Bibliometric analysis of bioremediation of hydrocarbon-contaminated soils in Ecuador 2019-2025

Authors

DOI:

https://doi.org/10.56294/evk2026203

Keywords:

Bioremediation, Hydrocarbons, Contaminated Soils, Ecuador, Scopus

Abstract

Introduction: biotechnology has developed techniques such as bioremediation, which seeks to restore contaminated soils through the use of microorganisms, plants, or organic amendments, reducing the concentration of contaminants without generating toxic secondary waste. It is necessary to compile, organize, and analyze research on bioremediation of hydrocarbon-contaminated soils in Ecuador.
Objective: to analyze the current state of scientific production on bioremediation of hydrocarbon-contaminated soils in Ecuador during the period 2019-2025, through a bibliometric study.
Method: scientific studies from the Scopus database were compiled and processed with the help of Biblioshiny (RDtudio) and Google Colab for analysis and visualization of key indicators: techniques, organisms, bioremediation strategies, publications by year, most cited studies, national affiliations, international collaborations, co-authorship networks, and journal quartiles.
Results: they show sustained growth in scientific production, with a significant peak in 2022 and 2023. The most commonly used bioremediation techniques were bioaugmentation, phytoremediation, and the use of native microorganisms, with the genus Pseudomonas predominating, reflecting a preference for sustainable methodologies adapted to local conditions. The main national affiliations are public universities such as the University of the Armed Forces, the National University of Chimborazo, and the Technical University of Manabí. International collaborations, although few, are found in countries such as Mexico, Spain, Italy, Brazil, and Venezuela. Despite the progress, most research is published in low-quartile journals, which limits its international visibility.
Conclusions: it is important to strengthen national and international collaboration networks and expand bibliometric analysis to include non-indexed documentary sources to achieve a more comprehensive view of scientific development in this area in the Ecuadorian context.

References

1. Hidalgo-Lasso D, García-Villacís K, Urvina Ulloa J, Marín Tapia D, Gómez Ortega P, Coulon F. Updating risk remediation-endpoints for petroleum-contaminated soils? A case study in the Ecuadorian Amazon region. Heliyon. 2024;10(9). DOI: https://doi.org/10.1016/j.heliyon.2024.e30395

2. Pozo-Rivera WE, Quiloango-Chimarro C, Paredes X, Landívar M, Chiriboga C, Villacís J, et al. Response of dung beetle diversity to remediation of soil ecosystems in the Ecuadorian Amazon. Peerj. 2023;11. DOI: https://doi.org/10.7717/peerj.14975

3. Camacho DND, Macías TLS, Riera MA, Anchundia BJC. BIOREMEDIATION OF SOIL SAMPLES CONTAMINATED WITH CRUDE OIL USING RICE HUCK-BASED BIOCARBON (ORYZA SATIVA). International Journal of Conservation Science. 2024;15(2):1129–44. DOI: https://doi.org/10.36868/IJCS.2024.02.25

4. Wei Z, Wei Y, Liu Y, Niu S, Xu Y, Wang JJ, et al. Biocharbased materials as remediation strategy in petroleum hydrocarbon-contaminated soil and water: Performances, mechanisms, and environmental impact. Journal of Environmental Sciences China. 2024;138:350–72. DOI: https://doi.org/10.1016/j.jes.2023.04.008

5. Andrade JC, Mafla S, Riofrío K, Hernández J, Tobes I, Lara-Basantes C. Hydrocarbon tolerance evaluation of the microbiota associated with the Roystonea oleracea palm from Santay Island (Ecuador). IOP Conference Series: Earth and Environmental Science. 2024;1434(1). DOI: https://doi.org/10.1088/1755-1315/1434/1/012005

6. González-Toril E, Aguilera A, Permanyer A, Gallego JR, Márquez G, Lorenzo E. Metagenomic analysis of the microbial community at the Riutort oil shale mine (NE Spain): Potential applications in bioremediation and enhanced oil recovery. Fuel. 2023;349. DOI: https://doi.org/10.1016/j.fuel.2023.128609

