| Literature DB >> 25763102 |
Nazim Muradov1, Mohamed Taha2, Ana F Miranda2, Digby Wrede2, Krishna Kadali2, Amit Gujar1, Trevor Stevenson2, Andrew S Ball2, Aidyn Mouradov2.
Abstract
Entities:
Keywords: Biofuel; Bioremediation; Flocculation; Fungi; Microalgae; Pyrolysis; Renewable energy; Wastewater
Year: 2015 PMID: 25763102 PMCID: PMC4355497 DOI: 10.1186/s13068-015-0210-6
Source DB: PubMed Journal: Biotechnol Biofuels ISSN: 1754-6834 Impact factor: 6.040
Figure 1Lipid production in fungal isolates. (A) The lipid concentrations in cultured fungal strains; (B) microscopic analysis of oil bodies accumulation in A. fumigatus (a, c) and M. circinelloides (b, d) using Nile red (a, b) and Sudan black (c, d).
Figure 2Flocculation of and by 15 fungal strains. (A) 12-well microtitre plate experiment: fungal pellets were mixed with suspensions of C. protothecoides (left wells) and T. suecica (right wells) for 24 h. Controls: microalgal suspensions grown without fungi (top wells); fungal cultures grown alone (middle wells). (B) Flocculation efficiency measured by reduction in optical densities, cell numbers and chlorophyll concentrations of uncaptured algal cells after 24 h of co-cultivation.
Figure 3Flocculation of microalgal strains by . (A) Flocculation of C. protothecoides: A. fumigatus culture (left); mixotrophically grown C. protothecoides culture (middle); A. fumigatus/C. protothecoides pellets (right). (B) Flocculation of T. suecica: autotrophically grown T. suecica culture (left); A. fumigatus/T. suecica pellets (right). (C) T. suecica culture mixed with A. fumigatus pellets, time = 0 (left); 24 h later (right). (D, E) A. fumugatus pellets grown PDB (left) and 1% TWS (right). (F) Flocculation of T. suecica: A. fumigatus/PDB-T. suecica pellets (left); original T. suecica culture (middle); A. fumigatus/TWS-T. suecica pellets (right).
Figure 4Flocculation efficiency of algal strains by Flocculation of C. protothecoides by A. fumigatus/PDB (1) and A. fumigatus/ TWS pellets (3); flocculation of T. suecica by A. fumigatus/PDB pellets (2) and A. fumigatus/ TWS pellets (4).
Biomass and lipid concentrations in and microalgal strains grown in mono-cultures and co-cultures
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| Biomass | Lipid | Lipid yield | Biomass | Lipid | Lipid yield | Biomass | Lipid | Lipid yield | Biomass | Lipid | Lipid yield |
| (g/L) | (%) | (mg/L) | (g/L) | (%) | (mg/L) | (g/L) | (%) | (mg/L) | (g/L) | (%) | (mg/L) | |
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| 0.66 ± 0.1 | 2.80 ± 0.3 | 16.68 ± 4.3 | 1.11 ± 0.2 | 3.36 ± 0.4 | 37.71 ± 8.4 | NA | NA | NA | NA | NA | NA |
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| 0.71 ± 0.1 | 10.10 ± 3.2 | 71.09 ± 15.3 | 2.21 ± 0.5 | 11.50 ± 3.3 | 240.20 ± 41.9 | NA | NA | NA | NA | NA | NA |
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| 0.66 ± 0.1 | 26.20 ± 4.1 | 172.23 ± 48. | 2.25 ± 0.4 | 28.20 ± 6.4 | 699.70 ± 120.4 | 6.61 ± 1.1 | 12.35 ± 4.4 | 755.34 ± 122.0 | 8.96 ± 2.1 | 21.35 ± 4.5 | 2041.96 ± 440.6 |
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| 0.65 ± 0.1 | 15.10 ± 3.8 | 86.54 ± 20.0 | 1.77 ± 0.4 | 13.70 ± 2.5 | 215.55 ± 50.6 | 4.40 ± 1.1 | 6.1 ± 1.7 | 268.84 ± 53.2 | 4.49 ± 0.9 | 12.10 ± 3.1 | 578.29 ± 210.7 |
Figure 5Fatty acid composition of and fungal-algal pellets. 1) A. fumigatus/TWS pellets; 2) A. fumigatus/PDB pellets; 3) algal strains; 4) A. fumigatus/TWS-algal pellets; 5) A. fumigatus/PDB-algal pellets.
