Herbaceous Plants as a Phytoremediation Tool in Urban Areas: A Review
Abstract
1. Introduction
Urban Soil Contamination in the Mediterranean Context
2. Results
2.1. Mediterranean Herbaceous Plants for Urban Remediation
2.2. Ecological Strategies of Dominant Families
2.3. Life Forms and Urban Adaptations
2.4. Phytoremediation Capacity
2.5. Herbaceous Plants Suitable for Phytoremediation
3. Discussion
3.1. Asteraceae
3.2. Fabaceae
3.3. Brassicaceae
3.4. Poaceae and Other Families
4. Materials and Methods
4.1. Search Strategy
4.2. Data Extraction and Synthesis
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- Toffolo, C.; Gentili, R.; Banfi, E.; Montagnani, C.; Caronni, S.; Citterio, S.; Galasso, G. Urban Plant Assemblages by Land Use Type in Milan: Floristic, Ecological and Functional Diversities and Refugium Role of Railway Areas. Urban For. Urban Green. 2021, 62, 127175. [Google Scholar] [CrossRef]
- Torija, M.G.; Quintana, J.R.; Pino-Bodas, R.; Molina, J.A. Contribution of Ruderal Herbaceous Vegetation to Supporting Services in Mediterranean Urban Greenspaces. Biodivers. Conserv. 2024, 34, 173–189. [Google Scholar] [CrossRef]
- Boi, M.E.; Fois, M.; Podda, L.; Porceddu, M.; Bacchetta, G. Using Mediterranean Native Plants for the Phytoremediation of Mining Sites: An Overview of the Past and Present, and Perspectives for the Future. Plants 2023, 12, 3823. [Google Scholar] [CrossRef] [PubMed]
- Frigerio, J.; Ouled Larbi, M.; Guidi Nissim, W.; Grassi, F.; Cortis, P.; Labra, M. Early Molecular Detection of Invasive Alien Plants in Urban and Peri-Urban Areas. Diversity 2024, 16, 647. [Google Scholar] [CrossRef]
- Ilie, D.; Cosmulescu, S. Spontaneous Plant Diversity in Urban Contexts: A Review of Its Impact and Importance. Diversity 2023, 15, 277. [Google Scholar] [CrossRef]
- Francini, A.; Romano, D.; Toscano, S.; Ferrante, A. The Contribution of Ornamental Plants to Urban Ecosystem Services. Earth 2022, 3, 1258–1274. [Google Scholar] [CrossRef]
- Manes, F.; Salvatori, E.; La Torre, G.; Villari, P.; Vitale, M.; Biscontini, D.; Incerti, G. Urban Green and Its Relation with Air Pollution Ecological Studies in the Metropolitan Area of Rome. Ital. J. Public Health 2008, 5, 278–283. [Google Scholar] [CrossRef] [PubMed]
- Zara, L.; Tordoni, E.; Castro-Delgado, S.; Colla, A.; Maccherini, S.; Marignani, M.; Panepinto, F.; Trittoni, M.; Bacaro, G. Cross-Taxon Relationships in Mediterranean Urban Ecosystem: A Case Study from the City of Trieste. Ecol. Indic. 2021, 125, 107538. [Google Scholar] [CrossRef]
- Eldridge, D.J.; Cui, H.; Ding, J.; Berdugo, M.; Sáez-Sandino, T.; Duran, J.; Gaitan, J.; Blanco-Pastor, J.L.; Rodríguez, A.; Plaza, C.; et al. Urban Greenspaces and Nearby Natural Areas Support Similar Levels of Soil Ecosystem Services. npj Urban Sustain. 2024, 4, 15. [Google Scholar] [CrossRef]
