water; acetonitrile for 4.33333 h; |
A mixture of 2-(tert-butoxycarbonylamino)-2-methylpropanoic acid (CAN: 30992-29-1, 20 g, 98 mmol), di-tert-butyl dicarbonate (CAN 24424-99-5, 27.67 g, 147 mmol) and pyridine (4.6 mL) in acetonitrile (500 mL) was stirred at room temperature for 20 min. Ammonia (10 mL) was added dropwise for 20 min. The resulting reaction mixture was stirred for 4 h. After removal of most of the solvent under reduced pressure, the solid was filtered off and washed with acetonitrile. The solid was brought to dryness under reduced pressure to give the title compound (17.5 g, 88percent) as white solid; MS (EI): m/e 225.1 [M+Na]+. |
88% | Stage #1: With pyridine; di-<i>tert</i>-butyl dicarbonate In acetonitrile at 20℃; for 0.333333 h; Stage #2: With ammonia In acetonitrile for 4.3 h; |
A mixture of 2-(tert-butoxycarbonylamino)-2-methylpropanoic acid (CAN: 30992-29-1, 20 g, 98 mmol), di-tert-butyl dicarbonate (CAN 24424-99-5, 27.67 g, 147 mmol) and pyridine (4.6 mL) in acetonitrile (500 mL) was stirred at room temperature for 20 min. Ammonia (10 mL) was added dropwise for 20 min. The resulting reaction mixture was stirred for 4 h. After removal of most of the solvent under reduced pressure, the solid was filtered off and washed with acetonitrile. The solid was brought to dryness under reduced pressure to give the title compound (17.5 g, 88percent) as white solid; MS(EI): m/e 225.1 [M+Na]+. |
Yield | Reaction Conditions | Operation in experiment |
---|---|---|
33% | With benzotriazol-1-yloxyl-tris-(pyrrolidino)-phosphonium hexafluorophosphate; N-ethyl-N,N-diisopropylamine; In dichloromethane; for 18h; | Benzotriazol-1-yloxytripyrrolidinophosphonium hexafluorophosphate (4.00 g, 7.69 mmol) was added to a mixture of 4-chloro-1 ,3-phenylenediamine (1.00 g, 7.01 mmol), N-(te/f-butoxycarbonyl)-2-aminoisobutyric acid (1.60 g, 7.87 mmol), N,N-diisopropylethylamine (3.00 mL, 17.2 mmol) and dichloromethane (7 ml_) and the mixture stirred 18 h under nitrogen. The mixture was diluted with ethyl acetate, washed with 1 M aqueous hydrochloric acid and brine, then dried (MgSO4). The solvent was removed under reduced pressure and the residue EPO <DP n="118"/>chromatographed (silica gel, 10-50percent ethyl acetate/hexane) to give the title compound (0.75 g, 33percent) as a solid. 1 H NMR (400 MHz, DMSO-c/6) delta ppm 1.36 (m, 15 H) 5.29 (s, 2 H) 6.73 (br s, 1 H) 6.88 (br s, 1 H) 7.05 (d, J=8.59 Hz, 1 H) 7.20 (s, 1 H) 9.21 (s, 1 H) |
Yield | Reaction Conditions | Operation in experiment |
---|---|---|
With benzotriazol-1-yloxyl-tris-(pyrrolidino)-phosphonium hexafluorophosphate; N-ethyl-N,N-diisopropylamine; In N,N-dimethyl acetamide; at 30℃; for 16h; | 2-(5-(tert-Butyl)-1H-benzo[d]imidazol-2-yl)propan-2-amine wasprepared in parallel format using the following protocol: A solution of2-((tert-butoxycarbonyl)amino)-2-methylpropanoic acid in DMA (100umol, 1.0 eq) was dispensed into 8 vials, followed by a solution ofPyBOP (55 mg, 110 umol, 1.1 eq). The vials were diluted with DMA(800 muL), capped and shaken at 30 °C for 30 min. A solution of the intermediates,including <strong>[68176-57-8]4-(tert-butyl)benzene-1,2-diamine</strong> (100 umol,1.0 eq), in DMA (400 ul) was dispensed to the vials. DIEA (75 muL, 300umol, 1.0 eq) was added to the vials, which were capped and shaken at30 °C for 16 hrs. The solvent was removed by a Speedvac to give thecrude intermediate tert-butyl (1-((2-amino-4-(tert-butyl)phenyl)amino)-2-methyl-1-oxopropan-2-yl) carbamate which was used for next stepwithout further purification. The intermediates, including tert-butyl (1-((2-amino-4-(tert-butyl)phenyl)amino)-2-methyl-1-oxopropan-2-yl)carbamate(75 mumol, 1.0 eq) in acetic acid (400 muL) were dispensed into in8 mL vials followed by addition of 6 N HCl (150 muL) to each vial. Thevials were capped and shaken at 100 °C for 2 hrs. The solvent was removedby a Speedvac and the residue was purified by preparative HPLCto give pure 2-(5-(tert-butyl)-1H-benzo[d]imidazol-2-yl)propan-2-amine. HRMS for C14H22N3 MS m/z [M+H]+: Calc?d: 232.1808,Found: 232.1808. |
Yield | Reaction Conditions | Operation in experiment |
---|---|---|
