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Chemical Structure| 2084-13-1 Chemical Structure| 2084-13-1

Structure of 2084-13-1

Chemical Structure| 2084-13-1

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Product Citations

Product Citations

Anushree Mondal ; Pronay Roy ; Jaclyn Carrannatto ; Prathamesh M. Datar ; Daniel J. DiRocco ; Katherine Huntera and E. Neil G. Marsh

Abstract: The prenylated-flavin mononucleotide-dependent decarboxylases (also known as UbiD-like enzymes) are the most recently discovered family of decarboxylases. The modified flavin facilitates the decarboxylation of unsaturated carboxylic acids through a novel mechanism involving 1,3-dipolar cyclo-addition chemistry. UbiD-like enzymes have attracted considerable interest for biocatalysis applications due to their ability to catalyse (de)carboxylation reactions on a broad range of aromatic substrates at otherwise unreactive carbon centres. There are now ∼35[thin space (1/6-em)]000 protein sequences annotated as hypothetical UbiD-like enzymes. Sequence similarity network analyses of the UbiD protein family suggests that there are likely dozens of distinct decarboxylase enzymes represented within this family. Furthermore, many of the enzymes so far characterized can decarboxylate a broad range of substrates. Here we describe a strategy to identify potential substrates of UbiD-like enzymes based on detecting enzyme-catalysed solvent deuterium exchange into potential substrates. Using ferulic acid decarboxylase (FDC) as a model system, we tested a diverse range of aromatic and heterocyclic molecules for their ability to undergo enzyme-catalysed H/D exchange in deuterated buffer. We found that FDC catalyses H/D exchange, albeit at generally very low levels, into a wide range of small, aromatic molecules that have little resemblance to its physiological substrate. In contrast, the sub-set of aromatic carboxylic acids that are substrates for FDC-catalysed decarboxylation is much smaller. We discuss the implications of these findings for screening uncharacterized UbiD-like enzymes for novel (de)carboxylase activity.

Alternative Products

Product Details of [ 2084-13-1 ]

CAS No. :2084-13-1
Formula : C9H8O4
M.W : 180.16
SMILES Code : O=C(O)C1=CC=CC(CC(O)=O)=C1
MDL No. :MFCD15523567
Boiling Point : No data available
InChI Key :QNUWEXSGZVBMDV-UHFFFAOYSA-N
Pubchem ID :268227

Safety of [ 2084-13-1 ]

GHS Pictogram:
Signal Word:Warning
Hazard Statements:H302-H315-H319-H335
Precautionary Statements:P261-P305+P351+P338

Computational Chemistry of [ 2084-13-1 ] Show Less

Physicochemical Properties

Num. heavy atoms 13
Num. arom. heavy atoms 6
Fraction Csp3 0.11
Num. rotatable bonds 3
Num. H-bond acceptors 4.0
Num. H-bond donors 2.0
Molar Refractivity 44.95
TPSA ?

Topological Polar Surface Area: Calculated from
Ertl P. et al. 2000 J. Med. Chem.

74.6 Ų

Lipophilicity

Log Po/w (iLOGP)?

iLOGP: in-house physics-based method implemented from
Daina A et al. 2014 J. Chem. Inf. Model.

0.93
Log Po/w (XLOGP3)?

XLOGP3: Atomistic and knowledge-based method calculated by
XLOGP program, version 3.2.2, courtesy of CCBG, Shanghai Institute of Organic Chemistry

1.14
Log Po/w (WLOGP)?

WLOGP: Atomistic method implemented from
Wildman SA and Crippen GM. 1999 J. Chem. Inf. Model.

1.01
Log Po/w (MLOGP)?

MLOGP: Topological method implemented from
Moriguchi I. et al. 1992 Chem. Pharm. Bull.
Moriguchi I. et al. 1994 Chem. Pharm. Bull.
Lipinski PA. et al. 2001 Adv. Drug. Deliv. Rev.

