| Literature DB >> 36076845 |
Francisca S Teixeira1, Lígia L Pimentel1, Susana S M P Vidigal1, Paula T Costa1, Manuela E Pintado1, Luís M Rodríguez-Alcalá1.
Abstract
Sugarcane is primarily harvested to meet up to 80% of global sugar demand. Recently, lipids recovered from their biomass (straw and bagasse) have attracted much attention due to their possible utilisation in biofuel production but also by the presence of health-promoting compounds as phytosterols (i.e., improvement of cardiovascular function) or 1-octacosanol (i.e., anti-obesity). Although this fraction is commonly obtained through solid-liquid isolation, there is scarce information about how different solvents affect the composition of the extracts. This research work aimed to study whether, in sugarcane straw and bagasse samples, Soxtec extraction with widely used dichloromethane (DCM) would be suitable to recover most of the lipid classes when compared to other available solvents such as food grade ethanol (EtOH) or solvents without regulation restrictions for food and drug applications (i.e., acetone and ethyl acetate). The obtained results allow concluding that sugarcane waxes from straw and bagasse are complex lipid mixtures of polar and non-polar compounds. According to the extraction yield, the best results were obtained with ethanol (5.12 ± 0.30% and 1.97 ± 0.31%) for both straw and bagasse, respectively. The extractant greatly influenced the lipid composition of the obtained product. Thus, DCM enriched the isolates in glycerolipids (mono-, di- and triglycerides), free fatty acids, fatty alcohols, fatty aldehydes, phytosterols and hydrocarbons. On the other hand, EtOH resulted in polar isolates rich in glycolipids. Therefore, depending on the application and objectives of future research studies, the solvent to recover such lipids needs to be carefully selected.Entities:
Keywords: 1-octacosanol; bagasse; ethanol; glycolipids; lipids; phytosterols; straw; sugarcane
Year: 2022 PMID: 36076845 PMCID: PMC9455893 DOI: 10.3390/foods11172661
Source DB: PubMed Journal: Foods ISSN: 2304-8158
Figure 1DSC temperature programme.
Figure 2Lipophilic extraction yields (%) of straw and bagasse samples with different solvents. Different letters indicate statistically significant differences between solvents (p < 0.05). a, b, c and d for straw samples and x and y for bagasse samples.
Lipid classes composition (g/100 g of lipids) of different sugarcane straw extracts.
| STRAW | ||||||||
|---|---|---|---|---|---|---|---|---|
| Compound | EtOH | AcO | EtAc | DCM | ||||
|
| 24.36 d ± 0.06 | 31.95 ab ± 3.62 | 29.96 c ± 1.35 | 37.24 a ± 1.07 | ||||
|
| 2.60 d ± 0.04 | 3.70 b ± 0.06 | 2.84 c ± 0.01 | 4.24 a ± 0.01 | ||||
|
| 3.66 d ± 0.04 | 4.08 c ± 0.04 | 4.48 b ± 0.26 | 5.12 a ± 0.27 | ||||
|
| 7.14 c ± 0.12 | 11.32 a ± 0.55 | 8.24 b ± 0.05 | 11.50 a ± 0.10 | ||||
|
| 3.58 ab ± 0.47 | 3.58 b ± 0.09 | 3.54 b ± 0.04 | 4.15 a ± 0.14 | ||||
|
| 6.18 a ± 0.60 | 4.88 b ± 0.16 | 6.44 a ± 0.12 | 6.38 a ± 0.29 | ||||
|
| 14.58 c ± 0.73 | 15.04 bc ± 1.35 | 19.60 a ± 1.53 | 18.63 ab ± 2.17 | ||||
|
| 1.38 b ± 0.09 | 1.40 b ± 0.11 | 1.67 ab ± 0.09 | 2.18 a ± 0.22 | ||||
|
| 34.98 a ± 1.66 | 23.62 b ± 2.18 | 23.25 b ± 1.00 | 10.55 c ± 1.83 | ||||
|
| 0.44 a ± 0.04 | 0.17 b ± 0.02 | n.d c | n.a | n.d c | n.a | ||
|
| 0.45 a ± 0.09 | 0.20 b ± 0.07 | n.d c | n.a | n.d c | n.a | ||
|
| 0.65 a ± 0.15 | 0.06 b ± 0.01 | n.d c | n.a | n.d c | n.a | ||
Results expressed as mean ± SD (n = 3). EtOH: ethanol; AcO: acetone; EtAc: ethyl acetate; DCM: dichloromethane. n.d: not detected; n.a: not applied. Different superscript letters in a row indicate statistically significant differences between solvents (p < 0.05).
