| Literature DB >> 31296858 |
Shenci Lu1,2, Shawn Voon Hwee Ng2, Kaitlyn Lovato3, Jun-Yang Ong2, Si Bei Poh2, Xiao Qian Ng2, László Kürti4, Yu Zhao5.
Abstract
The importance of axial chirality in enantioselective synthesis has been widely recognized for decades. The practical access to certain structures such as biaryl amino phenols known as NOBINs in enantiopure form, however, still remains a challenge. In drug delivery, the incorporation of axially chiral molecules in systematic screening has also received a great deal of interest in recent years, which calls for innovation and practical synthesis of structurally different axially chiral entities. Herein we present an operationally simple catalytic N-alkylation of sulfonamides using commercially available chiral amine catalysts to deliver two important classes of axially chiral compounds: structurally diverse NOBIN analogs as well as axially chiral N-aryl sulfonamides in excellent enantiopurity. Structurally related chiral sulfonamide has shown great potential in drug molecules but enantioselective synthesis of them has never been accomplished before. The practical catalytic procedures of our methods also bode well for their wide application in enantioselective synthesis.Entities:
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Year: 2019 PMID: 31296858 PMCID: PMC6624369 DOI: 10.1038/s41467-019-10940-4
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919
Fig. 1Application and preparation of various axially chiral entities. a Representative well-established chiral biaryls. b Axially chiral amino alcohol NOBIN. c Other types of axially chiral entities. d Our strategies to axially chiral sulfonamides and NOBINs. BINOL: 1,1’-bi-2-naphthol
Optimization of resolution of amino phenol 1a
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| Entry | 2 | Cat | Solvent | Conv. (%)b | Product, ee (%)c | 1a, ee (%)c |
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| 1 | 2a | A | CH2Cl2 | 30 | 3a, 60 | 26 | 5 |
| 2 | 2a | B | CH2Cl2 | 26 | 3a, −26 | −9 | 2 |
| 3 | 2a | C | CH2Cl2 | 76 | 3a, −7 | −23 | 1.4 |
| 4e | 2a | D | CH2Cl2 | 5 | 3a, 73 | 4 | 6.6 |
| 5 | 2a | E | CH2Cl2 | 28 | 3a, 74 | 29 | 9 |
| 6e | 2a | F | CH2Cl2 | 9 | 3a, 78 | 8 | 8.7 |
| 7 | 2a | E | CH3CN | 80 | 3a, 22 | 90 | 4 |
| 8 | 2a | E | THF | 28 | 3a, 20 | 8 | 1.6 |
| 9 | 2a | E | EtOAc | 28 | 3a, 36 | 14 | 2.4 |
| 10 | 2a | E | 1:1 CH2Cl2/CH3CN | 62 | 3a, 50 | 82 | 7 |
| 11f | 2b | E | 1:1 CH2Cl2/CH3CN | 60 | 4a, 65 | 98 | 21 |
| 12g | 2b | E | 1:1 CH2Cl2/CH3CN | 39 | 4a, 86 | 55 | 23 |
aUnless noted otherwise, the reactions were performed with 1a (0.04 mmol, 1.0 equiv.), 2 (0.8 equiv.), catalyst (20 mol%) in solvent (0.5 mL) at 24 oC for 4 h
bDetermined by 1H NMR
cDetermined by chiral HPLC
dS = ln[(1 − Conv.)(1 − ee)]/ln[(1 − Conv.)(1 + ee)]
e15 h instead of 4 h
fThe reaction time was 24 h
gUse of 10 mol% E and with 24 h reaction time
Fig. 2Scope and structural exploration of NOBINs from kinetic resolution. a Substrates from one-step biaryl sulfonamide phenol synthesis. b More diverse biaryl amino phenols. *0 ℃ reaction for 48 h
Fig. 3Large scale synthesis, derivatization and application of NOBIN analogs. a Gram-scale substrate synthesis and resolution. b Access the the enantiomeric NOBIN analog. c Further derivatization to enlarge the scope of NOBIN analogs. d Application to asymmetric catalysis
Fig. 4Discovery and exploration of axially chiral sulfonamides. a Observation of axial chirality in N-aryl sulfonamide. b Exploration of the stability of axial chirality. c Optimization of atroposelective sulfonamide synthesis
Fig. 5Scope of axially chiral sulfonamides and derivatization to enantioenriched indolines. a Scope of sulfonamides accessible using our method. b Access to indoles with retention of enantiopurity