Submitted:
04 September 2025
Posted:
05 September 2025
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Abstract
Keywords:
1. Introduction
1.1. Anaerobic Digestion Process

1.2. Biogas Composition
1.3. Use of Biogas
1.4. Anaerobic Digestate
1.5. Mycoremediation
1.5.1. Effects of HM in Soils
1.5.2. Mycorrhiza for Metal Remediation
1.5.3. Use of Anaerobic Digestate in Mycoremediation
1.6. Fundamental Framework
2. Materials and Methods
2.1. Articles Selection
2.1.1. Inclusion Criteria
2.1.2. Exclusion Criteria
2.1.3. Systematic Search
3. Results and Discussion
3.1. Biomass Source for Anaerobic Digestion
3.2. Fungal Strains Researched
3.3. Effect on Pollutants/Nutrients Analyzed
3.3.1. Polyfluoroalkyl Substances (PFAS) and Antibiotics
3.3.2. Pollutant/Nutrients Analyzed
3.4. Effect on Plant Growth and Organic Matter Removal
3.5. Effect on Microbial Community
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| AD | Anaerobic digestion |
| Al | Aluminum |
| AM | Arbuscular mycorrhiza |
| As | Arsenic |
| B | Boron |
| Ba | Barium |
| C | Carbon |
| Ca | Calcium |
| Cd | Cadmium |
| Ce | Cerium |
| CH4 | Methane |
| CHP | Combined heat power generator |
| C/N | Carbon/nitrogen |
| C/N/P | Carbon/nitrogen/phosphorous |
| Co | Cobalt |
| CO2 | Carbon dioxide |
| Cr | Chromium |
| Cu | Cupper |
| EcM | Ectomycorrhiza |
| Fe | Iron |
| Ge | Germanium |
| H2 | Hydrogen |
| Hg | Mercury |
| H2O | Water |
| HM | Heavy metal |
| HRT | Hydraulic retention time |
| H2S | Hydrogen sulfide |
| Ir | Iridium |
| K | Potassium |
| Li | Lithium |
| Mn | Manganese |
| Mo | Molybdenum |
| Mg | Magnesium |
| n | Number |
| N | Nitrogen |
| Na | Sodium |
| Ni | Nickel |
| Nd | Neodymium |
| N/P | Nitrogen/phosphorous |
| O2 | Oxygen |
| ODM | Organic dry matter |
| Os | Osmium |
| P | Phosphorous |
| Pb | Lead |
| PAHs | Polycyclic aromatic hydrocarbons |
| PFAS | Per- and polyfluoroalkyl substances |
| PGPR | Promoting rhizobacteria |
| Pr | Praseodymium |
| Pt | Platinum |
| Rb | Rubidium |
| S | Sulphur |
| Sb | Antimony |
| Se | Selenium |
| Sn | Tin |
| Sr | Strontium |
| Si | Silicon |
| Ta | Tantalium |
| Te | Tellurium |
| TE | Trace elements |
| Ti | Titanium |
| Tl | Thallium |
| TN | Total nitrogen |
| U | Uranium |
| V | Vanadium |
| W | Tungsten |
| Zr | Zirconium |
| Zn | Zinc |
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| Bacterial group | Doubling time (hours) |
|---|---|
| Hydrolitic and acidogenic bacteria | |
| Bacteriodes | < 24 |
| Clostridien | 24 – 36 |
| Acetogenic bacteria | |
| Syntrophobacter | 40 – 60 |
| Syntrophomonas | 72 – 132 |
| Methanogenic bacteria | |
| Methanobacterium | 12 – 60 |
| Methanosarcina | 120 – 360 |
| Methanococcus/Metanosaeta | 240 |
| Component | Concentration |
|---|---|
| Methane (CH4) | 50 – 75 % |
| Carbon dioxide (CO2) | 25 – 45 % |
| Water (H2O) | 2 – 7 % (20 – 40 °C) |
| Hydrogen sulfide (H2S) | 20 – 20 000 ppm |
| Nitrogen (N2) | < 2 % |
| Oxygen (O2) | < 2 % |
| Hydrogen (H2) | < 1 % |
| Biogas yield (l/kgODM) | Methane content (%) | |
|---|---|---|
| Digestible protein | 700 | 71 |
| Digestible fat | 1250 | 68 |
| Digestible carbohydrates | 790 | 50 |
| Trace element in anaerobic digestate | Limit values in mg·kg-1 (dry matter) |
|---|---|
| Cd | 20 - 40 |