- Bretzel, F.; Pezzarossa, B.; Benvenuti, S.; Bravi, A.; Malorgio, F. Soil Influence on the Performance of 26 Native Herbaceous Plants Suitable for Sustainable Mediterranean Landscaping. Acta Oecol. 2009, 35, 657–663. [Google Scholar] [CrossRef]
- Molina, J.A.; Martín-Sanz, J.P.; Casermeiro, M.Á.; Quintana, J.R. Soil Depth and Vegetation Type Influence Ecosystem Functions in Urban Greenspaces. Appl. Soil Ecol. 2024, 194, 105209. [Google Scholar] [CrossRef]
- Peñalver-Alcalá, A.; Álvarez-Rogel, J.; Peixoto, S.; Silva, I.; Silva, A.R.R.; González-Alcaraz, M.N. The Relationships between Functional and Physicochemical Soil Parameters in Metal(Loid) Mine Tailings from Mediterranean Semiarid Areas Support the Value of Spontaneous Vegetation Colonization for Phytomanagement. Ecol. Eng. 2021, 168, 106293. [Google Scholar] [CrossRef]
- Lisiak-Zielińska, M.; Borowiak, K.; Budka, A.; Kanclerz, J.; Janicka, E.; Kaczor, A.; Żyromski, A.; Biniak-Pieróg, M.; Podawca, K.; Mleczek, M.; et al. How Polluted Are Cities in Central Europe?—Heavy Metal Contamination in Taraxacum Officinale and Soils Collected from Different Land Use Areas of Three Representative Cities. Chemosphere 2021, 266, 129113. [Google Scholar] [CrossRef] [PubMed]
- Oyuela Leguizamo, M.A.; Fernández Gómez, W.D.; Sarmiento, M.C.G. Native Herbaceous Plant Species with Potential Use in Phytoremediation of Heavy Metals, Spotlight on Wetlands—A Review. Chemosphere 2017, 168, 1230–1247. [Google Scholar] [CrossRef]
- DalCorso, G.; Fasani, E.; Manara, A.; Visioli, G.; Furini, A. Heavy Metal Pollutions: State of the Art and Innovation in Phytoremediation. Int. J. Mol. Sci. 2019, 20, 3412. [Google Scholar] [CrossRef]
- Sladkovska, T.; Wolski, K.; Bujak, H.; Radkowski, A.; Sobol, Ł. A Review of Research on the Use of Selected Grass Species in Removal of Heavy Metals. Agronomy 2022, 12, 2587. [Google Scholar] [CrossRef]
- Thakur, M.; Praveen, S.; Divte, P.R.; Mitra, R.; Kumar, M.; Gupta, C.K.; Kalidindi, U.; Bansal, R.; Roy, S.; Anand, A.; et al. Metal Tolerance in Plants: Molecular and Physicochemical Interface Determines the “Not so Heavy Effect” of Heavy Metals. Chemosphere 2022, 287, 131957. [Google Scholar] [CrossRef] [PubMed]
- Clemens, S. Developing Tools for Phytoremediation: Towards a Molecular Understanding of Plant Metal Toleranoe and Accumulation. Artic. Int. J. Occup. Med. Environ. Health 2001, 14, 235–239. [Google Scholar]
- Sytar, O.; Ghosh, S.; Malinska, H.; Zivcak, M.; Brestic, M. Physiological and Molecular Mechanisms of Metal Accumulation in Hyperaccumulator Plants. Physiol. Plant. 2021, 173, 148–166. [Google Scholar] [CrossRef]
- Bazan, G.; Galizia, G. Geographical and Ecological Outline of Metal(Loid) Accumulating Plants in Italian Vascularflora. Ecocycles 2018, 4, 47–64. [Google Scholar] [CrossRef]
- Capuana, M. A Review of the Performance of Woody and Herbaceous Ornamental Plants for Phytoremediation in Urban Areas. IForest 2020, 13, 139–151. [Google Scholar] [CrossRef]
