Bioremediation and Biofuel Production Potential of Microalgae and Cyanobacteria from Lake Xochimilco
Abstract
1. Introduction
2. Materials and Methods
2.1. Bioremediation Assays
2.2. Production and Characterization of Fatty Acid Methyl Esters (FAMEs)
2.3. Biogas Production Assays
2.4. Data Analysis
3. Results and Discussion
3.1. Bioremediation Performance
3.2. FAME Production from Extracted Lipids
3.3. Biogas Production
3.4. Process Assessment: From Bioremediation to Biofuel Production
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| ANOVA | Analysis of variance |
| APHA | American Public Health Association |
| BP | Biomass productivity |
| C | Elemental carbon |
| CHN | Elemental content of carbon, hydrogen, and nitrogen |
| CIBAC | Center of Biological and Aquaculture Research of Cuemanco |
| CO2 | Carbon dioxide |
| dw | Dry weight |
| H2SO4 | Sulfuric acid |
| HSD | Honestly significant difference |
| FAME | Fatty acid methyl ester |
| FAMEs | Fatty acid methyl esters |
| FID | Flame ionization detector |
| KOH | Potassium hydroxide |
| µ | Specific growth rate |
| MC | Divided by the molecular weight of carbon |
| MCO2 | Molecular weight of carbon dioxide |
| PLOT-Q | Open tubular porous-layer gas chromatography column |
| S | Substrate |
| SD | Standard deviation |
| t | Time |
| TAP | Tris–acetate–phosphate |
| TCD | Thermal conductivity detector |
| UASB | Upflow anaerobic sludge blanket reactor |
| VS | Volatile solids |
| WWTP | Wastewater treatment plant |
| X | Biomass or cell density, according to the equation |
| YX/S | Biomass yield on substrate |
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| Cultivated Strains | Nutrient Removal | Growth | ||
|---|---|---|---|---|
| NH4+-N | NO3−-N | PO43−-P | ||
| % | cel mL−1, ×105 | |||
| Chlorella sp. | * 96.79 | * 90.37 | * 89.71 | 5.37 |
| ** 94.06 a | ** 88.66 a,b | ** 85.03 a | ±0.03 a | |
| Scenedesmus sp. | * 96.61 | * 100.00 | * 83.95 | 5.20 |
| ** 91.59 a,b | ** 96.17 a | ** 59.39 b | ±0.10 a | |
| Chlamydomonas sp. | * 97.06 | * 82.40 | * 85.14 | 2.35 |
| ** 75.07 a,b | ** 82.40 a,b | ** 77.31 a,b | ±0.11 b | |
| Synechocystis sp. | * 96.62 | * 90.72 | * 86.51 | 18.3 |
| ** 69.63 b | ** 71.97 b | ** 70.49 a,b | ±1.4 c | |
| Cultivated Strain | Biomass Productivity 1 | Specific Growth Rate (µ) | YX/S | Estimated CO2 Biofixation Rate | ||
|---|---|---|---|---|---|---|
| NH4+-N | NO3−-N | PO43−-P | ||||
| g L−1 d−1 | d−1 | g·g−1 | g L−1 d−1 | |||
| Chlorella sp. | 0.040 | 0.079 | 72.99 | 111.81 | 82.75 | 0.079 |
| ±0.005 ᵃ | ±0.002 a | ±2.60 a | ±23.04 a,b | ±5.73 a | ±0.010 a | |
| Scenedesmus sp. | 0.016 | 0.089 | 43.17 | 48.06 | 56.08 | 0.024 |
| ±0.004 b | ±0.015 a | ±3.50 b | ±6.19 a | ±1.54 b | ±0.006 b | |
| Chlamydomonas sp. | 0.016 | 0.041 | 36.61 | 54.76 | 52.04 | 0.031 |
| ±0.001 b | ±0.003 b | ±2.01 b | ±8.80 a | ±2.19 b | ±0.001 b | |
| Synechocystis sp. | 0.049 | 0.144 | 116.74 | 201.09 | 126.09 | 0.092 |
