| Literature DB >> 35542132 |
Zhao Qin1,2, Zhao-Guo Zhang2, Hua-Min Liu2, Guang-Yong Qin1, Xue-De Wang2.
Abstract
In this study, three pretreatment processes were evaluated for their effects on the structural features and antioxidant activities of lignins extracted by the acetosolv process from the fruit of Chinese quince. The three pretreatments included dephenolization, sugar removal, and multiple processes (a combination of both dephenolization and sugar removal). The results showed that after sugar removal pretreatment, the carbohydrate content, the molecular weight and S/G value of the lignin fractions decreased. However, after dephenolization pretreatment, the carbohydrate content and the molecular weight of the lignin fractions increased. After sugar removal and dephenolization, there were increases in the temperatures corresponding to the maximal rate of decomposition (DTGmax) in all lignin fractions. The radical scavenging index of lignin after sugar removal pretreatment was higher compared to other pretreatments and no treatment. The results of these tests showed that sugar removal, as a pretreatment, enhanced lignin extraction, yielding pure and highly functional lignins. Additionally, dephenolization or multiple process were beneficial to the acquisition of macromolecular lignins. All the results provided references for the biorefinery of biomass rich in polyphenol and sugar compounds. This journal is © The Royal Society of Chemistry.Entities:
Year: 2018 PMID: 35542132 PMCID: PMC9082293 DOI: 10.1039/c8ra04009e
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 3.361
Carbohydrates associated with AAL fractions
| Samples | Yield (%) | Total sugar (%) | Carbohydrate content | |||||
|---|---|---|---|---|---|---|---|---|
| Ara | Gal | Glu | Xyl | Man | Uro | |||
| AAL-MP | 47.0 | 2.7 | 11.7 | 3.8 | 5.3 | 74.4 | 0.2 | 4.7 |
| AAL-DP | 52.2 | 1.3 | ND | 6.4 | 1.7 | 16.8 | 66.2 | ND |
| AAL-RS | 49.5 | 0.1 | ND | 38.5 | ND | 61.4 | ND | ND |
| AAL-UN | 61.7 | 0.5 | ND | 11.0 | 37.0 | 50.7 | 1.3 | ND |
Ara, arabinose; Gal, galactose; Glu, glucose; Xyl, xylose; Man, mannose; Uro, uronic acid.
ND, not detected.
Fig. 1FT-IR spectra of AAL fractions.
Relative abundances (%) of the lignin-derived products from Py-GC/MS of AAL fractions
| Label | Origin | Compound | AAL-MP | AAL-DP | AAL-RS | AAL-UN |
|---|---|---|---|---|---|---|
| 1 | H | Phenol | 0.82 | 2.65 | 2.02 | 2.03 |
| 2 | H | 2-Methylphenol | 0.32 | 0.52 | 0.55 | 0.71 |
| 3 | G | 2-Methoxyphenol | 8.96 | 12.38 | 15.10 | 18.28 |
| 4 | H | 3-Methylphenol | 2.04 | 1.98 | 2.27 | 2.22 |
| 5 | H | 2,6-Dimethylphenol | ND | 0.14 | 0.13 | ND |
| 6 | G | 2-Methoxy-5-methylphenol | ND | 0.49 | 0.81 | 0.39 |
| 7 | G | 2-Methoxy-4-methylphenol | 6.23 | 5.65 | 5.37 | 6.35 |
| 8 | G | 3,4-Dimethoxytoluene | ND | 0.09 | 0.17 | 1.39 |
| 9 | G | 1,2-Benzenediol | 5.42 | 14.22 | 3.99 | 4.93 |
| 10 | G | 2-Methoxy-4-ethylphenol | 5.93 | 4.59 | 3.04 | 2.70 |
