| Literature DB >> 26023838 |
Rodrigo V Pirovani1, Gilmar A Brito2, Rosimeire C Barcelos3, Ronaldo A Pilli4.
Abstract
Lyngbyabellin M is a non-ribosomal peptide synthetase/polyketide synthase derived metabolite isolated from the cyanobacterium M. bouillonii displaying thiazole rings and a distinct chlorinated octanoic acid chain. Its absolute configuration was proposed based on the comparison of its spectroscopic data with those of other representatives of this family of marine natural products, as well as degradation and derivatization studies. Here the first total synthesis of (+)-lyngbyabellin M is described based on the coupling of three key intermediates: two chiral thiazole moieties and an anti hydroxycarboxylic acid prepared stereoselectively via a boron enolate mediated aldol reaction directed by Masamune's chiral auxiliary.Entities:
Keywords: chiral thiazoles; lyngbyabellin M; stereoselective anti aldol; total synthesis
Mesh:
Substances:
Year: 2015 PMID: 26023838 PMCID: PMC4483630 DOI: 10.3390/md13063309
Source DB: PubMed Journal: Mar Drugs ISSN: 1660-3397 Impact factor: 5.118
Figure 1Chemical structures of lyngbyabellins A, B, K, M and Dolabellin.
Scheme 1Retrosynthetic analysis for lyngbyabellin M (4).
Scheme 2Synthesis of thiazole A.
Scheme 3Synthesis of thiazole 13.
Hydrolysis conditions for the preparation of fragment B.
| Entry | Conditions | Yield (%) | [α]D25 ( |
|---|---|---|---|
| 1 | MeONa/MeOH, rt, 4 h | 85 | −25 (0.78) |
| 2 | K2CO3, MeOH, reflux, 2 h | 70 | −25 (0.65) |
| 3 | (i) LiOH.H2O, MeOH, rt, 1 h | 34 | −20 (0.66) |
| 4 | Bu2SnO, MeOH, reflux, 12 h | 71 | −27 (0.78) |
Scheme 4Synthesis of aldehyde 17.
Scheme 5Alternative synthesis of aldehyde 17.
Scheme 6Synthesis of carboxilyc acid C.
Scheme 7Conversion of ent-21 to acetonide 22.
Scheme 8Preparation of the MTPA esters of ent-21.
Chemical shifts and Δδ − values for MTPA esters derived from ent-21.
| H | ( | ( | Δ (δ | ||
|---|---|---|---|---|---|
| δH (ppm) | Multiplicity ( | δH (ppm) | Multiplicity ( | ||
| H-5 | 1.98 |
| 1.93 |
| +0.053 |
| H-14 | 0.90 | d (3H, | 1.02 | d (3H, | −0.12 |
| H-15 | 5.73 | d (1H, | 5.76 | d (1H, | −0.034 |
| H-16 | 4.04 | 4.06 | −0.02 | ||
| H-19 | 1.07 | d (3H, | 1.10 | d (3H, | −0.036 |
| H-37/38 | 2.37 | 2.37 | −0.025 | ||
| H-39 | 2.20 | 2.21 | −0.005 | ||
Scheme 9Proposed transition state model for the aldol reaction.
Scheme 10Final steps in the total synthesis of lyngbyabellin M (4).
Comparison of the 13C-NMR data for natural (CDCl3, 125 MHz) and synthetic (CDCl3, 125 MHz) lyngbyabellin M.
| Carbon | Natural Lyngbyabellin M *δ (ppm) | Synthetic Lyngbyabellin M δ (ppm) |
|---|---|---|
| 174.4 | 174.3 | |
| 44.4 | 44.4 | |
| 75.4 | 75.3 | |
| 34.4 | 34.4 | |
| 21.5 | 21.5 | |
| 50.0 | 49.9 | |
| 90.8 | 90.8 | |
| 37.7 | 37.6 | |
| 15.0 | 14.9 | |
| 161.8 | 161.7 | |
| 147.6 | 147.5 | |
| 128.2 | 128.2 | |
| 171.2 (172.1) ** | 172.1 | |
| 70.30 (70.05) ** | 70.0 | |
| 70.26 (70.15) ** | 70.2 | |
| 161.7 (160.6) * | 160.5 | |
| 145.9 | 145.7 | |
| 129.2 | 129.1 | |
| 170.5 | 170.4 | |
| 77.5 (77.1) ** | 77.2 | |
| 34.4 (34.2) ** | 34.3 | |
| 19.5 | 19.4 | |
| 16.8 | 16.7 | |
| 61.8 | 61.7 | |
| 14.7 | 14.6 |
* Spectroscopic data as appeared in [10]; ** Revised data by Gerwick and coworkers [28].