| Literature DB >> 25679053 |
Bogdan Bujnicki1, Józef Drabowicz2, Marian Mikołajczyk3.
Abstract
The synthesis of optically active sulfinic acid esters has been accomplished by the acid catalyzed alcoholysis of optically active sulfinamides. Sulfinates are formed in this reaction with a full or predominant inversion of configuration at chiral sulfur or with predominant retention of configuration. The steric course of the reaction depends mainly on the size of the dialkylamido group in the sulfinamides and of the alcohols used as nucleophilic reagents. It has been found that bulky reaction components preferentially form sulfinates with retention of configuration. It has been demonstrated that the stereochemical outcome of the reaction can be changed from inversion to retention and vice versa by adding inorganic salts to the acidic reaction medium. The unusual stereochemistry of this typical bimolecular nucleophilic substitution reaction, as confirmed by kinetic measurements, has been rationalized in terms of the addition-elimination mechanism, A-E, involving sulfuranes as intermediates which undergo pseudorotations.Entities:
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Year: 2015 PMID: 25679053 PMCID: PMC6272183 DOI: 10.3390/molecules20022949
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Scheme 1Possible mechanisms for nucleophilic substitution reactions at sulfur.
Scheme 2Relationship between the structure of transient sulfuranes and stereochemistry of A-E reactions at sulfur.
Scheme 3A single Berry pseudorotation process of a sulfurane structure.
Scheme 4Acid-catalyzed methanolysis of optically active 14C-methyl p-toluenesulfinate and structures of transition state A and sulfurane B.
Scheme 5Steric course and mechanism of 18O/16O exchange in optically active methyl p-tolyl sulfoxide.
Scheme 6Synthesis of racemic sulfinates from sulfinamides.
Figure 1Optically active sulfinamides.
Stereoselective synthesis of p-toluenesulfinamides 1 from (−)-(S)-menthyl p-toluenesulfinate (4).
| Sulfinate 4 | Reaction Conditions | Sulfinamide 1 | ||||
|---|---|---|---|---|---|---|
| [α]D (Me2CO) | Temp. (°C) | Time (h) | No | Yield (%) a | [α]D (EtOH) | (% op) b |
| −210.0 | 25 | 15 | 45 | +5.5 | 3.5 | |
| −210.0 | 15 | 7 | 41 | +105.0 | 88 | |
| −210.0 | 15 | 20 | 35 | +104.3 | 54 | |
| −198.0 | 25 | 2 | 65 | +87.0 | 42 | |
| −202.0 | 0 | 15 | 75 | +215.0 | 81 | |
| −202.0 | 25 | 15 | 70 | +135.0 | 51 | |
a Yields after chromatography. b Optical purity values for 1a and 1b were calculated based on reference [11] and those for 1d determined in this work.
Scheme 7Synthesis of optically active sulfinamides 2.
Scheme 8Interconversion of the N-p-tolylsulfinylpyrrolidine (1d) enantiomers.
Stereoselective synthesis of optically active (+)-(S) O-alkyl p-toluenesulfinates (5) from sulfinamide (+)-(S)-1b.
| Sulfinamide 1b | Acid | Sulfinate 5 | Stereochemical Outcome | |||||||
|---|---|---|---|---|---|---|---|---|---|---|
| No | [α]D (Me2CO) | Op (%) | Yield (%) | No | R | [α]D (EtOH) | Op (%) | Selectivity | Inversion (%) | |
| +107 | 88 | CF3CO2H | 94.0 | Me | −192.6 | 88 | 100 | 100.0 | ||
| +105 | 86 | PhSO3H | 76.5 | Et | −179.2 | 86 | 100 | 100.0 | ||
| +107 | 88 | CF3CO2H | 90.0 | Et | −137.5 | 66 | 75.5 | 87.7 | ||
| +105 | 86 | PhSO3H | 80.0 | Prn | −161.2 | 84 | 98.2 | 91.1 | ||
| +106 | 87 | PhSO3H | 95.0 | CH2=CHCH2 | −106.5 | 73 | 84.0 | 92.0 | ||
| +105 | 86 | CF3CO2H | 84.0 | HC=CCH2 | −85.9 | 77 | 89.5 | 94.7 | ||
| +105 | 86 | PhSO3H | 77.0 | PhCH2 | −22.6 | 88 | 30 | 65.0 | ||
| +96 | 78.5 | CF3CO2H | 87.0 | Pri | −109.3 | 54 | 69.5 | 84.7 | ||
| +105 | 86 | PhSO3H | 53.0 | Pri | −100.7 | 50 | 58 | 79.0 | ||
| +104.7 | 86 | CF3CO2H | 86.0 | Pri | −107.9 | 54 | 62.7 | 81.5 | ||
| +105 | 86 | HSbF6 | 61.0 | Pri | −134.2 | 67 | 77 | 88.5 | ||
| +104.7 | 86 | CF3CO2H | 55.0 | Bui | −29.85 | 23 | 27.4 | 63.7 | ||
| +104.7 | 86 | CF3SO3+CF3CO2H | 55.5 | Bui | −10.6 | 8.3 | 9.7 | 54.8 | ||
Stereoselective synthesis of optically active O-alkyl p-toluenesulfinates (5), p-TolS(O)OR, from sulfinamide (+)-(S)-1c using trifluoroacetic acid as catalyst.