Concentrations of nutrients in diluted swine wastewater before and after treatment with and their pellets with
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| 680.7 ± 23.1 | 145.4 ± 13.7 | NA | NA | NA | NA | NA | NA |
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| 164.3 ± 13.2 | 38.7 ± 3.4 | 104.8 ± 12.1 | 25.0 ± 5.1 | 98.8 ± 12.9 | 19.0 ± 6.1 | 43.2 ± 11.9 | 17.2 ± 3.1 |
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| 66.1 ± 4.3 | 16.1 ± 3.0 | 29.9 ± 6.2 | 8.7 ± 2.6 | 18.9 ± 4.4 | 6.7 ± 2.8 | 4.4 ± 4.6 | 3.1 ± 1.7 |
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| 699.4 ± 25.1 | 169.2 ± 18.1 | NA | NA | NA | NA | NA | NA |
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| 168.8 ± 17.0 | 45.0 ± 4.0 | 124.1 ± 10.7 | 31.0 ± 5.1 | 99.3 ± 11.1 | 25.8 ± 8.2 | 63.9 ± 17.2 | 19.0 ± 5.6 |
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| 67.9 ± 5.5 | 18.7 ± 3.2 | 41.3 ± 4.2 | 10.2 ± 3.1 | 20.3 ± 5.4 | 8.2 ± 1.9 | 3.9 ± 5.4 | 4.2 ± 2.1 |
Figure 6Application of / pellets for swine wastewater treatment. (A, B) A. fumigatus/C. protothecoides pellets with 25% wastewater: t = 0 (left); 48 h later (right); (C) samples of 25% wastewater before (1) and after treatment with C. protothecoides (2), A. fumigatus (3) and A. fumigatus/C. protothecoides (4).
Figure 7Biomass and lipid production. Biomass and lipid production of A. fumigatus/C. protothecoides and A. fumigatus/T. suecica pellets grown in 25% swine wastewater. Af/Cp: A. fumigatus/C. protothecoides pellets; Af/Ts: A. fumigatus/T. suecica pellets.
Proximate analysis of the and samples determined by TGA method
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| 4.7 | 67.1 | 4 | 71.1 | 20.2 | 4.1 |
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| 6 | 67.6 | 4.4 | 72 | 18.5 | 3.5 |
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| 9.2 | 67.4 | 5.4 | 72.8 | 15.5 | 2.5 |
Figure 8Thermogravimetric analysis of biomasses. (A). TGA/DTG analysis of algae biomass samples in a He atmosphere. Heating rate: 20°C/min. a) C. protothecoides, b) A. fumigatus/C. protothecoides; c) A. fumigatus. (B) TG/DTG analysis of algae biomass samples in air atmosphere. Heating rate: 20°C/min. a) C. protothecoides, b) A. fumigatus/C. protothecoides.
Figure 9Distribution of pyrolysis products. 1) C. protothecoides, 2) A. fumigatus/C. protothecoides; 3) A. fumigatus.
Composition of gaseous products pyrolysis in vol. %
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| 2.1 | 69.6 | 5.8 | 9.7 | 5.3 | 4.2 | 3.3 |
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| 0.2 | 84.6 | 7.4 | 2.8 | 1.6 | 1.6 | 1.7 |
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| 0.6 | 72.2 | 17.3 | 5 | 2.1 | 1.3 | 1.5 |
Total C4: butane + iso-butane + butenes.
