Microplastics in the Marine Environment: Sources, Distribution, Transport, Ecological and Human Health Impacts and Mitigation Strategies
Abstract
1. Introduction
2. Types of Plastic in the Marine Ecosystem
3. Different Sources, Forms of Distribution, and Pathways of Marine Plastic Pollution
4. Plastic Effects on the Marine Ecosystem
4.1. Mechanism of Plastic Degradation
4.1.1. Biotic Degradation Pathways
4.1.2. Abiotic Degradation Pathways
4.2. Greywater Contributes to Marine Microplastic Pollution
4.3. Impact of Microplastics on Humans
5. Mitigation Measures and Control Measures
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Abbreviations
| PCPs | Personal care products |
| PCCPs | Personal care and cosmetic products |
| PE | Polyethylene |
| PES | Polyester |
| PET | Polyethylene Terephthalate |
| PVC | Polyvinyl Chloride |
| PP | Polypropylene |
| HDPE | High-density polyethylene |
| POPs | Persistent organic pollutants |
| PVA | Polyvinyl alcohol |
| PA | Polyamide |
| PUR | Polyurethane resin |
| PS | Polystyrene |
| PU | Polyurethane |
| PSU | Practical salinity unit |
| LDPE | Low-density polyethylene |
| LLDPE | Linear low-density polyethylene |
| PCBs | Polychlorinated biphenyls |
| TRWPs | Tires and road wear particles |
| PMMA | Polymethyl methacrylate |
| ALDFG | Abandoned, lost and discarded fishing gear |
| PAHs | Polycyclic aromatic hydrocarbons |
| GPGP | Great Pacific garbage patch |
| PFASs | Per- and polyfluoroalkyl substances |
| EU | European Union |
| MSDs | Marine sanitation devices |
| PCDDs | Polychlorinated Dibenzo-p-dioxins |
| AWT | Advanced wastewater treatment |
| UNEA | United Nations Environment Agency |
| WWTPs | Wastewater treatment plants |
| EPR | Extended producer responsibility |
| PHASs | Polyhydroxyalkanoates |
| FT-IR | Fourier transform infrared |
| MHET | Mono-(2-hydroxyethyl) terephthalate |
| BHET | Bis (2-hydroxyethyl) terephthalate |
| GIT | Gastrointestinal tract |
| IUCN | International union for conservative nature |
| UNDP | United Nations Development Programme |
| IBS | Irritable bowel syndrome |
| IBD | Inflammatory bowel disease |
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| S. No | Title | Study Scope | Ref. |
|---|---|---|---|
| 1 | Plastic marine debris: Sources, distribution, and impacts on coastal and ocean biodiversity | The study focuses sources, types, distribution, and biodiversity impacts. | [10] |
| 2 | Greywater from Ships: A Significant Sea-Based Source of Microplastics? | The study explains ship greywater as a source of marine microplastics. | [11] |
| 3 | Microplastics and their role in the emergence of antibiotic resistance in bacteria as a threat to the environment | The review highlights the interaction between antibiotic-resistant bacteria and microplastics. | [12] |
| 4 | Global marine plastic pollution: Sources, distribution, implications on human health, and mitigation strategies | Distribution, sources, human health, and mitigation are discussed here in the study. | [5] |
| 5 | Microplastic pollution in the marine environment: A review | The study focuses on various types of microplastic pollution, sources, degradation mechanism, and their toxic effects on marine life. | [13] |
| 6 | Global distribution of microplastics and its impact on the marine environment—A review | The study explains the distribution of microplastics, environmental fate, and their effects on marine organisms, shows global research gaps, and the need for further study. | [14] |
| 7 | Global microplastic pollution is at levels harmful to marine life | The research study measures the global abundance, distribution pattern, and ecological effects of microplastics. | [15] |
| 8 | Plastics pollution: pathways, impacts, and regulatory challenges in marine environments | The study highlights the distribution, ecological effects, and regulatory challenges of marine plastic pollution. | [16] |