| ±0.002 ᵃ | ±0.003 c | ±5.52 c | ±13.14 b | ±3.26 c | ±0.004 a | |
| Cultivated Strains | Biomass | Lipids | Biodiesel Yield |
|---|---|---|---|
| g L−1 | % dw | % | |
| Chlorella sp. | 0.42 | 43.05 | 91.24 |
| ±0.02 a | ±0.84 a | ||
| Scenedesmus sp. | 0.20 | 29.10 | 42.24 |
| ±0.02 b | ±2.06 b | ||
| Chlamydomonas sp. | 0.19 | 21.42 | 41.16 |
| ±0.01 b | ±2.06 b | ||
| Synechocystis sp. | 0.54 | 24.17 | 67.47 |
| ±0.02 c | ±3.63 b |
| FAMEs | Chlorella sp. | Scenedesmus sp. | Chlamydomonas sp. | Synechocystis sp. |
|---|---|---|---|---|
| Methyl laurate (C12:0) | 1.5 | 1.0 | 1.6 | 0.6 |
| Methyl myristate (C14:0) | 1.6 | 2.8 | 3.6 | 1.8 |
| Methyl palmitate (C16:0) | 47.9 | 41.5 | 56.6 | 35.7 |
| Methyl stearate (C18:0) | 3.8 | 20.9 | 9.7 | 3.9 |
| Methyl arachidate (C20:0) | 0.5 | 0.6 | - | 10.8 |
| Methyl palmitoleate (C16:1) | 1.8 | 0.9 | - | 2.8 |
| Methyl oleate (C18:1) | 15.7 | 15.4 | 16.3 | 22.0 |
| Methyl linoleate (C18:2) | 9.1 | 0.6 | - | 4.7 |
| Methyl linolenate (C18:3) | 1.3 | 1.4 | - | 4.7 |
| % Saturated | 55.3 | 66.8 | 71.5 | 52.8 |
| % Monounsaturated | 17.5 | 16.3 | 16.3 | 24.8 |
| % Polyunsaturated | 10.4 | 2.0 | 0.0 | 9.4 |
| % Others | 16.8 | 14.9 | 12.2 | 13.0 |
| Cultivated Strains | Total Biogas 1 | Net Biogas | Biomethane |
|---|---|---|---|
| L kg−1 VS | |||
| Cellulose | 528.2 | 387.5 | 292.5 |
| ±11.5 a | ±8.2 a | ±6.2 a | |
| Synechocystis sp. | 429.5 | 288.7 | 240.5 |
| ±34.0 b | ±25.9 b | ±21.6 b | |
| Chlorella sp. | 404.9 | 264.2 | 203.1 |
| ±2.7 b | ±7.3 b | ±5.6 c | |
| Scenedesmus sp. | 323.8 | 183.1 | 129.81 |
| ±15.0 c | ±6.7 c | ±4.79 d | |
| Chlamydomonas sp. | 186.4 | 45.7 | 34.9 |
| ±6.7 d | ±3.9 d | ±3.0 e | |
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Domínguez-Alfaro, N.N.; Rodríguez-Palacio, M.C.; Guerra-Ramírez, D.; Castilla-Hernández, P. Bioremediation and Biofuel Production Potential of Microalgae and Cyanobacteria from Lake Xochimilco. Fermentation 2026, 12, 209. https://doi.org/10.3390/fermentation12050209
Domínguez-Alfaro NN, Rodríguez-Palacio MC, Guerra-Ramírez D, Castilla-Hernández P. Bioremediation and Biofuel Production Potential of Microalgae and Cyanobacteria from Lake Xochimilco. Fermentation. 2026; 12(5):209. https://doi.org/10.3390/fermentation12050209
Chicago/Turabian StyleDomínguez-Alfaro, Nancy Nayeli, Mónica Cristina Rodríguez-Palacio, Diana Guerra-Ramírez, and Patricia Castilla-Hernández. 2026. "Bioremediation and Biofuel Production Potential of Microalgae and Cyanobacteria from Lake Xochimilco" Fermentation 12, no. 5: 209. https://doi.org/10.3390/fermentation12050209
APA StyleDomínguez-Alfaro, N. N., Rodríguez-Palacio, M. C., Guerra-Ramírez, D., & Castilla-Hernández, P. (2026). Bioremediation and Biofuel Production Potential of Microalgae and Cyanobacteria from Lake Xochimilco. Fermentation, 12(5), 209. https://doi.org/10.3390/fermentation12050209