- Massa, N.; Andreucci, F.; Poli, M.; Aceto, M.; Barbato, R.; Berta, G. Screening for Heavy Metal Accumulators amongst Autochtonous Plants in a Polluted Site in Italy. Ecotoxicol. Environ. Saf. 2010, 73, 1988–1997. [Google Scholar] [CrossRef] [PubMed]
- Álvarez, E.; Fernández Marcos, M.L.; Vaamonde, C.; Fernández-Sanjurjo, M.J. Heavy Metals in the Dump of an Abandoned Mine in Galicia (NW Spain) and in the Spontaneously Occurring Vegetation. Sci. Total Environ. 2003, 313, 185–197. [Google Scholar] [CrossRef]
- Fernández, S.; Poschenrieder, C.; Marcenò, C.; Gallego, J.R.; Jiménez-Gámez, D.; Bueno, A.; Afif, E. Phytoremediation Capability of Native Plant Species Living on Pb-Zn and Hg-As Mining Wastes in the Cantabrian Range, North of Spain. J. Geochem. Explor. 2017, 174, 10–20. [Google Scholar] [CrossRef]
- Guarino, C.; Zuzolo, D.; Marziano, M.; Baiamonte, G.; Morra, L.; Benotti, D.; Gresia, D.; Stacul, E.R.; Cicchella, D.; Sciarrillo, R. Identification of Native-Metal Tolerant Plant Species in Situ: Environmental Implications and Functional Traits. Sci. Total Environ. 2019, 650, 3156–3167. [Google Scholar] [CrossRef]
- Pietrelli, L.; Menegoni, P.; Papetti, P. Bioaccumulation of Heavy Metals by Herbaceous Species Grown in Urban and Rural Sites. Water Air Soil Pollut. 2022, 233, 141. [Google Scholar] [CrossRef]
- Peñalver-Alcalá, A.; Álvarez-Rogel, J.; Conesa, H.M.; González-Alcaraz, M.N. Biochar and Urban Solid Refuse Ameliorate the Inhospitality of Acidic Mine Tailings and Foster Effective Spontaneous Plant Colonization under Semiarid Climate. J. Environ. Manag. 2021, 292, 112824. [Google Scholar] [CrossRef]
- Biasioli, M.; Ajmone-Marsan, F. Organic and Inorganic Diffuse Contamination in Urban Soils: The Case of Torino (Italy). J. Environ. Monit. 2007, 9, 862–868. [Google Scholar] [CrossRef]
- Cardelli, R.; Vanni, G.; Marchini, F.; Saviozzi, A. Characterization and Origin of Organic and Inorganic Pollution in Urban Soils in Pisa (Tuscany, Italy). Environ. Monit. Assess. 2017, 189, 554. [Google Scholar] [CrossRef]
- Imperato, M.; Adamo, P.; Naimo, D.; Arienzo, M.; Stanzione, D.; Violante, P. Spatial Distribution of Heavy Metals in Urban Soils of Naples City (Italy). Environ. Pollut. 2003, 124, 247–256. [Google Scholar] [CrossRef] [PubMed]
- Manta, D.S.; Angelone, M.; Bellanca, A.; Neri, R.; Sprovieri, M. Heavy Metals in Urban Soils: A Case Study from the City of Palermo (Sicily), Italy. Sci. Total Environ. 2002, 300, 229–243. [Google Scholar] [CrossRef]
- Padoan, E.; Romè, C.; Ajmone-Marsan, F. Bioaccessibility and Size Distribution of Metals in Road Dust and Roadside Soils along a Peri-Urban Transect. Sci. Total Environ. 2017, 601–602, 89–98. [Google Scholar] [CrossRef] [PubMed]
- Poggio, L.; Vrščaj, B.; Schulin, R.; Hepperle, E.; Ajmone Marsan, F. Metals Pollution and Human Bioaccessibility of Topsoils in Grugliasco (Italy). Environ. Pollut. 2009, 157, 680–689. [Google Scholar] [CrossRef]