Lipid classes composition (g/100 g of lipids) of different sugarcane bagasse extracts.
| BAGASSE | ||||||||||
|---|---|---|---|---|---|---|---|---|---|---|
| Compound | EtOH | AcO | EtAc | DCM | ||||||
|
| 15.50 d ± 0.44 | 18.72 c ± 0.08 | 22.66 b ± 1.35 | 38.93 a ± 4.93 | ||||||
|
| 1.48 d ± 0.08 | 1.80 c ± 0.05 | 2.08 b ± 0.22 | 5.28 a ± 0.07 | ||||||
|
| 1.73 c ± 0.02 | 2.24 c ± 0.08 | 2.25 b ± 0.11 | 2.55 a ± 0.16 | ||||||
|
| 8.56 d ± 0.01 | 11.78 c ± 0.02 | 14.17 b ± 0.22 | 19.80 a ± 0.91 | ||||||
|
| 1.96 c ± 0.07 | 2.77 b ± 0.01 | 3.61 a ± 0.19 | 3.70 a ± 0.13 | ||||||
|
| 3.19 b ± 0.08 | 4.48 a ± 0.05 | 4.67 a ± 0.06 | 4.18 a ± 0.68 | ||||||
|
| 5.51 c ± 0.34 | 10.05 b ± 0.13 | 12.60 a ± 0.37 | 13.99 a ± 1.08 | ||||||
|
| 1.22 b ± 0.21 | 2.87 a ± 0.20 | 2.68 b ± 0.01 | 1.80 b ± 0.09 | ||||||
|
| 60.15 a ± 0.02 | 45.29 b ± 0.34 | 35.28 c ± 1.07 | 9.76 d ± 0.28 | ||||||
|
| 0.69 a ± 0.08 | n.d b | n.a | n.d b | n.a | n.d b | n.a | |||
Results expressed as mean ± SD (n = 3). EtOH: ethanol; AcO: acetone; EtAc: ethyl acetate; DCM: dichloromethane. n.d: not detected; n.a: not applied. Different superscript letters in a row indicate statistically significant differences between solvents (p < 0.05).
Profile (g/kg) in free fatty acids, hydrocarbons, fatty alcohols, sterols, fatty aldehydes, and terpenes of different sugarcane straw extracts.
| STRAW | ||||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| EtOH | AcO | EtAc | DCM | |||||||||
|
| 4.36 c ± 0.31 | 7.20 b ± 0.20 | 20.15 a ± 0.24 | 8.45 b ± 0.63 | ||||||||
|
| 0.24 c ± 0.03 | 0.40 b ± 0.09 | 0.48 b ± 0.03 | 1.40 a ± 0.24 | ||||||||
|
| 0.49 c ± 0.10 | 1.20 a ± 0.12 | 0.64 b ± 0.07 | 1.25 a ± 0.21 | ||||||||
|
| 4.89 c ± 0.49 | 13.33 b ± 1.08 | 12.58 b ± 0.43 | 19.15 a ± 0.32 | ||||||||
|
| 0.55 c ± 0.11 | 1.98 b ± 0.12 | 2.23 b ± 0.11 | 4.09 a ± 0.78 | ||||||||
|
| 2.50 d ± 0.50 | 6.00 c ± 1.04 | 8.88 b ± 0.32 | 15.21 a ± 2.78 | ||||||||
|
| 1.69 c ± 0.22 | 4.01 b ± 0.55 | 4.12 b ± 0.17 | 6.58 a ± 1.20 | ||||||||
|
| 0.31 c ± 0.05 | 1.50 ab ± 0.22 | 1.48 b ± 0.09 | 1.91 a ± 0.23 | ||||||||
|
| n.d c | n.a | 0.40 b ± 0.14 | 0.46 b ± 0.02 | 0.69 a ± 0.14 | |||||||
|
| n.d c | n.a | 0.58 b ± 0.19 | 0.59 b ± 0.02 | 1.11 a ± 0.21 | |||||||
|
| 0.24 d ± 0.08 | 1.63 b ± 0.22 | 0.77 c ± 0.13 | 6.89 a ± 1.04 | ||||||||
|
| 15.26 d ± 1.25 | 38.24 c ± 3.65 | 52.38 b ± 2.84 | 66.73 a ± 9.20 | ||||||||
|
| 2.35 c ± 0.35 | 5.58 b ± 0.16 | 2.28 c ± 0.09 | 18.19 a ± 2.52 | ||||||||
|
| 1.12 b ± 0.22 | 3.52 c ± 0.15 | 1.65 b ± 0.11 | 13.84 a ± 1.46 | ||||||||
|
| 1.39 b ± 0.28 | 4.48 c ± 0.21 | 2.01 b ± 0.22 | 19.43 a ± 2.56 | ||||||||
|
| n.d c | n.a | 0.35 b ± 0.06 | n.d c | n.a | 2.17 a ± 0.22 | ||||||
|
| 4.86 c ± 0.89 | 13.93 b ± 1.14 | 5.94 c ± 0.37 | 53.63 a ± 6.73 | ||||||||
|