| Cu | 1000 – 1750 |
| Hg | 16 – 25 |
| Ni | 300 – 400 |
| Pb | 750 – 1200 |
| Zn | 2500 - 4000 |
| Database | Terms combination with Boolean operators | Number of articles found |
|---|---|---|
| SCOPUS | (biogas AND digestate AND mycorrhiza AND metal AND remediation) OR (biogas AND digestate AND mycoremediation) OR (biogas AND slurry AND mycorrhiza AND metal AND remediation) OR (biogas AND slurry AND mycoremediation) AND PUBYEAR > 2014 AND PUBYEAR < 2026 AND (LIMIT-TO (DOCTYPE, "ar")) | 59 |
| GOOGLE SCHOLAR | (anaerobic digestate + mycorrhiza + metal remediation) OR (biogas digestate + mycoremediation) OR (biogas slurry + mycorrhiza + metal + remediation) OR (biogas + slurry + mycoremediation) | 43 |
| SCIENCE DIRECT | (anaerobic AND digestate AND mycorrhiza AND metal AND remediation) OR (biogas AND digestate AND mycoremediation) | 17 |
| PUBMED | (anaerobic AND digestate AND mycorrhiza AND metal AND remediation) OR (biogas AND digestate AND mycoremediation) | 0 |
| Year | Country | Fungi | Results obtained | Reference |
|---|---|---|---|---|
| 2024 | Poland | Agaricus bisporus and Agaricus subrufescens |
|
[19] |
| 2024 | Norway | Agaricus bisporus and Agaricus subrufescens |
|
[31] |
| 2023 | Norway | Agaricus bisporus and Agaricus subrufescens |
|
[32] |
| 2019 | USA | Pleurotus ostreatus (non-mycorrhiza) |
|
[33] |
| Year | Country | Fungi | Results obtained | Reference |
|---|---|---|---|---|
| 2024 | China | AMF (Claroideoglomus etunicatum) |
|
[12] |
| 2023 | Portugal | AMF (Rhizophagus irregularis) |
|
[34] |
| 2022 | China | AMF (not strain specified) |
|
[28] |
| 2022 | France | AMF (Funneliformis mosseae) |
|
[30] |
| 2020 | Ireland | AMF (not strain specified) |
|
[35] |
| Biomass source for anaerobic digester | Parameters measured | Results | Reference |
|---|---|---|---|
| Anaerobically digested cattle manure |
|
|
[12] |
| Anaerobically digested cattle manure |
|
|
[28] |
| Anaerobically digested cattle manure |
|
Low accumulation of PFAS in fungi | [32] |
| Anaerobically digested cattle manure |
|
Digestate → higher abundance of nematodes, bacterial strains, mycorrhizal colonization, enzymes, and available P | [35] |
| Anaerobically digested cattle manure and food waste | 45 elements:
|
|
[19] |
| Anaerobically digested cattle manure and food waste |
|
|
[31] |
| Anaerobically digested cattle manure and food waste |
|
|
[33] |
| Anaerobically digested sludge from water treatment |
|
|
[30] |
| Biomass resulted from phytoremediation with AMF | Cd and Zn |
|
[34] |
| Fungi | Plant | Effects in plant growth | Effects in pollutant/nutrient removed | Reference |
|---|---|---|---|---|
| Agaricus bisporus and Agaricus subrufescens | N/A |
|
|
[19] |
| Agaricus bisporus and Agaricus subrufescens | N/A |
|
|
[31] |
| Agaricus bisporus and Agaricus subrufescens | N/A |
|
|
[32] |
| Pleurotus ostreatus (non-mycorrhiza) | N/A |
|
|
[33] |
| AMF (Claroideoglomus etunicatum) | Hybrid Pennisetum |
|
|
[12] |
| AMF (Rhizophagus irregularis) | Maize (Zea mays) |
|
|
[34] |
| AMF (not strain specified) | Poplar |
|
|
[28] |
| AMF (Funneliformis mosseae) | Coriander (Coriandrum sativum L.) |
|
|
[30] |
| AMF (not strain specified) | Ryegrass (Lolium perenne) |
|
|
[35] |
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