- Yan, L.; Franco, A.M.; Elio, P. Health Risk Assessment via Ingestion and Inhalation of Soil PTE of an Urban Area. Chemosphere 2021, 281, 130964. [Google Scholar] [CrossRef] [PubMed]
- Basile, G.; Palmieri, F.; Violante, P. Inquinamento Da Zinco, Rame e Piombo Nel Suolo Dell’area Urbana Ed Industriale Di Napoli. Ann. Fac. Sci. Agrar. Univ. Studi Napoli 1974, 8, 117–126. [Google Scholar]
- Serrani, D.; Ajmone-Marsan, F.; Corti, G.; Cocco, S.; Cardelli, V.; Adamo, P. Heavy Metal Load and Effects on Biochemical Properties in Urban Soils of a Medium-Sized City, Ancona, Italy. Environ. Geochem. Health 2022, 44, 3425–3449. [Google Scholar] [CrossRef]
- Petrini, R.; Ghezzi, L.; Arrighi, S.; Genovesi, L.; Frassi, C.; Pandolfi, L. Trace Elements in Soil and Urban Groundwater in an Area Impacted by Metallurgical Activity: Health Risk Assessment in the Historical Barga Municipality (Tuscany, Italy). Int. J. Environ. Res. Public Health 2022, 19, 13419. [Google Scholar] [CrossRef]
- Baldi, V.; Bellino, A.; Baldantoni, D. Small-Scale Land Use Effects on Plant Communities in Mediterranean Urban Ecosystems. Ecol. Indic. 2025, 170, 113051. [Google Scholar] [CrossRef]
- Frisk, C.A.; Adams-Groom, B.; Smith, M. Isolating the Species Element in Grass Pollen Allergy: A Review. Sci. Total Environ. 2023, 883, 163661. [Google Scholar] [CrossRef]
- Capotorti, G.; Del Vico, E.; Lattanzi, E.; Tilia, A.; Celesti-Grapow, L. Exploring Biodiversity in a Metropolitan Area in the Mediterranean Region: The Urban and Suburban Flora of Rome (Italy). Plant Biosyst. 2013, 147, 174–185. [Google Scholar] [CrossRef]
- Baroni, F.; Boscagli, A.; Protano, G.; Riccobono, F. Antimony Accumulation in Achillea Ageratum, Plantago Lanceolata and Silene Vulgaris Growing in an Old Sb-Mining Area. Environ. Pollut. 2000, 109, 347–352. [Google Scholar] [CrossRef]
- Broadley, M.R.; Willey, N.J.; Wilkins, J.C.; Baker, A.J.M.; Mead, A.; White, P.J. Phylogenetic Variation in Heavy Metal Accumulation in Angiosperms. New Phytol. 2001, 152, 9–27. [Google Scholar] [CrossRef]
- Petrik, P.; Soudek, P.; Benesova, D.; Najmanová, P.; Najman, M.; Vanek, T. Flora of Toxic Depots in Selcted Industrial Zones. Acta Soc. Bot. Pol. 2009, 78, 327–334. [Google Scholar] [CrossRef]
- Freitas, H.; Prasad, M.N.V.; Pratas, J. Analysis of Serpentinophytes from North-East of Portugal for Trace Metal Accumulation—Relevance to the Management of Mine Environment. Chemosphere 2004, 54, 1625–1642. [Google Scholar] [CrossRef]
- Deepika; Haritash, A.K. Phytoremediation Potential of Ornamental Plants for Heavy Metal Removal from Contaminated Soil: A Critical Review. Hortic. Environ. Biotechnol. 2023, 64, 709–734. [Google Scholar] [CrossRef]