2 mg | General procedure: The first four amino acids (from the C-terminus) of peptide 13 were coupled by automated peptide synthesis as described in the general section. Following coupling scheme was used: The remaining two amino acids of peptide 13 were coupled manually using a 5-fold molar excess of amino acid, FIOBt and DIC (75 pmol each) in DMF as solvent. In addition, the whole sequence of peptide 15 was prepared by manual synthesis on a Rink amide AM resin using the same reagent conditions. Following coupling scheme was applied: In case of peptide 15, the resin was treated with a capping solution of 10 % DIPEA and 10 % acetic anhydride in DCM (15 min, 500 pi) after loading with the first C-terminal amino acid. Removal of Fmoc protecting groups after each manual coupling step was accomplished by using 20 % piperidine in DMF (2 x 10 min, 500 mI each). Peptides 14 and 16 were entirely prepared by automated peptide synthesis as described in the general section. The coupling scheme was as follows: The first two C-terminal amino acids of peptide 17 and 18 were coupled by automated peptide synthesis as described in the general section. Following coupling scheme was used:The remaining three amino acids of peptide 17 and 18 were coupled manually using a 3-fold or 5- fold molar excess of the amino acid and a 5-fold molar excess of FIOBt and DIC (75 pmol each) in DMF as solvent. The coupling scheme was as follows: Removal of Fmoc protecting groups after each manual coupling step was accomplished by using 20 % piperidine in DMF (2 x 10 min, 500 pi each). For the removal of the Mmt protecting group in peptide 13, the resin was treated with a cleavage mixture consisting of 2 % TFA, 5 % TIS in DCM (8 x 2 min, 1 ml each). After each deprotection step, the resin was washed with DCM. Finally, the resin was incubated with 5 % DIPEA in DCM (2 x 10 min, 1 ml each). For the cleavage of the Dde protecting group in all other peptides (14-18), the resin was treated with 2 % hydrazine in DMF (10 x 10 min, 1 ml each). In case of peptide 14, the building block Fmoc-L-Dap(Mtt)-OFI was coupled manually in 3-fold molar excess with a 5-fold molar excess of FIOBt and DIC (75 pmol each) to the e-amino group of the C- terminal lysine. DMF was used as solvent and the coupling time was approximately 16 h. For peptide 16, the building block Fmoc-L-Dap(Fmoc)-OFI was coupled manually in 5-fold molar excess with FIOBt and DIC (75 pmol each) in DMF to the C-terminal lysine side-chain. The coupling time was 4 h. Subsequently, removal of the Fmoc protecting groups was achieved by using 20 % piperidine in DMF (2 x 10 min, 500 mI each). 6-TAMRA was coupled manually to peptide 16 using a 2-fold molar excess of the fluorophore, FIATU and DIPEA (30 pmol each) in DMF as solvent for 5 h. Afterwards, removal of the Mtt protecting group in peptide 16 was performed as described for the Mmt deprotection above.The carbaboranes were coupled manually in 3-fold molar excess per free lysine or Dap amino group, except for mlJ9b, which was coupled in 1.5-fold molar excess per free amino group. Coupling reactions were prepared as follows: Peptides 13, 14 and 17: 3 eq. m9b, 5 eq. FIOBt and 5 eq. DIC in DMF as solvent. Peptide 15: 3 eq. bm9x, 4 eq. FIOBt and 4 eq. DIC in DMF. Peptide 16: 3 eq. mlJ9b, 4 eq. FIOBt and 4 eq. DIC in DMF. Peptide 18: 1.5 eq. mlJ9b, 2 eq. FIOBt and 2 eq. DIC in DMF. All coupling reactions were performed overnight for approximately 16 h. Cleavage of conjugates 13-15 and 17 from the resin and simultaneous side chain deprotection was accomplished using a mixture of TFA/TA/EDT (90:7:3, 1 ml) for 3 h. Cleavage of conjugates 16 and 18 from the resin was achieved using a mixture of TFA/FhO (95:5, 1 ml) for 3 h. The crude conjugates were precipitated and washed with an ice-cold mixture of hexane/diethyl ether (3:1, v/v), dissolved in ACN/FI2O and subsequently lyophilized. The first purification of the crude conjugate 13 was performed by preparative RP-HPLC using a C18- column (Phenomenex Jupiter 5u 300 A: 250 mm c 21.2 mm, 5 pm, 300 A) with a flow rate of 10 ml/min and a linear gradient of 50 % to 80 % eluent B in A over 30 min. Conjugate 13 had to be purified a second time using a XBridge C18-column (Waters XBridge Peptide BEH C18 OBD: 250 mm c 19 mm, 10 pm, 130 A) with a flow rate of 15 ml/min and a linear gradient of 50 % to 80 % eluent B in A over 30 min. For purification of conjugate 14, a XBridge C18-column (Waters XBridge Peptide BEH C18 OBD: 250 mm c 19 mm, 10 pm, 130 A) with a flow rate of 15 ml/min and a linear gradient of 30 % to 60 % eluent B in A over 30 min was applied. Purification of the conjugates 15-17 was achieved using a Kinetex C18-column (Phenomenex Kinetex 5u XB-C18: 250 mm c 21.2 mm, 5 pm, 100 A) with a flow rate of 15 ml/min. For conjugate 15 and 16, a linear gradient of 40 % to 70 % eluent B in A over 30 min was used, whereas for conjugate 17 a gradient of 50 % to 80 % eluent B in A over 30 min was applied. Purification of the... |
Tags: 30992-29-1 synthesis path| 30992-29-1 SDS| 30992-29-1 COA| 30992-29-1 purity| 30992-29-1 application| 30992-29-1 NMR| 30992-29-1 COA| 30992-29-1 structure
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