1.25
Log Po/w (SILICOS-IT)?

SILICOS-IT: Hybrid fragmental/topological method calculated by
FILTER-IT program, version 1.0.2, courtesy of SILICOS-IT, http://www.silicos-it.com

0.95
Consensus Log Po/w?

Consensus Log Po/w: Average of all five predictions

1.06

Water Solubility

Log S (ESOL):?

ESOL: Topological method implemented from
Delaney JS. 2004 J. Chem. Inf. Model.

-1.82
Solubility 2.73 mg/ml ; 0.0152 mol/l
Class?

Solubility class: Log S scale
Insoluble < -10 < Poorly < -6 < Moderately < -4 < Soluble < -2 Very < 0 < Highly

Very soluble
Log S (Ali)?

Ali: Topological method implemented from
Ali J. et al. 2012 J. Chem. Inf. Model.

-2.3
Solubility 0.901 mg/ml ; 0.005 mol/l
Class?

Solubility class: Log S scale
Insoluble < -10 < Poorly < -6 < Moderately < -4 < Soluble < -2 Very < 0 < Highly

Soluble
Log S (SILICOS-IT)?

SILICOS-IT: Fragmental method calculated by
FILTER-IT program, version 1.0.2, courtesy of SILICOS-IT, http://www.silicos-it.com

-1.55
Solubility 5.1 mg/ml ; 0.0283 mol/l
Class?

Solubility class: Log S scale
Insoluble < -10 < Poorly < -6 < Moderately < -4 < Soluble < -2 Very < 0 < Highly

Soluble

Pharmacokinetics

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

No
P-gp substrate?

P-glycoprotein substrate: SVM model built on 1033 molecules (training set)
and tested on 415 molecules (test set)
10-fold CV: ACC=0.72 / AUC=0.77
External: ACC=0.88 / AUC=0.94

No
CYP1A2 inhibitor?

Cytochrome P450 1A2 inhibitor: SVM model built on 9145 molecules (training set)
and tested on 3000 molecules (test set)
10-fold CV: ACC=0.83 / AUC=0.90
External: ACC=0.84 / AUC=0.91

No
CYP2C19 inhibitor?

Cytochrome P450 2C19 inhibitor: SVM model built on 9272 molecules (training set)
and tested on 3000 molecules (test set)
10-fold CV: ACC=0.80 / AUC=0.86
External: ACC=0.80 / AUC=0.87

No
CYP2C9 inhibitor?

Cytochrome P450 2C9 inhibitor: SVM model built on 5940 molecules (training set)
and tested on 2075 molecules (test set)
10-fold CV: ACC=0.78 / AUC=0.85
External: ACC=0.71 / AUC=0.81

No
CYP2D6 inhibitor?

Cytochrome P450 2D6 inhibitor: SVM model built on 3664 molecules (training set)
and tested on 1068 molecules (test set)
10-fold CV: ACC=0.79 / AUC=0.85
External: ACC=0.81 / AUC=0.87

No
CYP3A4 inhibitor?

Cytochrome P450 3A4 inhibitor: SVM model built on 7518 molecules (training set)
and tested on 2579 molecules (test set)
10-fold CV: ACC=0.77 / AUC=0.85
External: ACC=0.78 / AUC=0.86

No
Log Kp (skin permeation)?

Skin permeation: QSPR model implemented from
Potts RO and Guy RH. 1992 Pharm. Res.

-6.59 cm/s

Druglikeness

Lipinski?

Lipinski (Pfizer) filter: implemented from
Lipinski CA. et al. 2001 Adv. Drug Deliv. Rev.
MW ≤ 500
MLOGP ≤ 4.15
N or O ≤ 10
NH or OH ≤ 5

0.0
Ghose?

Ghose filter: implemented from
Ghose AK. et al. 1999 J. Comb. Chem.
160 ≤ MW ≤ 480
-0.4 ≤ WLOGP ≤ 5.6
40 ≤ MR ≤ 130
20 ≤ atoms ≤ 70

None
Veber?