7. Orejuela-Romero JA, Herrera Cuadrado ZV, Heredia Jara DA, Núñez Moreno MS, Santillán-Quiroga LM, Barahona M, et al. Oil Palm Bagasse as a Treatment for Soils Contaminated with Total Petroleum Hydrocarbons. Sustainability Switzerland. 2025;17(2). DOI: https://doi.org/10.3390/su17020422

8. Escudero-López HJ, Jácome-Pilco CR, Sanaguano-Salguero HDR, Bayas-Morejón IF, Serrano-Carrillo KA. Bacterial selection of the Pseudomonas genus with the capacity to treat water and contaminated soils. Journal of Water and Land Development. 2022;(53):238–41. DOI: https://doi.org/10.24425/jwld.2022.140803

9. Páliz KP, Licta E, Cunachi AM. Reduction of the soil environmental impact caused by the presence of total petroleum hydrocarbons (TPH) by using Pseudomonas sp. Scientific Review Engineering and Environmental Sciences. 2021;30(4):573–84. DOI: https://doi.org/10.22630/PNIKS.2021.30.4.48

10. García RAV, Barrera AEP, Taco CWT, Padilla MMM. Bioremediation of soils contaminated with hydrocarbons based on bacteria used as bioproducts | Biorremediación de suelos contaminados con hidrocarburos a base de bacterias utilizadas como bioproductos. Revista Lasallista De Investigacion. 2020;17(1):177–87. DOI: https://doi.org/10.22507/rli.v17n1a19

11. García VJ, Márquez CO, Cedeño AR, Montesdeoca KG. Assessing bioremediation of soils polluted with fuel oil 6 by means of diffuse reflectance spectroscopy. Resources. 2019;8(1). DOI: https://doi.org/10.3390/resources8010036

12. Hoang SA, Seshadri B, Bolan NS, Sarkar B, Lamb D, Vinu A, et al. Mitigation of petroleum-hydrocarbon-contaminated hazardous soils using organic amendments: A review. Journal of Hazardous Materials. 2021;416. DOI: https://doi.org/10.1016/j.jhazmat.2021.125702

13. Darío T, Velásquez M, Velasquez M. Biorremediación de suelos contaminados con hidrocarburos en Latinoamérica: revisión entre 2010-2023. Revista Estudios Ambientales. 2024;12(1):27–43. DOI: https://doi.org/10.47069/estudios-ambientales.v12i1.2278

14. Rosa C, Baccaro F, Cronemberger C, Hipólito J, Barros CF, De Jesus Rodrigues D, et al. The program for biodiversity research in Brazil: The role of regional networks for biodiversity knowledge, dissemination, and conservation. Anais Da Academia Brasileira de Ciencias. 2021;93(2).

15. Cruz-Hernández MA, Reyes-Peralta J, Mendoza-Herrera A, Rivera G, BocanegraGarcía V. Characterization of a microbacterium sp. Strain isolated from soils contaminated with hydrocarbons in the Burgos Basin, Mexico | Caracterización de una cepa de microbacterium sp. Aislada en suelos contaminados con hidrocarburos de la cuenca de Burgos, Méx. Revista Internacional De Contaminacion Ambiental. 2021;37:227–35. DOI: https://doi.org/10.20937/RICA.53837

16. Velásquez TDM, Tocuy O DDJA. Latin American Environmental Journals in Scopus and WoS in 2019: Relationship with Environmental Indicators. Bibliotecas. 2021;39(2).

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Published

2026-01-01

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How to Cite

1.
Lituma Carriel S del R. Bibliometric analysis of bioremediation of hydrocarbon-contaminated soils in Ecuador 2019-2025. eVitroKhem [Internet]. 2026 Jan. 1 [cited 2025 Sep. 26];5:203. Available from: https://evk.ageditor.ar/index.php/evk/article/view/203