- Raklami, A.; Meddich, A.; Oufdou, K.; Baslam, M. Plants—Microorganisms-Based Bioremediation for Heavy Metal Cleanup: Recent Developments, Phytoremediation Techniques, Regulation Mechanisms, and Molecular Responses. Int. J. Mol. Sci. 2022, 23, 5031. [Google Scholar] [CrossRef]
- Guérin, T.; Ghinet, A.; Waterlot, C. The Phytoextraction Power of Cichorium intybus L. on Metal-Contaminated Soil: Focus on Time- and Cultivar-Depending Accumulation and Distribution of Cadmium, Lead and Zinc. Chemosphere 2022, 287, 132122. [Google Scholar] [CrossRef]
- Buscaroli, A.; Zannoni, D.; Menichetti, M.; Dinelli, E. Assessment of Metal Accumulation Capacity of Dittrichia viscosa (L.) Greuter in Two Different Italian Mine Areas for Contaminated Soils Remediation. J. Geochem. Explor. 2017, 182, 123–131. [Google Scholar] [CrossRef]
- Moreira, H.; Marques, A.P.G.C.; Rangel, A.O.S.S.; Castro, P.M.L. Heavy Metal Accumulation in Plant Species Indigenous to a Contaminated Portuguese Site: Prospects for Phytoremediation. Water Air Soil Pollut. 2011, 221, 377–389. [Google Scholar] [CrossRef]
- Solomou, A.D.; Germani, R.; Proutsos, N.; Petropoulou, M.; Koutroumpilas, P.; Galanis, C.; Maroulis, G.; Kolimenakis, A. Utilizing Mediterranean Plants to Remove Contaminants from the Soil Environment: A Short Review. Agriculture 2022, 12, 238. [Google Scholar] [CrossRef]
- Grapow, L.C.; Blasi, C. A Comparison of the Urban Flora of Different Phytoclimatic Regions in Italy. Glob. Ecol. Biogeogr. Lett. 1998, 7, 367–378. [Google Scholar] [CrossRef]
- Hou, X.Y.; Liu, S.L.; Cheng, F.Y.; Zhang, Y.Q.; Dong, S.K.; Su, X.K.; Liu, G.H. Vegetation Community Composition along Disturbance Gradients of Four Typical Open-Pit Mines in Yunnan Province of Southwest China. Land Degrad. Dev. 2019, 30, 437–447. [Google Scholar] [CrossRef]
- Bretzel, F.; Benvenuti, S.; Pistelli, L. Metal Contamination in Urban Street Sediment in Pisa (Italy) Can Affect the Production of Antioxidant Metabolites in Taraxacum Officinale Weber. Environ. Sci. Pollut. Res. 2014, 21, 2325–2333. [Google Scholar] [CrossRef] [PubMed]
- Giacomino, A.; Malandrino, M.; Colombo, M.L.; Miaglia, S.; Maimone, P.; Blancato, S.; Conca, E.; Abollino, O. Metal Content in Dandelion (Taraxacum officinale) Leaves: Influence of Vehicular Traffic and Safety upon Consumption as Food. J. Chem. 2016, 2016, 9842987. [Google Scholar] [CrossRef]
- Scott, S.B.; Gardiner, M.M. Trace Metals in Nectar of Important Urban Pollinator Forage Plants: A Direct Exposure Risk to Pollinators and Nectar-Feeding Animals in Cities. Ecol. Evol. 2025, 15, 71238. [Google Scholar] [CrossRef] [PubMed]
- Tirillini, B.; Ricci, A.; Pintore, G.; Chessa, M.; Sighinolfi, S. Induction of Hypericins in Hypericum Perforatum in Response to Chromium. Fitoterapia 2006, 77, 164–170. [Google Scholar] [CrossRef]
- Dambiec, M.; Wojtuń, B.; Samecka-Cymerman, A.; Polechońska, L.; Rudecki, A.; Kempers, A.J. Fluorine and Metals in Polygonum Arenastrum Bor. from Areas Influenced by Various Types of Industry. Ecol. Indic. 2017, 82, 163–174. [Google Scholar] [CrossRef]
