| Literature DB >> 29651438 |
Tene Hippolyte Mouafo1,2, Augustin Mbawala2, Robert Ndjouenkeu2.
Abstract
The potential of three indigenous bacterial strains (Lactobacillus delbrueckii N2, Lactobacillus cellobiosus TM1, and Lactobacillus plantarum G88) for the production of biosurfactants using sugar cane molasses or glycerol as substrates was investigated through emulsifying, surface tension, and antimicrobial activities. The different biosurfactants produced with molasses as substrate exhibited high surface tension reduction from 72 mN/m to values ranged from 47.50 ± 1.78 to 41.90 ± 0.79 mN/m and high emulsification index ranging from 49.89 ± 5.28 to 81.00 ± 1.14%. Whatever the Lactobacillus strain or the substrate used, the biosurfactants produced showed antimicrobial activities against Candida albicans LV1, some pathogenic and/or spoilage Gram-positive and Gram-negative bacteria. The yields of biosurfactants with molasses (2.43 ± 0.09 to 3.03 ± 0.09 g/L) or glycerol (2.32 ± 0.19 to 2.82 ± 0.05 g/L) were significantly (p < 0.05) high compared to those obtained with MRS broth as substrate (0.30 ± 0.02 to 0.51 ± 0.09 g/L). Preliminary characterization of crude biosurfactants reveals that they are mainly glycoproteins and glycolipids with molasses and glycerol as substrate, respectively. Therefore, sugar cane molasses or glycerol can effectively be used by Lactobacillus strains as low-cost substrates to increase their biosurfactants production.Entities:
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Year: 2018 PMID: 29651438 PMCID: PMC5832067 DOI: 10.1155/2018/5034783
Source DB: PubMed Journal: Biomed Res Int Impact factor: 3.411
Physicochemical composition of clarified sugar cane molasses.
| Parameters | Values |
|---|---|
| pH | 5.60 ± 0.26 |
| Total dissolved substances (%) or Brix (°) | 79.24 ± 0.12 |
| Water content (%) | 37.47 ± 0.18 |
| Dry matter (%) | 62.52 ± 0.19 |
| Ash content (g/100 gDM) | 3.56 ± 0.28 |
| Reducing sugar content (g/100 gDM) | 15.36 ± 1.16 |
| Total sugars content (g/100 gDM) | 51.23 ± 2.42 |
| Total proteins content (g/100 gDM) | 2.59 ± 0.07 |
DM = dry mater.
Emulsification index of supernatants obtained with sugar cane molasses or glycerol as substrates.
| Substrates | Emulsification index (%) | |||||
|---|---|---|---|---|---|---|
| Biosurfactants producing strains | Control | |||||
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| Molasses | 49.89 ± 5.28cB | 81.00 ± 1.14eB | 63.50 ± 4.94dB | 21.85 ± 1.75bA | 11.50 ± 2.12a | 92.25 ± 1.21f |
| Glycerol | 41.81 ± 2.56cA | 61.81 ± 2.56eA | 53.28 ± 7.91dA | 19.31 ± 2.40bA | 11.50 ± 2.12a | 92.25 ± 1.21f |
Values are means ± standard deviation; n = 3; a, b, c, and so on indicated column comparison; A, B, C, and so on indicated line comparison; values followed by the same lowercase letter in superscript on the same line or by the same capital letter in superscript on the same column are not significantly different (p < 0.05) according to Duncan's multiple range test. The emulsion has been obtained by mixing supernatant of culture with refined palm oil.
Drop diameters of supernatants obtained with sugar cane molasses or glycerol as substrates.
| Substrates | Drop diameters (mm) | |||||
|---|---|---|---|---|---|---|
| Biosurfactants producing strains | Control | |||||
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| Molasses | 17.50 ± 0.70dA | 19.00 ± 1.41dA | 14.50 ± 0.70cB | 12.33 ± 1.50b | 9.50 ± 1.41a | 22.50 ± 0.70e |
| Glycerol | 16.20 ± 0.84dA | 18.55 ± 0.63eA | 12.80 ± 0.98cA | 9.92 ± 0.50b | 9.50 ± 1.41a | 22.50 ± 0.70f |
Values are means ± standard deviation; n = 3; a, b, c, and so on indicated column comparison; A, B, C, and so on indicated line comparison; values followed by the same lowercase letter in superscript on the same line or by the same capital letter in superscript on the same column are not significantly different (p < 0.05) according to Duncan's multiple range test.
Surface tension of supernatants obtained with sugar cane molasses or glycerol as substrates.
| Substrates | Surface tension (mN/m) | |||||
|---|---|---|---|---|---|---|
| Biosurfactants producing strains | Control | |||||
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| Molasses | 47.50 ± 1.78dA | 41.90 ± 0.79bA | 44.20 ± 0.37cA | 59.71 ± 0.50eA | 73.00 ± 0.77f | 31.98 ± 2.68a |
| Glycerol | 49.00 ± 2.43cA | 46.20 ± 1.64bB | 48.50 ± 1.33bB | 60.17 ± 0.14dB | 73.00 ± 0.77e | 31.89 ± 2.68a |
Values are means ± standard deviation; n = 3; a, b, c, and so on indicated column comparison; A, B, C, and so on indicated line comparison; values followed by the same lowercase letter in superscript on the same line or by the same capital letter in superscript on the same column are not significantly different (p < 0.05) according to Duncan's multiple range test.