| 9 | Microplastic contamination and removal efficiency in greywater treatment using a membrane bioreactor, Suda Ittisupornra | The effectiveness of membrane bioreactor technology for the removal of microplastic pollution from greywater and characteristics of particles. | [17] |
| 10 | Microplastics in the marine environment: sources, distribution, transport, ecological and human health impacts, and mitigation strategies | The study uniquely describes different facets of plastic pollution, including sources, distribution, pathways, mechanisms of degradation, and effects on human health and marine organisms. | Current study |
| Sample Types | Major Plastic Types | Size of Plastics | Plastic Concentration/Density in Different Marine Compartments) | Ref. |
|---|---|---|---|---|
| Sediments | Fibers | <1 mm | 72–1512 kg per dry sediment | [29] |
| Sediments | Fragments < 9% and Filaments > 88% in each sample | 5–10 mm | 42 to 1069 items/kg | [30] |
| Water | PP | Fibrous 0.15–15.98 mm and microplastics 0.125–1.82 mm. | 0.71 particles.m−3 | [31] |
| Water | Plastics contained unbroken plastics, Styrofoam, and fragments. | - | For large particles, 27,606 particles/m2 | [32] |
| Sediment | Fibrous microplastics | 0.000004266–0.004491 mm | 48–69 MPs/30 g sediment | [33] |
| Beach sand | Low-density polyethylene (LDPE), Polyethylene vinyl acetate, and PS | >0.001 mm | 102.9–163.3 mg/kg sediment | [34] |
| Water | PE, PP, and PET | - | 86.3 kg/km2 | [35] |
| Floating particles in the marine environment | PS and microplastics | <50 mm | PS (76.1%) | [36] |
| Sediment | Microfibers | >0.001 mm | 520 MP/kg | [37] |
| PET and PE | >1 mm | 220 ± 50 MP/kg sediment | [38] | |
| PS and PE | >1 mm | 45 ± 12 MP/kg sediment | ||
| Sediment | Granules (25%) and Fibers (59%) | >0.0055 mm | 41.7–532.2 MP kg−1 sediment | [39] |
| Sediment | PA, PVC, PP, PET, PS and PE | <1 mm | 2.3 MP per kg−1 | [40] |
| Water | Commonly, fragments and fibers, PP and PE | - | 0.0032–1.18 particles/m3 | [41] |
| Pathways/Sources | Contribution to Marine Pollution | Charcaterisaitcs | Ref. |
|---|---|---|---|
| Ocean-based sources | 20–30% | Tourism, offshore, shipping, and fishing activities are included. | [16] |
| Land-based sources | 70–80% | Rivers, wastewater, landfills, and urban runoff are the largest sources of marine plastic pollution. | |
| Textile fibers (greywater/laundry) | 35% Primary microplastics | Washing synthetic textiles and their discharge into marine ecosystems. | [52] |
| Tire wear debris | 5–10% | Produced from vehicle tire wear and transported through water runoff. | [54] |
| Atmospheric sources | Agriculture 5%, oceans 11%, and roads 84% | Airborne microplastics that are finally deposited into marine ecosystems. | [55] |
| (ALDFG) Fishing gear) | ≈10% | Lost fishing gear contributes significantly to marine plastic pollution. | [56] |
| PCPs | ≈10% | Microplastic sources deposited into the marine environment through wastewater. | [57] |
| GPGP | Large plastic particles 75%, fishing nets 46%, and microplastic particles 94% | Shows the composition of the largest marine plastic accumulation zones in the world. | [58] |
| Targeted Organisms | Size and Type of Plastic Particle | Plastic Debris Concentration | Effects on Marine Environment | References |
|---|---|---|---|---|
| Zooplankton | ||||
| Calanus helgolandicus | PS beads (20 μm) | 75 mL−1 | Decrease in reproduction, ingestion, and survival. | [73] |
| Acartia clausi | PE (4–6 µm) | - | Reduction in algal ingestion. | [74] |
| Daphnia magna | Nano-PS aged | 0.22–103 mg nano-PSL−1 | Reduction in body size with severe reproductive changes along with neonatal malformation. | [75] |
| Marine mammals | ||||
| Blue whale | PE and PP (1000 µm to several thousand µm) | - | Blockages of the digestive system and toxin exposure. | [76] |
| Marine mammals | 24.4–1387 μm in tissue | - | Disruption of the important procedure of blubber. | [77] |
| Measured at 65.5–436 μm | - | Inhibition of the important function of the acoustic pad. | ||
| Algae | ||||
| Phytoplankton | Microplastics in higher concentration | Important alteration in the community structure of phytoplankton. | [78] | |