Figure 10GC spectra of dichloromethane-dissolved bio-oil samples produced from: (A) (B) / pellets; (C)
GC analysis of bio-oil products of and
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| 4.9 | 3-Methyl furan and/or 3-cyclopenten-1,2 diol | 3-Methyl furan and/or 3-cyclopenten-1,2 diol | |
| 5.03 | 1-(2-Furanyl) ethanone | 1-(2-Furanyl) ethanone | |
| 5.2 | Tetrahydro-4H-pyran-4-ol | ||
| 5.35 | 3-Methyl 1H-pyrrole | ||
| 5.72 | 2,4,5-Trimethyl 1H-imidazole | ||
| 5.8 | 4-Methyl piperidine | ||
| 5.82 | Aconitic anhydride | ||
| 6.27 | 2,3-Dimethyl 1H-pyrrole | ||
| 6.33 | Phenol | Phenol | Phenol |
| 6.52 | 2-Carboxaldehyde-1H-pyrrole | ||
| 6.72 | 2,3-Dimethyl-1H-pyrrole | ||
| 6.83 | Cis-4-methyl cyclohexane methanol | ||
| 7.07 | 3-Methyl-N (3-methyl butylidene)-1-butanamine | ||
| 7.13 | 4-Ethyl-2-methyl pyrrole | ||
| 7.15 | 5-Methyl-2-furan methanol | 5-Methyl-2-furan methanol | |
| 7.27 | 4-Methyl piperdine | 4-Methyl piperdine | |
| 7.45 | 4-Ethyl-2-methyl pyrrole | 4-Ethyl-2-methyl pyrrole | |
| 7.38 | 2-Methyl phenol | 2-Methyl phenol | 2-Methyl phenol |
| 7.9 | 3-Methyl phenol | 3-Methyl phenol | 3-Methyl phenol |
| 7.92 | 4-Ethyl-2-methyl pyrrole | ||
| 8.3 | 3-Ethyl-2,4-dimethyl-1H-pyrrole | 3-Ethyl-2,4-dimethyl-1H-pyrrole | |
| 8.58 | 3-Ethyl-2,5-dimethyl-1H-pyrrole | ||
| 8.38 | 2-Acetyl cyclopentanone | ||
| 8.47 | 4-Ethyl-2, 3-dimethyl -1H-pyrrole | ||
| 8.77 | 4-Methyl phenol | 4-Methyl phenol | |
| 2-Ethyl-3, 4, 5-trimethyl-1H-Pyrrole | |||
| 9.28 | Dodecane | Dodecane | |
| 9.33 | 4-Amino phenol | ||
| 9.43 | 3-Ethyl-2,5-dimethyl-1H-pyrrole | 3-Eethyl-2,5-dimethyl-1H-pyrrole | |
| 9.45 | 1,2,2,3-Tetramethyl cyclopent-3-enol | 1,2,2,3-Tetramethyl cyclopent-3-enol | |
| 9.67 | 4-Ethyl phenol | 4-Ethyl phenol | |
| 9.87 | 1, (3-Aminopropyl)-2-pyrrolidone | 1,(3-Aminopropyl)-2-pyrrolidone | |
| 9.73 | Nanofin (2,6-dimethyl piperidine) | ||
| 10.13 | 2-Ethyl phenol | ||
| 10.67 | 2-Methyl-2-ethyl-pyrrolidine | ||
| 10.67 | 3, 4, 4-Trimethyl-cyclopenten-1-one | 3,4,5-Trimethyl-2-cyclopentene-1-one | |
| 10.67 | Tridecane | Tridecane | |
| 10.71 | Indole/benzene nitrile | ||
| 10.83 | Indole | Indole | |
| 11.57 | 1, 2-Dihydro-1, 1, 6-trimethyl naphthalene | 1,2-Dihydro-1,1,6-trimethyl naphthalene | |
| 11.77 | Indolizine | Indolizine | |
| 11.98 | Tetradecane | Tetradecane | Tetradecane |
| 12.13 | 2-Methyl indole | 2-Methyl indole | |
| 12.78 | 7-Methyl indolizine | ||
| 12.79 | 2, 6, 10-Trimethyl dodecane | 2,6,10-Trimethyl dodecane | |
| 12.83 | 3-Methyl indolizine | ||
| 13.23 | Pentadecane | Pentadecane | Pentadecane |
| 13.37 | 4-Methyl 1H-indole | ||
| 14.43 | Hexadecane | Hexadecane | Hexadecane |
| 15.38 | 8-Heptadecene | 8-Heptadecene | |
| 15.57 | Heptadecane | Heptadecane | |
| 15.93 | 3,7,11,15-Tetramethyl-2-hexadecene | 3, 7, 11, 15-Tetramethyl-2-hexadecene | |
| 16.65 | Octadecane | Octadecane | |
| 16.75 | 9-Nonadecene | 9-Nonadecene | |
| 17.1 to 17.55 | Isomers of 3,7,11,15-tetramethyl-2-hexadecen-1-ol (phytol) | Isomers of 3, 7, 11, 15-tetramethyl-2-hexadecen-1-ol (phytol) | |
| 17.8 | Oleic acid | Oleic acid | |
| 18.25 | Palmitic acid | Palmitoleic acid | |
| 18.65 | Cis-9-eicosen | Cis-9-eicosen | |
| 19.38 | Pentadecane-2, 4-dione | ||
| 19.58 | Heneicosane | Heneicosane | |
| 19.85 | 11,13-Dimethyl-1,2-tetradecen-1-ol-acetate | ||
| 19.75 | Linolenic acid methyl ester | Linolenic acid methyl ester |