Veber (GSK) filter: implemented from
Veber DF. et al. 2002 J. Med. Chem.
Rotatable bonds ≤ 10
TPSA ≤ 140

0.0
Egan?

Egan (Pharmacia) filter: implemented from
Egan WJ. et al. 2000 J. Med. Chem.
WLOGP ≤ 5.88
TPSA ≤ 131.6

0.0
Muegge?

Muegge (Bayer) filter: implemented from
Muegge I. et al. 2001 J. Med. Chem.
200 ≤ MW ≤ 600
-2 ≤ XLOGP ≤ 5
TPSA ≤ 150
Num. rings ≤ 7
Num. carbon > 4
Num. heteroatoms > 1
Num. rotatable bonds ≤ 15
H-bond acc. ≤ 10
H-bond don. ≤ 5

1.0
Bioavailability Score?

Abbott Bioavailability Score: Probability of F > 10% in rat
implemented from
Martin YC. 2005 J. Med. Chem.

0.56

Medicinal Chemistry

PAINS?

Pan Assay Interference Structures: implemented from
Baell JB. & Holloway GA. 2010 J. Med. Chem.

0.0 alert
Brenk?

Structural Alert: implemented from
Brenk R. et al. 2008 ChemMedChem

0.0 alert: heavy_metal
Leadlikeness?

Leadlikeness: implemented from
Teague SJ. 1999 Angew. Chem. Int. Ed.
250 ≤ MW ≤ 350
XLOGP ≤ 3.5
Num. rotatable bonds ≤ 7

No; 1 violation:MW<1.0
Synthetic accessibility?

Synthetic accessibility score: from 1 (very easy) to 10 (very difficult)
based on 1024 fragmental contributions (FP2) modulated by size and complexity penaties,
trained on 12'782'590 molecules and tested on 40 external molecules (r2 = 0.94)

1.51

Application In Synthesis of [ 2084-13-1 ]

* 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.

  • Upstream synthesis route of [ 2084-13-1 ]