| Chlorella vulgaris | PE, PVC, and PA | 10 to 100 mg L−1 | Disturb the growth rate and performance of photosynthesis, and reduce the levels of chlorophyll-a. | [79] |
| Chlorella spp. | PS beads (0.02 μm) | 1.8 to 6.5 mg L−1 | Decline in the activities of photosynthesis. | [80] |
| Microalgae | <5000 μm | - | Morphology changes, Growth inhibition, Reduction in photosynthesis processes, nutritional values, and chlorophyll. | [81] |
| Chlorella vulgaris | PET (4.7 μm) | 5 to 80 mg L−1 | Growth inhibition, damages in cell, changes in composition of chlorophyll-a. | [82] |
| Scenedesmus obliquus | (0.07 μm) PS beads | 1 gL−1 | Decline in chlorophyll concentration and growth population. | [75] |
| Bivalves | ||||
| Limicola balthica | PE microplastics in different sizes (63–75 μm, 150–180 μm, and 250–300 µm) | 0.1–0.5% sediment | Decline in the frequency of emergencies near surface dwellings. | [83] |
| Cerastoderma glaucum | ||||
| Mytilus edulis | HDPE (20–25 μm and 4–6 μm) | 0.2 mg L−1 and 20 mg L−1 | Increase in the level of human pathogens and changes in gut microbiota. | [84] |
| Crassostrea gigas | PS beads (2–6 µm) | 0.023 mg L−1 | Reduction in the number and size of oocytes, motility of sperm, and reduced larval growth and number. | [85] |
| Corals | ||||
| Pacillopora cf. damicornis | PAC and Nylon (101 to 200 µm) | 2.28 ± 0.12 particles per gram | Changes in the community composition of coral reefs and a decline in the whole environment’s flexibility. | [86] |
| Platygyra sinensis | ||||
| Porites lutea | ||||
| Acropora cervicornis | PE (2425–500 μm, and 850–1000 µm) | 10 mg/L for each category of size | Reduced the rate of growth, reduced the surface area of tissues. | [87] |
| Lophelia pertusa | PE particles (500 μm) | 350 particles/L | Reduced the growth of septa and skeleton. | [88] |
| Fish | ||||
| Oryzias latipes | PS (2 μm) | 0.1 mg/L | Gut microbiota dysbiosis, functional bacterial species reduction, and decreased shoaling behavior. | [89] |
| Dicentrarchus labrax | PMMA and PVC (0.045 μm) | - | Reduced the enzyme level, changed the lipid genes. Tissue changes in the intestine. | [90] |
| Oryzias javanicus | PS (0.5 µm) | 100, 500 and 1000 μg/L | Reduced the gut microbial diversity and disturbed the processes of metabolism. | [91] |
| Zebrafish (Daniorerio) | PP and PS (≤12 μm) | 100 and 1000 μg/L | Decreased larval swimming, hatching, and survival. Increased the expression of oxidative stress genes, apoptosis in blood cells, and damage to the liver. | [92] |
| Shark Whale (Rhincodon typus) | 330–5000 μm Mostly filaments, fragments, PP, PE, and polymers | 0–0.24 items/m3 in water; expected ingestion: 547–3286 | Ingestion occurs during filter feeding; exposure to toxic chemicals like phthalates and lead can cause endocrine disruption, immune toxic effects, and oxidative stress; contamination in the food web and bioaccumulation in tissues. | [72] |
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Hubab, M.; Al-Ghouti, M.A.; Daly Yahia, M.N. Microplastics in the Marine Environment: Sources, Distribution, Transport, Ecological and Human Health Impacts and Mitigation Strategies. Water 2026, 18, 2082. https://doi.org/10.3390/w18172082
Hubab M, Al-Ghouti MA, Daly Yahia MN. Microplastics in the Marine Environment: Sources, Distribution, Transport, Ecological and Human Health Impacts and Mitigation Strategies. Water. 2026; 18(17):2082. https://doi.org/10.3390/w18172082
Chicago/Turabian StyleHubab, Muhammad, Mohammad A. Al-Ghouti, and Mohamed Nejib Daly Yahia. 2026. "Microplastics in the Marine Environment: Sources, Distribution, Transport, Ecological and Human Health Impacts and Mitigation Strategies" Water 18, no. 17: 2082. https://doi.org/10.3390/w18172082
APA StyleHubab, M., Al-Ghouti, M. A., & Daly Yahia, M. N. (2026). Microplastics in the Marine Environment: Sources, Distribution, Transport, Ecological and Human Health Impacts and Mitigation Strategies. Water, 18(17), 2082. https://doi.org/10.3390/w18172082
