| Literature DB >> 35539392 |
Tomasz Cytlak1,2, Monika Skibińska1, Patrycja Kaczmarek1, Marcin Kaźmierczak1,2, Magdalena Rapp1, Maciej Kubicki1, Henryk Koroniak1.
Abstract
Direct conversion of the α-hydroxyl group by para-toluenesulfonamide to yield α-(N-tosyl)aminophosphonates is reported. α-Aminophosphonates 23a,b-37a,b were obtained from the corresponding α-hydroxyphosphonates 6a,b-21a,b in the presence of K2CO3, via the retro-Abramov reaction of the appropriate aldehydes, 1-5. The subsequent formation of imines with simultaneous addition of diethyl phosphite provided access to the α-sulfonamide phosphonates 23a,b-37a,b with better diastereoselectivity than in the case of the Pudovik reaction. The mechanism for this transformation is proposed herein. When Cbz N-protected aziridine 9a,b and phenylalanine analogue 12a,b were exploited, intramolecular substitution was observed, leading to the corresponding epoxide 38 as the sole product, or oxazolidin-2-one 39 as a minor product. Analogous substitution was not observed in the case of proline 18a,b and serine 21a,b derivatives. This journal is © The Royal Society of Chemistry.Entities:
Year: 2018 PMID: 35539392 PMCID: PMC9079259 DOI: 10.1039/c8ra01656a
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
Scheme 1Kabachnik–Fields reaction.
Fig. 1A perspective view of 9a, showing the numbering scheme. Ellipsoids were drawn at the 30% probability level, hydrogen atoms are represented by spheres of arbitrary radii.
Preparation of α-hydroxyphosphonatesa
|
| ||||||
|---|---|---|---|---|---|---|
| Aldehyde | Product | PG | Cond. | Yield | d.r. | |
| 1a |
| 6a,b | Bn | i | 84 | 1 : 1 |
| 1a | 6a,b | Bn | ii | 77 | 20 : 1 | |
| 1a | 7a,b | H | iii | 97 | 1 : 1 | |
| 1a | 8a,b | Boc | iv | 43 | 1 : 99 | |
| 1a | 9a,b | Cbz | v | 74 | 1 : 1.2 | |
| 2a |
| 10a,b | Bn2 | i | 52 | 11 : 1 |
| 2b | 11a,b | Boc | i | 61 | 2.1 : 1 | |
| 2c | 12a,b | Cbz | i | 52 | 2.3 : 1 | |
| 3a |
| 13a,b | Bn2 | i | 44 | 1.9 : 1 |
| 3b | 14a,b | Boc | i | 55 | 3.4 : 1 | |
| 3c | 15a,b | Cbz | i | 41 | 2.3 : 1 | |
| 4a |
| 16a,b | Bn | vi | 61 | 1.3 : 1 |
| 4b | 17a,b | Boc | ii | 77 | 3.7 : 1 | |
| 4c | 18a,b | Cbz | ii | 76 | 2.9 : 1 | |
| 5a |
| 19a,b | Bn | ii | 40 | 3.1 : 1 |
| 5b | 20a,b | Boc | ii | 94 | 95 : 5 | |
| 5c | 21a,b | Cbz | ii | 67 | 13 : 1 | |
(i) LiP(O)(OEt)2, −30 °C → rt, 16–18 h; (ii) HP(O)(OEt)2, 0.1 or 0.2 eq. TEA, neat, r.t. or 50 °C, 1 d or 7 d; (iii) 6a,b, H2/Pd/C, EtOH; 0 °C → rt; (iv) 7a,b, Boc2O, DMAP, MeCN, r.t., 1 d; (v) 7a,b, CbzCl, NaHCO3, CH2Cl2, 0 °C → rt, 1 d; (vi) HP(O)(OEt)2, 1 eq. i-Pr2EtN, CH2Cl2.
Isolated yield.
Crude reaction mixture (19F NMR and/or 31P NMR).
Configuration (2S).
Configuration (2R).
Fig. 2A perspective view of 10a, showing the numbering scheme. Ellipsoids were drawn at the 30% probability level; hydrogen atoms are represented by spheres of arbitrary radii.
Scheme 2Reactions of 6a,b with different nitrogen nucleophiles under K2CO3 conditions.
Fig. 3A perspective view of 23a, showing the numbering scheme. Ellipsoids were drawn at the 50% probability level and hydrogen atoms are represented by spheres of arbitrary radii.