| 11 | G | 2-Methoxy-4-vinylphenol | 10.92 | 4.75 | 6.47 | 4.85 |
| 12 | G | 3-Methyl-1,2-benzenediol | 4.70 | 0.67 | 0.76 | ND |
| 13 | S | 2,6-Dimethoxyphenol | 17.95 | 26.50 | 27.74 | 31.19 |
| 14 | G | 2-Methoxy-4-propylphenol | 1.16 | ND | 1.94 | ND |
| 15 | G | 2-Methoxy-4-(1-propenyl)phenol | 0.69 | 1.10 | 0.34 | 0.28 |
| 16 | S | 1,2,4-Trimethoxybenzene | 8.19 | 11.67 | 7.93 | 7.08 |
| 17 | G | 2-Methoxy-4-(1-propenyl)phenol | 3.63 | ND | 3.04 | 2.90 |
| 18 | S | 2,6-Dimethoxyphenylacetate | ND | ND | 2.09 | 0.66 |
| 19 | G | 1-(4-Hydroxy-3-methoxyphenyl)ethanone | 1.03 | 0.51 | 0.93 | 0.42 |
| 20 | H | 2,4-Bis(1,1-dimethylethyl)phenol | 0.36 | ND | 0.60 | 0.41 |
| 21 | S | 3,4,5-Trimethoxytoluene | 6.45 | 4.38 | 5.04 | 5.16 |
| 22 | G | 1-(4-Hydroxy-3-methoxyphenyl)-2-propanone | 1.37 | 1.21 | 1.70 | 1.29 |
| 23 | S | 2,6-Dimethoxy-4-allylphenol | 2.46 | 1.68 | 1.37 | 1.18 |
| 24 | S | 2,6-Dimethoxy-4-allylphenol | 1.47 | 0.92 | 1.09 | 0.89 |
| 25 | S | 2,6-Dimethoxy-4-allylphenol | 7.81 | 2.97 | 4.41 | 4.05 |
| 26 | S | 1-(4-Hydroxy-3,5-dimethoxyphenyl)ethanone | 2.09 | 0.93 | 1.10 | 0.65 |
| S/G | 1.19 | 1.20 | 1.36 | 1.31 |
ND, not detected.
Fig. 2Thermogravimetric (TG) and derivative thermogravimetric (DTG) curves of AAL fractions. (A) TG; (B) DTG.
Weight-average (Mw) and number-average (Mn) molecular weights of AAL fractions
|
|
|
|
| |
|---|---|---|---|---|
| AAL-MP | 9340 | 5860 | 1.6 | 8690 |
| AAL-DP | 6630 | 4070 | 1.6 | 4990 |
| AAL-RS | 5070 | 3420 | 1.5 | 4040 |
| AAL-UN | 5670 | 4020 | 1.4 | 4500 |
Peak molecular weight.
Quantification of the AAL factions by 31P NMR
| Functional groups | Content (mmol g−1) | |||
|---|---|---|---|---|
| AAL-MP | AAL-DP | AAL-RS | AAL-UN | |
| Aliphatic hydroxyl OH | 0.92 | 1.47 | 1.33 | 1.34 |
| Syringyl phenolic OH | 0.57 | 0.56 | 0.64 | 0.48 |
| Guaiacyl phenolic OH | 1.36 | 1.42 | 1.57 | 1.61 |
|
| 0.05 | 0.11 | 0.08 | 0.08 |
| Carboxylic OH (COOH) | 0.08 | 0.16 | 0.17 | 0.35 |
| Total phenolic OH | 1.98 | 2.09 | 2.30 | 2.18 |
| Total OH | 2.98 | 3.72 | 3.80 | 3.87 |
Fig. 5Antioxidant activities against DPPH (A) and RSI value (B) of the AAL fractions.
Fig. 32D HSQC spectra of AAL-UN and AAL-RS obtained from Chinese quince fruit. The side-chain region: (A) AAL-UN; (B) AAL-RS. The aromatic region: (C) AAL-UN; (D) AAL-RS.
Fig. 4Main substructures presented in AAL-UN and AAL-RS: (A) β-O-4 aryl ether substructures; (A′) γ-acylated β-O-4 aryl ether substructures; (B) resinol substructures; (C) phenylcoumaran substructures; (H) p-hydroxyphenyl units; (S) syringyl units; (G) guaiacyl units.
Quantification of substructures from AAL fractions by 2D-HSQC NMR
| Lignin inter-unit linkages | Percentage (%) | |
|---|---|---|
| AAL-UN | AAL-RS | |
| β- | 45.95 | 45.50 |
| β-β (Resinols) (B) | 23.77 | 15.75 |
| β-5 (Phenylcoumarans) (C) | 30.27 | 38.76 |
| S/G ratio | 1.90 | 1.66 |
S/G ratio was obtained by the equation: S/G ratio = 0.5 IS2,6/IG2.