| n.d b | n.a | n.d b | n.a | n.d b | n.a | 0.40 a ± 0.08 | |||||
|
| n.d d | n.a | 0.45 b ± 0.08 | 0.28 c ± 0.01 | 0.94 a ± 0.06 | |||||||
|
| n.d d | n.a | 0.47 b ± 0.07 | 0.24 c ± 0.02 | 1.32 a ± 0.20 | |||||||
|
| 0.28 d ± 0.05 | 0.97 b ± 0.15 | 0.49 c ± 0.05 | 2.18 a ± 0.58 | ||||||||
|
| 0.28 d ± 0.05 | 1.89 b ± 0.15 | 1.01 c ± 0.07 | 4.84 a ± 0.91 | ||||||||
|
| 0.43 c ± 0.06 | 0.89 b ± 0.19 | 0.94 b ± 0.08 | 2.87 a ± 0.57 | ||||||||
|
| 0.89 c ± 0.11 | 3.59 b ± 0.34 | 2.16 b ± 0.05 | 11.81 a ± 1.62 | ||||||||
|
| 1.56 c ± 0.09 | 3.97 b ± 0.69 | 3.96 b ± 0.35 | 11.00 a ± 2.01 | ||||||||
|
| 1.17 c ± 0.03 | 2.62 b ± 0.34 | 2.49 b ± 0.15 | 8.49 a ± 0.99 | ||||||||
|
| 4.06 c ± 0.63 | 11.07 b ± 1.73 | 9.55 b ± 0.61 | 34.16 a ± 2.73 | ||||||||
|
| 1.63 a ± 0.26 | 0.62 b ± 0.09 | 0.35 c ± 0.05 | n.d d | n.a | |||||||
|
| 0.25 c ± 0.05 | 1.70 b ± 0.20 | 0.39 c ± 0.02 | 9.22 a ± 1.38 | ||||||||
|
| 0.61 c ± 0.08 | 1.52 b ± 0.32 | 1.39 b ± 0.11 | 4.65 a ± 0.91 | ||||||||
Results expressed as mean ± SD (n = 3). EtOH: ethanol; AcO: acetone; EtAc: ethyl acetate; DCM: dichloromethane. FFAs: free fatty acids; FOHs: fatty alcohols; STs: sterols; FALs: fatty aldehydes; n.d: not detected; n.a: not applied. Different superscript letters in a row indicate statistically significant differences between solvents (p < 0.05).
Profile (g/kg) in free fatty acids, hydrocarbons, fatty alcohols, sterols, fatty aldehydes and terpenes of different sugarcane bagasse extracts.
| BAGASSE | ||||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| EtOH | AcO | EtAc | DCM | |||||||||
|
| n.d c | n.a | 0.16 b ± 0.02 | 0.37 a ± 0.08 | n.d c | n.a | ||||||
|
| n.d b | n.a | 0.40 a ± 0.02 | n.d b | n.a | n.d b | n.a | |||||
|
| 2.86 c ± 0.62 | 6.52 a ± 0.86 | 6.92 a ± 0.62 | 4.33 b ± 0.58 | ||||||||
|
| 1.03 b ± 0.16 | 3.68 a ± 0.62 | 2.70 a ± 0.23 | 1.77 b ± 0.17 | ||||||||
|
| 1.57 c ± 0.47 | 4.50 a ± 0.06 | 4.37 a ± 0.17 | 2.49 b ± 0.28 | ||||||||
|
| 0.87 b ± 0.32 | 2.49 a ± 0.35 | 2.47 a ± 0.09 | 1.13 b ± 0.25 | ||||||||
|
| 0.44 c ± 0.08 | 1.27 a ± 0.16 | 1.28 a ± 0.17 | 0.92 b ± 0.19 | ||||||||
|
| n.d c | n.a | 0.88 a ± 0.13 | 0.96 a ± 0.14 | 0.48 b ± 0.11 | |||||||
|
| 0.38 c ± 0.03 | 1.66 a ± 0.18 | 1.76 a ± 0.36 | 1.43 a ± 0.24 | ||||||||
|
| 2.84 c ± 0.90 | 13.82 a ± 1.23 | 11.09 b ± 2.61 | 13.81 ab ± 1.50 | ||||||||
|
| 9.98 c ± 1.68 | 35.38 a ± 2.94 | 31.92 ab ± 3.14 | 26.36 b ± 3.22 | ||||||||
|
| 5.89 c ± 1.16 | 19.64 a ± 1.92 | 11.21 b ± 2.81 | 21.64 a ± 2.07 | ||||||||
|
| 1.29 d ± 0.21 | 3.67 b ± 0.59 | 2.21 c ± 0.51 | 4.31 a ± 0.22 | ||||||||
|
| 0.68 d ± 0.15 | 2.01 b ± 0.44 | 1.16 c ± 0.27 | 3.21 a ± 0.21 | ||||||||
|
| 7.85 c ± 1.54 | 25.32 a ± 2.74 | 14.59 b ± 3.33 | 29.16 a ± 2.40 | ||||||||
|
| 0.36 c ± 0.10 | 1.67 a ± 0.17 | 0.99 b ± 0.21 | 2.15 a ± 0.36 | ||||||||