| Sulfinamide 1c | Sulfinate 5 | Inversion (%) or Retention (%) | ||||
|---|---|---|---|---|---|---|
| [α]D (Me2CO) | Op (%) | No | R | [α]D (EtOH) | Op. (%) | |
| +94.4 | 45.3 | Me | −35.0 | 16.0 | 68.75, Inv | |
| +94.4 | 45.3 | Et | −35.0 | 3.4 | 53.75, Inv | |
| +94.4 | 45.3 | Prn | −13.9 | 7.3 | 58.0, Inv | |
| +94.4 | 45.3 | Pri | +15.8 | 7.9 | 58.7, Ret | |
| +86.9 | 42.3 | (CD3)2CH | +10.1 | 4.6 | 55.5, Ret | |
| +86.9 | 42.3 | (CF3)2CH | +3.4 | 1.7 | 52.0, Ret | |
| +95.0 | 45.3 | Hexc | +41.0 | 22.4 | 74.5, Ret | |
| +95.0 | 45.3 | Penc | +3.3 | 1.8 | 52.0, Ret | |
| +95.0 | 45.3 | Et2CH | −4.4 | 2.3 | 52.5, Inv | |
| +95.0 | 45.3 | Bui | −2.7 | 1.4 | 51.5, Inv | |
Stereoselective synthesis of optically active O-alkyl benzenesulfinates (6), PhS(O)OR, from benzenesulfinamides (+)-(S)-2 using trifluoroacetic acid as catalyst.
| Sulfinamide 2 | Sulfinate 6 | Inversion (%) | |||||
|---|---|---|---|---|---|---|---|
| No | [α]D (Me2CO) | Op (%) | No | R | [α]D (EtOH) | Op. (%) | |
| +85.7 | 100 | Me | −64.0z | 24.0 | 62.0 | ||
| +85.7 | 100 | Et | −23.0 | 10.8 | 55.4 | ||
| +170.0 | 100 | Me | −204.2 | 76.5 | 87.2 | ||
| +170.0 | 100 | Et | −167.0 | 78.0 | 89.0 | ||
| +39.0 | 15.6 | Me | −45.5 | 15.6 | 100.0 | ||
| +39.0 | 15.6 | Et | −33.4 | 15.6 | 100.0 | ||
Scheme 9Synthesis of enantiomeric O-methyl p-toluenesulfinates (1a) from N-p-tolylsulfinylpyrrolidines (1d).
The effect of silver perchlorate on steric course of the acid catalyzed alcoholysis of sulfinamide (+)-(S)-1c.
| Sulfinate 5 | Inversion/Retention Ratio with AgClO4 | Inversion/Retention Ratio without AgClO4 |
|---|---|---|
| 100/0 | 68.7/31.3 | |
| 91/9 | 53.7/46.3 | |
| 100/0 | 58.0/42.0 | |
| 82/18 | 41.3/58.7 | |
| 65.5/34.5 | 25.5/74.5 |
The effect of inorganic salts (KA) on the steric course of the acid catalyzed isopropanolysis of sulfinamide (+)-(S)-1c.
| KA | Prevailing Stereochemistry | KA | Prevailing Stereochemistry |
|---|---|---|---|
| CoCl2 | 55% Retention | Co(NO3)3 | 73.0% Inversion |
| NiC2O4 | 71% Retention | Ni(NO3)2 | 66.0% Inversion |
| Ag2CO3 | 65% Retention | AgClO4 | 82.0% Inversion |
| Ag2Cr2O7 | 67% Retention | AgNO3 | 53.0% Inversion |
| Ag2SO4 | 63% Retention | Ce(NO3)3 | 71.0% Inversion |
| HgBr2 | 69% Retention | CrCl3 | 50.5% Inversion |
| Cd(OAc)2 | 68% Retention |
The effect of solvents on steric course of the acid catalyzed isopropanolysis of sulfinamide (+)-(S)-1c.
| Solvent | Inv/Ret Ratio |
|---|---|
| CHCl3 | 55/45 |
| C6H6 | 56/46 |
| C6H14n | 58/42 |
| CH3CN | 49/51 |
Kinetic data on alcoholysis of arenesulfinamides, ArS(O)NR1R2, catalyzed by trifluoroacetic acid.
