| Literature DB >> 35539751 |
Masanori Kitamura1, Suguru Sasaki1, Riho Nishikawa1, Kohei Yamada1, Munetaka Kunishima1.
Abstract
In this paper, we discuss the synthesis of imido-substituted chlorotriazines and demonstrate their use in dehydrative condensation reactions. Chemoselective amide-forming reactions of amino alcohols using succinimido-substituted chlorotriazine (2A) proceeded smoothly. Occasionally, nonselectivity was problematic during the synthesis of hydroxy-substituted amides. Moreover, it was noteworthy that this method was applicable to hydroxy-substituted carboxylic acids that could have formed a lactone or an ester during the carboxylic acid activation step. The imido-substituted chlorotriazine (2A) was superior to the amido-substituted chlorotriazine and 2-chloro-4,6-dimethoxy-1,3,5-triazine (CDMT) in terms of reaction rates and yields. This journal is © The Royal Society of Chemistry.Entities:
Year: 2018 PMID: 35539751 PMCID: PMC9081387 DOI: 10.1039/c8ra03057j
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 3.361
Scheme 1Triazine-based condensing reagents.
Fig. 1Structures of amido- or imido-substituted chlorotriazines.
Scheme 2Synthesis of chlorotriazines (2A, 2B, and 2D).
Scheme 3Amide-forming reactions of carboxylic acid 5a and amine 6a using imido-substituted chlorotriazines 2.
Amide-forming reactions using the imido-substituted chlorotriazines/NMM system
| Entry | Chlorotriazine | Yield | ||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| In MeOH | In THF | In iPrOH | ||||||||||
| 7a | 8 | 9a | Time | 7a | 8 | Time | 7a | 8 | 9b | Time | ||
| 1 | 2A | 69 | 3 | 11 | 3 h | 62 | 35 | 3 h | 84 | 2 | Trace | 30 min |
| 2 | 2B | 67 | — | 15 | 3 h | 53 | — | 3 h | — | — | — | — |
| 3 | 2D | 72 | 4 | 5 | 2 h | 58 | 41 | 3 h | 83 | 8 | 2 | 3 h |
Based on 1H NMR.
Not determined.
Not conducted.
The scope of amide-forming reactions of carboxylic acids 5 with amines 6
|
| ||||||
|---|---|---|---|---|---|---|
| Entry | Chlorotriazine | Carboxylic acid 5 | Amine 6 | Amide 7 | Time | Yield |
| 1 | 2A | 5a | 6a | 7a | 40 min | 91 (83) |
| 2 | CDMT | 40 min | 86 | |||
| 3 | 2A | 5a | H2N–Ph 6b |
| 30 min | 91 (90) |
| 4 | 2D | 20 min | 91 | |||
| 5 | CDMT | 30 min | 65 | |||
| 6 | 2A | 5a |
|
| 2 h | 92 (90) |
| 7 | 2D | 2 h | 71 | |||
| 8 | 2D | 7 h | 93 | |||
| 9 | CDMT | 2 h | 34 | |||
| 10 | 2A | iPr–CO2H 5b | H2N–iPr 6d |
| 5 h | 91 (69) |
| 11 | CDMT | 5 h | 82 | |||
| 12 | 2A |
| 6a |
| 5 h | 78 (63) |
| 13 | CDMT | 5 h | 79 | |||
| 14 | 2A | 5c | 6d |
| 24 h | 77 (75) |
| 15 | CDMT | 24 h | 84 | |||
| 16 | 2A | 5c | 6b |
| 8 h | 69 (60) |
| 17 | CDMT | 8 h | 25 | |||
| 18 | 2A |
| 6a |
| 5 h | 96 (94 |
| 19 | CDMT | 5 h | 86 | |||
| 20 | 2A | Boc-Leu-OH 5e | H-Phe-OMe 6e | Boc-Leu-Phe-OMe 7i | 1 h | 94 (90) |
NMR yields. Isolated yields are given in the parentheses.
Reaction time of the first step was 15 min.
The desired product was isolated in 81% yield only by extraction and recrystallization without column chromatography.
Boc-Leu-OH (1.0 eq.), 2A (1.05 eq.), NMM (1.2 eq.), H-Phe-OMe·HCl (1.2 eq.), and EtNiPr2 (1.2 eq.) were used.
Amide-forming reactions in the presence of free hydroxy groups
| Entry | Chlorotriazine | Carboxylic acid 5 | Amine 6 | Amide 7 | Time | Yield |
|---|---|---|---|---|---|---|
| 1 | 2A |
| 6c |
| 4 h | 81 (75) |
| 2 | CDMT | 4 h | 30 | |||
| 3 | 2A | 5a |
|
| 15 min | 88 (84) |
| 4 | CDMT | 15 min | 71 | |||
| 5 | 2A | 5a |
|
| 6 h | 97 (85) |
| 6 | CDMT | 6 h | 73 | |||
| 7 | 2A | 5a |
|
| 15 min | 90 (73) |
| 8 | CDMT | 15 min | 54 | |||
| 9 | 2A |
|
| Boc-Tyr-Gly-O | 1 h | 80 (71) |
NMR yields. Isolated yields are given in the parentheses.
3-Phenylpropionic acid (1.1 eq.), 2A or CDMT (1.0 eq.), NMM (1.05 eq.), and 4-aminophenol (1.0 eq.) were used.
Boc-Tyr-OH (1.0 eq.), 2A (1.0 eq.), NMM (1.2 eq.), H-Gly-OBu·HCl (2.0 eq.), and EtNiPr2 (2.0 eq.) were used.
Fig. 2Kinetic study of amide 7l formation using 2A, 1A, and CDMT.
Amide-forming reactions using sterically hindered tert-amines that were incapable of reacting with CDMT
|
| |||
|---|---|---|---|
| Entry |
| Time (min) | Yield |
| 1 |
| 30 | 78 |
| 2 |
| 30 | 77 |
| 3 |
| 60 | 62 |
| 4 | Et3N | 60 | 63 |
NMR yields.