Inhibition diameters of supernatants obtained with sugar cane molasses or glycerol as substrates.
| Tests germs | Inhibition diameters (mm) | |||||
|---|---|---|---|---|---|---|
| Molasses | Glycerol | |||||
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| 27.00 ± 4.24deA | 24.50 ± 6.36cdeA | 23.00 ± 9.89cdA | 57.50 ± 3.53gC | 46.50 ± 2.12gB | 41.00 ± 1.41fA |
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| 17.00 ± 1.41bA | 27.50 ± 3.53cdeC | 22.00 ± 1.41cB | 48.50 ± 2.12fC | 33.50 ± 2.13fB | 19.00 ± 1.50bA |
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| 29.00 ± 1.41eA | 26.50 ± 2.12deA | 27.50 ± 3.53dA | 18.50 ± 2.30abA | 16.00 ± 1.50bcA | 31.00 ± 4.24deB |
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| 18.00 ± 2.82bcA | 27.00 ± 2.82eB | 17.00 ± 2.82abA | 21.50 ± 2.50bcC | 12.50 ± 0.70aA | 15.00 ± 1.40aB |
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| 20.50 ± 0.70cA | 21.00 ± 1.41bA | 32.00 ± 2.82dB | 22.00 ± 2.82bcA | 32.50 ± 2.30efB | 34.00 ± 2.00eB |
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| 12.50 ± 0.70aA | 13.00 ± 2.82aA | 16.00 ± 2.82abA | 16.50 ± 0.70aB | 12.00 ± 1.10aA | 11.50 ± 2.34aA |
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| 17.00 ± 2.83bcA | 17.00 ± 2.80abA | 23.50 ± 2.12cB | 28.50 ± 2.13dB | 14.00 ± 1.30aA | 15.50 ± 2.12aA |
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| 23.00 ± 2.90cdB | 20.50 ± 0.70bAB | 18.50 ± 0.70bA | 23.50 ± 2.31cB | 14.50 ± 2.12abA | 14.50 ± 0.70aA |
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| 14.00 ± 1.45abA | 16.00 ± 2.85abAB | 19.50 ± 0.80bB | 18.50 ± 2.40abA | 26.00 ± 1.50dB | 26.00 ± 2.90cB |
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| 18.50 ± 2.12bcA | 19.50 ± 2.12bA | 32.00 ± 2.85dB | 26.50 ± 0.70cdB | 24.00 ± 1.42dB | 20.50 ± 0.71bA |
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| 22.00 ± 2.87cdA | 23.50 ± 0.70cdA | 21.50 ± 4.94bcA | 18.50 ± 2.17aA | 32.50 ± 3.53efC | 24.50 ± 8.80abcdB |
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| 19.50 ± 2.18bcA | 23.50 ± 2.12cdA | 19.50 ± 2.12bcA | 21.00 ± 1.50bcA | 31.00 ± 1.41eB | 31.00 ± 1.45dB |
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| 25.50 ± 3.53dA | 27.50 ± 3.53deA | 32.00 ± 2.82dB | 20.50 ± 0.70bA | 28.00 ± 2.82deB | 22.50 ± 2.14cA |
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| 36.00 ± 1.42fB | 16.50 ± 2.12abA | 14.00 ± 4.24abA | 18.50 ± 2.12abAB | 18.90 ± 1.55cB | 12.50 ± 4.24aA |
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| 37.50 ± 3.56fB | 14.50 ± 2.20aA | 14.50 ± 2.12aA | 41.00 ± 1.41eC | 26.50 ± 2.12dB | 14.50 ± 0.76aA |
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| 17.50 ± 3.50bcA | 21.00 ± 1.41bcA | 41.00 ± 1.41eB | 25.50 ± 2.12cdB | 19.00 ± 1.41cA | 23.50 ± 2.12cB |
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| 23.50 ± 9.94bcdeA | 28.50 ± 2.12eA | 31.00 ± 1.41dA | 56.50 ± 2.12gC | 36.00 ± 1.41fA | 36.50 ± 2.20eA |
Values are means ± standard deviation; n = 3; a, b, c, and so on indicated column comparison; A, B, C, and so on indicated line comparison; values followed by the same lowercase letter in superscript on the same column or by the same capital letter in superscript on the same line are not significantly different (p < 0.05) according to Duncan's multiple range test.
Yields of crude biosurfactants obtained with the different substrates.
| Biosurfactants producing strains | Yield (g/L) | ||
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| Molasses | Glycerol | MRS broth | |
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| 2.43 ± 0.09aB | 2.32 ± 0.19aB | 0.30 ± 0.02aA |
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| 3.03 ± 0.09cC | 2.77 ± 0.03bB | 0.51 ± 0.09bA |
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| 2.79 ± 0.06bB | 2.82 ± 0.05cC | 0.49 ± 0.07bA |
These organic extracts are crude biosurfactants; Values are means ± standard deviation; n = 3; a, b, c, and so on indicated column comparison; A, B, C, and so on indicated line comparison; values followed by the same lowercase letter in superscript on the same line or by the same capital letter in superscript on the same column are not significantly different (p < 0.05) according to Duncan's multiple range test.
