| Literature DB >> 31979323 |
Ying He1, Yuan Jia2, Fachuang Lu1,2.
Abstract
Various ferulic acid (FA) dimers occurring in plant cell walls, such as 8-5-, 8-O-4-, 5-5-, and 8-8- coupled dimers, are effective antioxidants and potential antimicrobials. It is necessary to access these diferulates as reference compounds to validate those isolated from plants. 3,6-bis(4-hydroxy-3-methoxyphenyl)-tetrahydrofuro-[3,4-c]furan-1,4-dione, a 8-8-coupled FA dilactone generated from ferulic acid via radical coupling, has been used to synthesize 8-8-coupled FA dimers although few reports investigated the distribution of products and mechanisms involved in the transformation of FA dilactone. In this work, the FA dilactone, obtained from FA by a peroxidase-catalyzed radical coupling, was reacted under various base/acid conditions. Effects of reaction conditions and workup procedures on the distribution of products were investigated by GC-MS. The isolated products from such treatments of FA dilactone were characterized by NMR. New derivatives of FA dimer including 2-(4-hydroxy-3-methoxybenzylidene)-3-(hydroxyl-(4-hydroxy-3-methoxyphenyl)methyl)succinic acid and 2-(bis(4-hydroxy-3-methoxyphenyl)-methyl)-succinic acid were produced from NaOH treatment. Another novel 8-8-coupled cyclic FA dimer, diethyl 6-hydroxy-1-(4-hydroxy-3-methoxyphenyl)-7-methoxy-1,2-dihydronaphthalene-2,3-dicarboxylate was identified in products from FA dilactone treated by dry HCl in absolute ethanol. Mechanisms involved in such transformations were proposed.Entities:
Keywords: GC-MS; NMR; alkali/acid treatment; dehydrodimers; radical coupling
Year: 2020 PMID: 31979323 PMCID: PMC7072328 DOI: 10.3390/biom10020175
Source DB: PubMed Journal: Biomolecules ISSN: 2218-273X
Figure 1Left: Total ion chromatograms of crude products obtained from transformation of FA dilactone by 12-h alkali treatments: (A) 4 eq. 0.1M NaOH; (B) 15 eq. 0.1M NaOH; (C) 15 eq. 0.5 M NaOH; and (D–H) 120 eq. NaOH (D) 1.0 M; (E) 2.0 M; (F) 4.0 M; (G) 8.0 M; and (H) 16.0 M). Right: The structures of compounds 1–8 described in this work.
Figure 2In situ 1H NMR (in D2O) of products from ferulic acid (FA) dilactone treated by (A) 1 M Na2CO3 and (B) 1 M NaOH. (C) 1H NMR (in Acetone-d6) of crude products recovered from 2 M NaOH treatment of FA dilactone.
Figure 3HMBC NMR (B–D) and mass spectra (A) of compound 8, showing characteristic features to establish its chemical structure shown.
The products and yields (%) obtained under various base concentrations.
| Base Concentrations | Eq. | Temp. (°C) | Time (h) | Products (%) | |||||
|---|---|---|---|---|---|---|---|---|---|
| 2 | 3 | 5 | 6 | 7 | 8 | ||||
| 0.1 M NaOH | 3 | 25 | 16 | 5.8 | 91.4 | ||||
| 0.1 M NaOH | 4 | 5.6 | 92.1 | ||||||
| 0.1 M NaOH | 15 | 6.0 | 89.3 | ||||||
| 0.5 M NaOH | 15 | 2.8 | 65.4 | 21.2 | 4.0 | ||||
| 1 M NaOH | 120 | 3.0 | 7.6 | 79.5 | 3.3 | ||||
| 2 M NaOH | 2.4 | 8.7 | 78.9 | 3.7 | |||||
| 4 M NaOH | 87.2 | 0.8 | |||||||
| 8 M NaOH | 62.5 | 23.4 | 3.7 | ||||||
| 16 M NaOH | 21.8 | 15.5 | 60.2 | ||||||
| 1 M Na2CO3 | 120 | 25 | 16 | 8.7 | 88.7 | ||||
| 2 M Na2CO3 | 9.2 | 89.5 | |||||||
| 5 M Na2CO3 | 8.7 | 89.2 | |||||||
| 0.5 M NH4·OH | 120 | 25 | 16 | 31.5 | 67.7 | ||||
| 5 M NH4·OH | 42.4 | 56.8 | |||||||
| 14 M NH4·OH | 50.9 | 46.5 | |||||||
Figure 4The proposed mechanisms leading to the formation of compounds 2 and 3.
Figure 5The proposed mechanisms leading to the formation of products from FA dilactone in aqueous NaOH solution followed by acidification. Note: all compounds are racemic although one isomer is drawn.
Figure 6Partial 1H NMR spectra showing the characteristic chemical shifts of A-7 protons in crude products from acid catalyzed transformation of FA dilactone and compounds 9 and 10.
Figure 7Proposed mechanisms involved in acid treatment of FA dilactone leading to the formation of compounds 10 and 11.
The molar ratios of products from FA dilactone under various acidic conditions *.
| Acid Concentrations | Reaction Media | Ratios of Products (%) |
|---|---|---|
| 1.0 M HCl | Dry HCl in ethanol | |
| 0.5 M HCl | 50% dioxane | |
| 1.2 M HCl | 50% dioxane | |
| 1.2 M HCl | 99% dioxane |
* Note: reactions were performed at 70 °C for 12 h. The ratios were determined by 1H NMR. The ratios among 11, 3a, and 3b were determined according to the corresponding ratios among 10, 9a, and 9b after esterification.