|
| n.d b | n.a | n.d b | n.a | 0.41 a ± 0.07 | 0.20 a ± 0.04 | ||||||
|
| n.d d | n.a | 0.53 b ± 0.13 | 0.35 c ± 0.09 | 2.87 a ± 2.22 | |||||||
|
| n.d b | n.a | 0.46 a ± 0.03 | n.d b | n.a | n.d b | n.a | |||||
|
| 0.36 d ± 0.10 | 2.66 b ± 0.08 | 1.75 c ± 0.30 | 5.23 a ± 0.44 | ||||||||
|
| 0.65 c ± 0.08 | 1.87 a ± 0.16 | 1.78 a ± 0.15 | 1.33 b ± 0.19 | ||||||||
|
| 1.48 c ± 0.36 | 5.77 b ± 0.75 | 4.55 b ± 0.88 | 7.06 a ± 0.75 | ||||||||
|
| 1.83 c ± 0.29 | 5.82 a ± 0.70 | 5.87 a ± 0.55 | 4.31 b ± 0.37 | ||||||||
|
| 0.86 b ± 0.15 | 3.34 a ± 0.35 | 3.11 a ± 0.43 | 3.94 a ± 0.58 | ||||||||
|
| 2.68 c ± 0.48 | 9.53 b ± 0.98 | 9.27 b ± 1.18 | 11.59 a ± 1.72 | ||||||||
|
| 7.50 c ± 1.04 | 26.33 ab ± 2.69 | 24.59 b ± 3.10 | 28.22 a ± 1.17 | ||||||||
|
| 36.11 a ± 2.13 | 11.29 b ± 0.30 | 7.93 c ± 0.71 | n.d d | n.a | |||||||
|
| 2.27 d ± 0.84 | 7.91 b ± 0.08 | 4.40 c ± 1.27 | 13.79 a ± 1.65 | ||||||||
Results expressed as mean ± SD (n = 3). EtOH: ethanol; AcO: acetone; EtAc: ethyl acetate; DCM: dichloromethane. FFAs: free fatty acids; FOHs: fatty alcohols; STs: sterols; FALs: fatty aldehydes; n.d: not detected; n.a: not applied. Different superscript letters in a row indicate statistically significant differences between solvents (p < 0.05).
Figure 3FTIR spectra of straw extracts.
Figure 4FTIR spectra of bagasse extracts.
FTIR frequencies interpretation table.
| Wavenumber (cm−1) | Origin | Assignment |
|---|---|---|
| 3357–3337 | -OH stretching | Alcohols |
| 2917 | C-H stretching (-CH3, -CH2 and -CH) | Aliphatic chains |
| 2849 | ||
| 1710 | -OH bending | Alcohols |
| 1605 | RONH2 | Amines |
| 1515 | C-N stretching | Amides |
| 1462 | C-H bending (-CH3, -CH2) | Aliphatic chains |
| 1423 | ||
| 1377 | ||
| 1328 | -CHO (CH deformation) | Aldehydes |
| 1269–1225 | NH2 rocking/twisting | Amines |
| 1169 | C-O asymmetric stretching | Alcohols |
| 1123 | N-H bending | Amines |
| 1051–1030 | C-O stretching | Alcohols |
| 833 | CH2 rocking | Aliphatic chains |
| 729 | Rotational deformation of CH2 in chain | High aliphatic chains |
| 719 |
Crystallisation, fusion, oxidation and decomposition temperatures (°C) and enthalpies (J/g) of sugarcane straw and bagasse.
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| 57.8 (17.1) | 70.1 (20.4) | n/a | 354.5 (186.2) |
|
| 56.1 (22.4) | 66.4 (26.2) | n/a | 410.6 (65.7) |
|
| 65.9 (53.7) | 74.8 (55.3) | n/a | 374.4 (153.6) |
| DCM | 58.7 (45.2) | 70.8 (55.1) | 163.6 (23.4) | 393.5 (225.6) |
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| 57.9 (11.6) | 68.1 (12.4) | n/a | 362.9 (279.5) |
|
| 58.6 (43.5) | 68.9 (51.1) | n/a | 406.9 (176.9) |
|
| 62.1 (64.2) | 68.6 (71.7) | n/a | 393.2 (231.7) |
|
| 62.9 (90.3) | 72.2 (106.9) | 168.0 (35.1) | 436.4 (267.3) |
n/a—not applicable.