Figure 1Correlation circle of the different parameters assessed to screen the production of biosurfactants.
Pearson correlation matrix of the different variables.
| Variables | E24 | Surface tension | Drop diameters | Inhibition diameters | Yield |
|---|---|---|---|---|---|
| E24 | 1 | ||||
| Surface tension | −0.953 | 1 | |||
| Drop diameters | 0.955 | −0.877 | 1 | ||
| Inhibition diameters | −0.202 | 0.445 | −0.135 | 1 | |
| Yield | 0.895 | −0.754 | 0.839 | 0.225 | 1 |
∗ indicates significant correlation (p < 0.05).
Figure 2Principal component analysis of the lactobacilli strains, the substrate, and biosurfactants parameters.
Chemical composition of biosurfactants produced by lactobacilli strains while using sugar cane molasses or glycerol as substrate.
| Substrates | LAB strains | Total proteins | Total sugars | Total lipids |
|---|---|---|---|---|
| Molasses |
| 52.93 ± 1.27e | 46.66 ± 0.47e | 0.00 ± 0.00 |
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| 63.64 ± 0.24f | 35.26 ± 1.10c | 1.10 ± 0.70a | |
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| 8.96 ± 0.53d | 51.13 ± 0.92f | 39.60 ± 0.65b | |
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| Glycerol |
| 4.20 ± 0.51c | 27.10 ± 0.36a | 68.20 ± 1.96d |
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| 3.18 ± 0.94b | 31.26 ± 1.36b | 65.23 ± 1.07d | |
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| 1.20 ± 0.14a | 43.96 ± 1.40d | 54.40 ± 0.30d | |
LAB = lactic acid bacteria; values are means ± standard deviation; n = 3; a, b, c, and so on indicated column comparison; values followed by the same letter in superscript on the same column are not significantly different (p < 0.05) according to Duncan's multiple range test.
Emulsifying activity of biosurfactants produced by the three Lactobacillus strains while using sugar cane molasse and glycerol as substrate.
| Substrates | LAB strains | Emulsification index (%) | ||||
|---|---|---|---|---|---|---|
| Time (hours) | ||||||
| 1 h | 24 h | 48 h | 72 h | 96 h | ||
| Molasses |
| 89.00 ± 4.24b | 88.50 ± 2.92b | 86.5 ± 2.12b | 83.00 ± 2.41b | 64.50 ± 0.70a |
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| 78.00 ± 3.50b | 77.25 ± 1.06b | 75.50 ± 0.70b | 73.00 ± 2.82b | 61.00 ± 3.50a | |
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| 70.20 ± 0.40d | 68.00 ± 1.41c | 66.50 ± 1.41c | 52.50 ± 2.12b | 46.50 ± 2.12a | |
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| Glycerol |
| 73.00 ± 2.82b | 72.00 ± 1.41b | 69.00 ± 4.24b | 67.00 ± 3.41b | 50.50 ± 2.12a |
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| 91.50 ± 3.70b | 89.00 ± 1.41b | 87.00 ± 2.42b | 85.50 ± 3.12b | 67.50 ± 3.53a | |
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| 64.00 ± 2.82b | 63.50 ± 0.70b | 61.50 ± 3.53b | 59.50 ± 2.70b | 49.00 ± 1.41a | |
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| Control | ||||||
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| SDS 1% (w/v) | 91.00 ± 1.41d | 89.50 ± 0.70d | 85.00 ± 1.41c | 65.00 ± 2.82b | 60.50 ± 0.70a | |
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| Distilled water | 11.50 ± 0.12 | 0.0 ± 0.0 | 0.0 ± 0.0 | 0.0 ± 0.0 | 0.0 ± 0.0 | |
LAB = lactic acid bacteria; Lb. TM1 = Lactobacillus cellobiosus TM1; Lb. N2 = Lactobacillus delbrueckii N2; Lb. G88 = Lactobacillus plantarum G88; values are means ± standard deviation; n = 3; a, b, c, and so on indicated column comparison; values followed by the same letter in superscript on the same line are not significantly different (p < 0.05) according to Duncan's multiple range test.
Figure 3Surface tension values (mN/m) versus biosurfactants concentration (mg/mL) obtained with the biosurfactants produced by Lb. cellobiosus TM1 with sugar cane molasses (a) or glycerol (b) as substrate.
Figure 4Surface tension values (mN/m) versus biosurfactants concentration (mg/mL) obtained with the biosurfactants produced by Lb. delbrueckii N2 with sugar cane molasses (a) or glycerol (b) as substrate.
Figure 5Surface tension values (mN/m) versus biosurfactants concentration (mg/mL) obtained with the biosurfactants produced by Lb. plantarum G88 with sugar cane molasses (a) or glycerol (b) as substrate.