- Polechońska, M.; Zawadzki, K.; Samecka-Cymerman, A.; Kolon, K.; Klink, A.; Krawczyk, J.; Kempers, A.J. Evaluation of the Bioindicator Suitability of Polygonum Aviculare in Urban Areas. Ecol. Indic. 2013, 24, 552–556. [Google Scholar] [CrossRef]
- Hanousková, B.; Száková, J.; Rychlíková, E.; Najmanová, J.; Košnář, Z.; Tlustoš, P. The Risk Assessment of Inorganic and Organic Pollutant Levels in an Urban Area Affected by Intensive Industry. Environ. Monit. Assess. 2021, 193, 68. [Google Scholar] [CrossRef]
- Fratarcangeli, C.; Fanelli, G.; Franceschini, S.; De Sanctis, M.; Travaglini, A. Beyond the Urban-Rural Gradient: Self-Organizing Map Detects the Nine Landscape Types of the City of Rome. Urban For. Urban Green. 2019, 38, 354–370. [Google Scholar] [CrossRef]
- WFO (2026): World Flora Online. Published on the Internet. Available online: http://www.worldfloraonline.org (accessed on 8 May 2026).
- Molina, J.A.; Martín-Sanz, J.P.; Casermeiro, M.Á.; Quintana, J.R. Spontaneous Urban Vegetation as an Indicator of Soil Functionality and Ecosystem Services. Appl. Veg. Sci. 2023, 26, e12827. [Google Scholar] [CrossRef]
- Nichols, R.N.; Goulson, D.; Holland, J.M. The Best Wildflowers for Wild Bees. J. Insect Conserv. 2019, 23, 819–830. [Google Scholar] [CrossRef]
- Hrabovský, M.; Ščevková, J.; Rendeková, A.; Zahradníková, E.; Jarolímek, I. Long-Term Changes in the Allergenic Potential of Ruderal Vegetation in a Central European Urban Area. Reg. Environ. Change 2025, 25, 35. [Google Scholar] [CrossRef]




| No | Species | Family | Biological Form | Activity | Heavy Metals | References | ||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Cr | Cu | Zn | Ni | Cd | Pb | Mn | As | Hg | Fe | Sb | ||||||
| 1 | Daucus carota L. | Apiaceae | H | Phytoex | • | • | • | • | • | • | • | [22,24,26] | ||||
| 2 | Achillea ageratum L. | Asteraceae | H | Phytoex | • | [41] | ||||||||||
| 3 | Achillea millefolium L. | Asteraceae | H | Phytoex | • | [42,43] | ||||||||||
| 4 | Achillea millefolium L. subsp. millefolium | Asteraceae | H | Phytoex | • | • | • | [44] | ||||||||
| 5 | Calendula officinalis L. | Asteraceae | H–T | Phytoex Phytostab | • | • | • | • | • | [21,45,46] | ||||||
| 6 | Cichorium intybus L. | Asteraceae | H | Phytoex | • | • | • | • | • | • | [26,42,47] | |||||
| 7 | Dittrichia viscosa (L.) Greuter | Asteraceae | H | Phytoex Phytostab | • | • | • | • | • | • | [3,25,48] | |||||
| 8 | Helianthus annuus L. | Asteraceae | T | Phytoex Phytostab | • | • | • | • | • | • | • | [19,20,21,42,45,46] | ||||
| 9 | Hypochaeris radicata L. | Asteraceae | H | Phytoex | • | • | • | • | • | [14,26,44,49,50] | ||||||
| 10 | Picris hieracioides L. | Asteraceae | H | Phytoex | • | • | • | • | [26,51,52] | |||||||
| 11 | Taraxacum sect. Taraxacum F.H.Wigg. | Asteraceae | H | Phytoex | • | • | • | • | • | • | • | [13,22,53,54] | ||||