Optimization of the reaction of compounds 6a,b with para-toluenesulfonamide
|
| |||||||
|---|---|---|---|---|---|---|---|
| Entry | d.r. | Base (eq.) | Solvent | Temp. [°C] | Product | Yield | d.r. |
| 1 | 20 : 1 | K2CO3 (1.2 eq.) | MeCN | Reflux | 23a,b | 74 | 6 : 1 |
| 2 | 1 : 1 | K2CO3 (1.2 eq.) | MeCN | Reflux | 23a,b | 87 | 6 : 1 |
| 3 | 1 : 1 | K2CO3 (5 eq.) | MeCN | Reflux | 23a,b | 73 | 9 : 1 |
| 4 | 20 : 1 | K2CO3 (12 eq.) | MeCN | Reflux | 23a,b | 80 | 9 : 1 |
| 5 | 1 : 1 | K2CO3 (12 eq.) | MeCN | Reflux | 23a,b | 96 | 9 : 1 |
| 6 | 1 : 1 | K2CO3 (1.2 eq.) | DMF | 100 | Decomp. | — | — |
| 7 | 1 : 1 | K2CO3 (1.2 eq.) | THF | Reflux | n.r. | — | — |
| 8 | 1 : 1 | K2CO3 (1.2 eq.) | EtOH | Reflux | 23a,b | 60 | 7 : 1 |
| 9 | 1 : 1 | None | MeCN | Reflux | n.r. | — | — |
| 10 | 1 : 1 | TEA (1.2 eq.) | MeCN | Reflux | n.r. | — | — |
| 11 | 1 : 1 | TEA (1.2 eq.) | EtOH | Reflux | n.r. | — | — |
| 12 | 1 : 1 | NaHCO3 (1.2 eq.) | MeCN | Reflux | 1a | 20 | — |
| 13 | 1 : 1 | NaHCO3 (12 eq.) | MeCN | Reflux | 1a | 20 | — |
| 14 | 1 : 1 | NaH (1.2 eq.) | THF | Reflux | 23a,b | 18 | 8 : 1 |
19F NMR and/or 31P NMR yield.
Crude reaction mixture (19F NMR and/or 31P NMR).
Scheme 3Proposed reaction mechanism of 6a,b with TsNH2 under K2CO3 conditions.
Preparation of α-(N-tosyl)aminophosphonates
|
| ||||||
|---|---|---|---|---|---|---|
| Substrate | d.r. | Product | PG | Yield | d.r. | |
| 6a,b | 1 : 1 |
| 23a,b | Bn | 87 | 6 : 1 |
| 7a,b | 1 : 1 | 24a,b | H | 80 | 6 : 1 | |
| 8a,b | 1 : 99 | 25a,b | Boc | — | — | |
| 9a,b | 3 : 1 |
| 38 | Cbz | 41(74) | — |
| 10a,b | 19 : 1 |
| 26a,b | Bn2 | 81 | 99 : 1 |
| 11a,b | 1.9 : 1 | 27a,b | Boc | 78 | 2.5 : 1 | |
| 12a,b | 2.7 : 1 |
| 28a,b | Cbz | 40 | 2.4 : 1 |
| 39 | 11 | 99 : 1 | ||||
| 13a,b | 9 : 1 |
| 29a,b | Bn2 | — | — |
| 14a,b | 5.4 : 1 | 30a,b | Boc | 51 | 3.6 : 1 | |
| 15a,b | 1.7 : 1 | 31a,b | Cbz | 42 | 5.2 : 1 | |
| 16a,b | 1.3 : 1 |
| 32a,b | Bn | — | — |
| 17a,b | 4 : 1 | 33a,b | Boc | 59 | 4.4 : 1 | |
| 18a,b | 3.3 : 1 | 34a,b | Cbz | 75 | 3.7 : 1 | |
| 19a,b | 2.6 : 1 |
| 35a,b | Bn | — | — |
| 20a,b | 99 : 1 | 36a,b | Boc | 72 | 12 : 1 | |
| 21a,b | 13 : 1 | 37a,b | Cbz | 75 | 12 : 1 | |
Isolated yield.
Crude reaction mixture (19F NMR and/or 31P NMR).
After additional 10 hours of heating.
Configuration (2S).
Configuration (2R).
Scheme 4The Felkin–Ahn model of the addition of diethyl phosphite to α-hydroxyphosphonate 20a.
Fig. 4A perspective view of 34a and 36a showing the numbering scheme. Ellipsoids were drawn at the 50% probability level and hydrogen atoms are represented by spheres of arbitrary radii. Only one of the alternative conformations of the C4–C5 ethyl group is shown.
Scheme 5Reaction of N-Cbz protected aziridines 9a,b under K2CO3 conditions.
Fig. 5A perspective view of 38 showing the numbering scheme. Ellipsoids were drawn at the 50% probability level, hydrogen atoms are represented by spheres of arbitrary radii.
Scheme 6Reaction of N-Cbz protected phenylalanine derivatives 12a,b under K2CO3 conditions.