[ 2084-13-1 ] Synthesis Path-Upstream   1~14

  • 1
  • [ 52798-00-2 ]
  • [ 2084-13-1 ]
YieldReaction ConditionsOperation in experiment
90%
Stage #1: With sodium hydroxide In methanol at 90℃; for 16 h;
Stage #2: With hydrogenchloride In methanol; water
6M Sodium hydroxide (10 mL) was added to methyl 2- (3-cyanophenyl) acetate 74, (550 mg, 3.14 mmol) in methanol (10 mL) and then heated at 90° C. overnight. After concentrating the reaction mixture, the aqueous layer was washed with CH2C12 (20 mL x 2), then acidified to pH~3 with 12M HC1. The precipitate was extracted with ethyl acetate and washed with sat. NaCl (30 mL x 2), dried (anhydrous sodium sulfate) and concentrated in vacuo. The crude product was chromatographed on silica gel (CH2Cl2/MeOH, 20:1) to yield target compound 75. Yield 508 mg, 90percent. Rf = 0.30, XH NMR (400 MHz, Methanol-d4) δ 8.06 - 7.87 (m, 2H) , 7.54 (tt, J = 5.7, 1.4 Hz, 1H) , 7.45 (t, J = 7.6 Hz, 1H) , 3.71 (s, 2H) ; [M+H]+ = 181.15 (APCI+) .
References: [1] Patent: WO2013/52110, 2013, A1, . Location in patent: Page/Page column 63; 64; 65.
  • 2
  • [ 16532-78-8 ]
  • [ 2084-13-1 ]
YieldReaction ConditionsOperation in experiment
97% at 80℃; for 2 h; (iii) 3-Carboxymethyl-benzoic acid; 3-Cyanomethyl-benzonitrile (90 mg, 0.63 mmol) was suspended in conc. HC1 (3 ml), and heated to 80°C for 2 h. The solvent was then removed in vacuo to give the crude product, which was used without further purification. Yield: 110 mg, 97percent ; LC/MS tr 0.71 min; MS (ES+) m/z 181 (M+H)
References: [1] Patent: WO2005/80367, 2005, A1, . Location in patent: Page/Page column 164.
[2] Justus Liebigs Annalen der Chemie, 1936, vol. 521, p. 242,260.
[3] Chemische Berichte, 1903, vol. 36, p. 3611.
  • 3
  • [ 68432-92-8 ]
  • [ 2084-13-1 ]
YieldReaction ConditionsOperation in experiment
68% at 160℃; for 3 h; 3-Carboxymethylbenzoic Acid 16. Methyl 3-(cyanomethyl)benzoate 15 (6.3 g, 36.0 mmol) was treated with H2SO4 (40percent, 108 mL) and refluxed for 3 h at 160°C. The reaction mixture was then slowly cooled, diluted with cold H20 (108 mL), and filtered. The solid collected was washed with cold H20, dried with vacuum pump, and used without further purification. Yield 4.4 g (68percent). XH-NMR (DMSO): 3.67 s (2H, CH2); 7.44 t (1H, CH), 7.51 dt (1H, CH), 7.82 dt (1H, CH), 7.85 t (1H, CH).
References: [1] Patent: WO2012/173784, 2012, A1, . Location in patent: Page/Page column 29.
  • 4
  • [ 201230-82-2 ]
  • [ 28188-41-2 ]
  • [ 2084-13-1 ]
References: [1] Tetrahedron Letters, 1983, vol. 24, # 37, p. 4005 - 4008.
  • 5
  • [ 5689-33-8 ]
  • [ 2084-13-1 ]
References: [1] Patent: WO2010/136474, 2010, A2, . Location in patent: Page/Page column 180-181.
  • 6
  • [ 18749-47-8 ]
  • [ 2084-13-1 ]
References: [1] Journal of the American Chemical Society, 1946, vol. 68, p. 2133.
  • 7
  • [ 14194-05-9 ]
  • [ 2084-13-1 ]
References: [1] Journal of the American Chemical Society, 1946, vol. 68, p. 2133.
  • 8
  • [ 101-97-3 ]
  • [ 2084-13-1 ]
References: [1] Journal of the American Chemical Society, 1946, vol. 68, p. 2133.
  • 9
  • [ 108-88-3 ]
  • [ 103-82-2 ]
  • [ 2084-13-1 ]
References: [1] Journal of the American Chemical Society, 1943, vol. 65, p. 1339,1345.
  • 10
  • [ 1129-28-8 ]
  • [ 2084-13-1 ]
References: [1] Patent: WO2012/173784, 2012, A1, .
  • 11
  • [ 150529-73-0 ]
  • [ 2084-13-1 ]
References: [1] Patent: WO2013/52110, 2013, A1, .
  • 12
  • [ 1878-67-7 ]
  • [ 2084-13-1 ]
References: [1] Patent: WO2013/52110, 2013, A1, .
  • 13
  • [ 111-65-9 ]
  • [ 1822-71-5 ]
  • [ 108-88-3 ]
  • [ 103-82-2 ]
  • [ 2084-13-1 ]
References: [1] Journal of the American Chemical Society, 1936, vol. 58, p. 1024,2599,2604.
[2] Journal of the American Chemical Society, 1943, vol. 65, p. 1339,1345.
  • 14
  • [ 111-65-9 ]
  • [ 124-38-9 ]
  • [ 1822-71-5 ]
  • [ 108-88-3 ]
  • [ 103-82-2 ]
  • [ 2084-13-1 ]
References: [1] Journal of the American Chemical Society, 1943, vol. 65, p. 1339,1345.
 

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