| 12 | Brassica napus L. | Brassicaceae | T | Phytoex | • | • | [20,46] | |||||||||
| 13 | Brassica rapa L. | Brassicaceae | T | Phytoex | • | • | • | [20] | ||||||||
| 14 | Hirschfeldia incana L. | Brassicaceae | H | Phytoex | • | • | • | [3,20,49] | ||||||||
| 15 | Convolvulus arvensis L. | Convolvulaceae | G | Phytoex Phytostab | • | • | • | • | [3,20,22,44,55] | |||||||
| 16 | Anthyllis vulneraria L. | Fabaceae | H–T | Phytostab | • | • | • | • | [3] | |||||||
| 17 | Lotus corniculatus L. | Fabaceae | H | Phytoex | • | • | [20,22,24,25] | |||||||||
| 18 | Lupinus albus L. | Fabaceae | T | Phytoex | • | • | • | • | • | • | [3,14] | |||||
| 19 | Medicago lupulina L. | Fabaceae | T | Phytostab | • | [20,22,25] | ||||||||||
| 20 | Trifolium arvense L. var. arvense | Fabaceae | T | Phytoex Phytostab | • | • | • | • | • | • | [42,44] | |||||
| 21 | Trifolium repens L. subsp. repens | Fabaceae | H | Phytostab | • | • | • | • | • | [14,16,22,42,44] | ||||||
| 22 | Hypericum perforatum L. | Hypericaceae | H | Phytoex | • | • | • | [14,26,56] | ||||||||
| 23 | Festuca arundinacea Schreb. | Poaceae | H | Phytoex | • | • | • | • | [16,25] | |||||||
| 24 | Festuca rubra L. | Poaceae | H | Phytoex Phytostab | • | • | • | • | • | • | [16,20,22,24] | |||||
| 25 | Piptatherum miliaceum (L.) Coss. | Poaceae | H | Phytostab | • | • | • | • | [20,24,25,50] | |||||||
| 26 | Polygonum arenastrum Boreau | Polygonaceae | T | Phytoex Phytostab | • | • | • | • | • | • | [44,57] | |||||
| 27 | Polygonum aviculare L. subsp. aviculare | Polygonaceae | T | Phytoex Phytostab | • | • | • | • | • | • | • | • | [20,22,58,59] | |||
| 28 | Verbascum sinuatum L. | Scrophulariaceae | H | Phytoex Phytostab | • | • | • | [25] | ||||||||
| 29 | Verbascum thapsus L. | Scrophulariaceae | H | Phytoex | • | • | • | [26] | ||||||||
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Nuscis, G.; Cocco, E.; Buoio, E.; Frigerio, J.; Maxia, A.; Colleo, P.; De Agostini, A.; Cortis, P. Herbaceous Plants as a Phytoremediation Tool in Urban Areas: A Review. Plants 2026, 15, 1609. https://doi.org/10.3390/plants15111609
Nuscis G, Cocco E, Buoio E, Frigerio J, Maxia A, Colleo P, De Agostini A, Cortis P. Herbaceous Plants as a Phytoremediation Tool in Urban Areas: A Review. Plants. 2026; 15(11):1609. https://doi.org/10.3390/plants15111609
Chicago/Turabian StyleNuscis, Giulia, Emma Cocco, Eleonora Buoio, Jessica Frigerio, Andrea Maxia, Paolo Colleo, Antonio De Agostini, and Pierluigi Cortis. 2026. "Herbaceous Plants as a Phytoremediation Tool in Urban Areas: A Review" Plants 15, no. 11: 1609. https://doi.org/10.3390/plants15111609
APA StyleNuscis, G., Cocco, E., Buoio, E., Frigerio, J., Maxia, A., Colleo, P., De Agostini, A., & Cortis, P. (2026). Herbaceous Plants as a Phytoremediation Tool in Urban Areas: A Review. Plants, 15(11), 1609. https://doi.org/10.3390/plants15111609