| Run | Sulfinamide | Alcohol | Temp. (K) | k1(10−4s−1) | |
|---|---|---|---|---|---|
| PriOH | 310.0 | 16.0 ± 0.35 | |||
| PriOH | 298.0 | 2.32 ± 0.35 | |||
| 307.1 | 3.75 ± 0.09 | ||||
| 310.1 | 5.22 ± 0.10 | ||||
| 318.0 | 8.64 ± 0.15 | ||||
| 328.0 | 19.5 ± 0.30 | ||||
| MeOH | 298.0 | 33.0 ± 1.2 | |||
| CH3OD | 298.0 | 47.9 ± 1.5 | |||
| PriOH | 303.7 | 0.521 ± 0.015 | |||
| 310.0 | 0.935 ± 0.04 | ||||
| 316.7 | 1.57 ± 0.04 | ||||
| PriOH | 310.0 | 5.60 ± 0.10 | |||
Activation energy and entropy for isopropanolysis of sulfinamide 1b and 1c catalyzed by trifluoroacetic acid.
| Reaction | Ea (kJ mol−1/kJ mol−1) | ΔS≠ (J mol−1 k−1/e.u.) |
|---|---|---|
| 58.3/14 | −145.5/−34.8 | |
| 68.1/16.3 | −110.4/−26.4 |
The effect of concentration of sodium trifluoroacetate on the rate constants and stereochemistry of the reaction 9.
| Concentration of CF3CO2Na | Rate Contant | Prevailing Stereochemistry |
|---|---|---|
| 0 mol | k = (2.73 ± 0.26) 10−4 s−1 | 58% Ret |
| 16 mol | k = (3.29 ± 0.06) 10−4 s−1 | 58% Inv |
| 32 mol | k = (3.56 ± 0.18) 10−4 s−1 | 59% Inv |
Figure 2Hexaasterane graph showing all possible sulfuranes to internconnected by pseudorotations (for the sake of clarity hydrogens on the nitrogen and oxygen atoms are omitted).
Scheme 10Sulfuranes formed by nucleophilic attack (apical entry) on four walls of the protonated (S)-sulfinamide 1 tetrahedron.
Scheme 11Two competing inversion and retention pathways in the acid catalyzed alcoholysis of sulfinamides 1.
Scheme 12Preferred steric course of the acid catalysed alcoholysis of sulfinamides in the presence of silver perchlorate.
Spectroscopic properties of O-alkyl arenesulfinates 5 and 6 ArS(O)OR’.
| No | Ar | R | IR(S=O) cm−1 | 1H-NMR (60 MHz, CDCl3 δ (ppm) |
|---|---|---|---|---|
| Me | 1126 | 7.45 and 7.25 (AB-system, 4H, | ||
| Et | 1120 | 7.45 and 7.25 (AB-system, 4H, | ||
| Prn | 1125 | 7.45 and 7.23 (AB-system, 4H, | ||
| Pri | 1130 | 7.50 and 7.30 (AB-syst, 4H, | ||
| (CD3)2CH | 1130 | 7.45 and 7.20 (AB-system, 4H, | ||
| (CF3)2CH | – | 7.50 and 7.30 (AB-system, 4H, | ||
| Hexc | 1130 | 7.40 and 7.25 (AB-system, 4H, | ||
| Penc | 1125 | 7.45 and 7.20 (AB-system, 4H, | ||
| Bui | 1128 | 7.60 and 7.35 (AB-system, 4H, | ||
| But | 1125 | 7.45 and 7.20 (AB-system, 4H, | ||
| Pentyl-3 | – | 7.70 and 7.35 (AB-system, 4H, | ||
| Ph | Me | 1125 | 7.60–7.35 (m, 5H, | |
| P | Et | – | 7.70–7.40 (m, 5H, |
s-singlet, d-doublet, dd-double doublet, d,d-two doublets, t-triplet, t,t-two triplets, q-quartet, sx-sextet, sp-septet, m-multiplet, Penc-cyclopentyl, Hexc-cyclohexyl.
Determination of optical purity of sulfinates (−)-5 by their conversion into (+)-(R)-methyl p-tolyl sulfoxide.
| MeS(O)-Tol- | ||||||
|---|---|---|---|---|---|---|
| No | R | [α]D | Conf. | [α]D | Op (%) | Conf. |
| CH2=CH–CH2 | −106.5 | +108.0 | 73 | |||
| CH2=CHCH2 | −86.0 |
| +111.3 | 77 | ||
| (CD3)2CH | −19.8 | +13.6 | 9.2 | |||
| (CF3)2CH | −10.3 | +7.5 | 5.1 | |||
| Hexc | −23.9 |
| +20.6 | 13.8 | ||
| Penc | −6.5 | +5.2 | 3.5 | |||
| Et2CH | −11.7 | +9.2 | 6.2 | |||
| Bui | −8.2 | +6.2 | 4.2 | |||