Detection of plastics particles in equine blood by Scanning Electron Microscopy

Keywords: Plastic particles, young animals, scanning electron microscopy

Abstract

The study was conducted in the province of Guayas, located in the coastal region of Ecuador. The researchers analysed blood samples from 30 horses of different breeds (purebred, pony and  mixed breeds)  to detect  the presence  of micro- and nanoplastics (MPs and NPs). Blood smear and scanning electron microscopy (SEM) techniques were used to identify and quantify plastic particles in randomly selected animals aged between 2 and 12 years, with a body weight (BW) between 100 and 380 kg and a body condition score (BCS) between 5 and 6 (on a scale of 1 to 9), fed on natural grass and balanced supplements. The results did not show the presence of MPs, but NPs were identified in the blood smear of all animals, with an average of 51 particles per field of 1700 square microns (µm²) at a depth of 5 micrometres (µm) and an average size of 426.33 nanometres (nm). No significant difference was found in the number or size of NP particles between the sexes (females and males) (P=0.288); a greater presence of NPs was observed in younger horses (P<0.040). The pure-blood breed had a larger size of plastic particles (P < 0.020) and the crossbreeds had a greater amount of NP particles (P < 0.010) compared to other breeds. The research concludes that NPs are present in equine blood, highlighting the ability of these contaminants to enter the body and potentially cause adverse health effects. In particular, younger animals showed a higher presence of NPs in blood, suggesting that the effects of exposure may be more severe in the early stages of life.

Downloads

Download data is not yet available.

References

Allen BS, Materić D, Allen D, Macdonald A, Holzinger R, Le-Roux G. An early comparison of nano to microplastic mass in a remote catchment’s atmospheric deposition. J. Hazard Mater. Adv. [Internet]. 2022; 7:100-104. doi: https://doi.org/pcxp

Schröter L, Ventura N. Nanoplastic toxicity: insights and challenges from experimental model systems. Small. [Internet]. 2022; 18(31):220. doi: https://doi.org/pcxq

Sáenz C. Microplastics in the biota of Andean rivers. [Undergraduate thesis]. Quito- Pichincha. Ecuador; University of the Americas;2020 [cited 02 dic 2024]. 66 p. Available in: https://goo.su/0ZGfj

Castellanos W, Paytan L, Curasma J. Ecotoxicological influence of microplastics on the haematological profile of fistulated Brown Swiss cattle. Rev. Cient. Cienc. Ing. [Internet]. 2023; 3(2):48-56. doi: https://doi.org/pcxw

Burn CC, Dennison TL, Whay HR. Relationships between behaviour and health in working horses, donkeys, and mules in developing countries. Appl. Anim. Behav. Sci [Internet]. 2010; 126(3-4):109-118. doi: https://doi.org/cpjnh2

Holzer M, Mitrano DM, Carles L, Wagner B, Tlili A. Important ecological processes are affected by the accumulation and trophic transfer of nanoplastics in a freshwater periphyton-grazer food chain. Sci Total Environ .[Internet]. 2019; 646: 1048-1056. doi: https://doi.org/gfb49j

Long Y, Zhang Y, Zhou Z, Liu R, Qiu Z, Li J, Wang W, Li X, Yin L, Wen X. Are microplastics in livestock and poultry manure an emerging threat to agricultural soil safety?. Environ Sci Pollut Res. [Internet]. 2024; 31(10):11543–11558 doi: https://doi.org/gtm7dz

Marcelino RC, Cardoso RM, Domingues ELBC, Gonçalves RV, Lima GDA, Novaes RD. The emerging risk of microplastics and nanoplastics on the microstructure and function of reproductive organs in mammals: A systematic review of preclinical evidence. Life Sci. [Internet]. 2022; 295:120404. doi: https://doi.org/gpzkgg

Masciarelli E, Casorri L, Di Luigi M, Beni C, Valentini M, Costantini E, Aielli L, Reale M. Microplastics in Agricultural Crops and Their Possible Impact on Farmers’ Health: A Review. IJERPH . [Internet]. 2025; 22(1):45. doi: https://doi.org/pcxx

Liu M, Liu J, Xiong F, Xu K, Pu Y, Huang J, Zhang J, Pu Y, Sun R, Cheng K. Research advances of microplastics and potential health risks of microplastics on terrestrial higher mammals: a bibliometric analysis and literature review. ENV GEOCH H. [Internet]. 2023; 45(6):2803-2838. doi: https://doi.org/gv6vg4

De La Torre GE. Microplásticos en el medio marino: una problemática que abordar. Rev. Sci. Tecnology. [Internet]. 2019[citado el 02 dic 2024]; 15(14):27-37. Disponible en: https://goo.su/8C30W

Ham DH, Choi JS, Choi JH, Park WT. Microfluidic thrombosis analysis system: possibilities and limitations. Micro Nano Syst. Lett. [Internet]. 2023;11:17. doi: https://doi.org/pcx2

García S. Referencias históricas y evolución de los plásticos. Rev. Iberoam. Polym. [Internet]. 2009[cited Nov. 12 2024]; 10(1):71-80. Disponible en: https://goo.su/lKre

Celi-Simbaña SS, Andrade-Mora DS, Loza-Pavón SJ, Bermeo-Sierra TI. Microplásticos, un problema de salud pública emergente. Rev. Inf. Sci. [Internet]. 2023; 102:4-9. doi: https://doi.org/pcx3

Gallo C, Gimple J, Villaroel R, Goméz-Lopéz C, Méndez G, Saavedra-Sotomayor MA. Bioethics Advisory Committee, Fondecyt-Conicyt: Bioethical aspects of animal experimentation: FONDECYT-CONICYT. [Internet]. 2009 [cited Nov 28 2024]; 23-27 p. Available in: https://goo.su/Qnbo8la

Gobierno Provincial Autónomo Descentralizado del Guayas (GPADG). Plan de Desarrollo y Ordenamiento Territorial de la Provincia del Guayas. Guayaquil; 2021 [cited December 2 2024]. Available in: https://goo.su/5rYlA

Instituto Nacional de Estadística y Censos (INEC). Resultados Nacionales con Resúmenes Provinciales CNA. [Internet]. 2000 [cited December 2 2024]. Available in: https://goo.su/RcjCr4

Henneke DR, Potter GD, Kreider JL, Yeates BF. Relationship between condition score, physical measurements and body fat percentage in mares. Equine Vet. J. [Internet]. 1983; 15(6):371–372. doi: https://doi: https://doi.org/d3bw7b

León R, Bonifaz N, Gutiérrez F. Pastos y forrajes del Ecuador: Siembra y producción de pastos.1th. ed. Universidad Politécnica Salesiana; 2018.

Rochman CM, Hoh E, Kurobe T, Teh SJ. Ingested plastic transfers hazardous chemicals to fish and induces hepatic stress. Scientific Reports. [Internet]. 2013; 3:3263. doi: https://doi.org/gf7cz3

De Castro T, Valdez L, Rodríguez M, Benquet N, Rubianes E. Decline in assayable progesterone in bovine serum under different storage conditions. Trop. Anim. Health Prod. [Internet]. 2004; 36:381–384. doi: https://doi.org/ft5cqq

Andrade-Becerra R, Pérez-Rubiano C, Vargas-Avella J. Manual de prácticas de laboratorio en Microbiología Veterinaria. 1th. ed. Tunja: UPTC; 2023. 25 p. doi: https://doi.org/pcz7

Chandra J, George N, Narayanankutty SK. Isolation and characterization of cellulose nanofibrils from arecanut husk fibre. Rev. Carbohydr. Polym. [Internet]. 2016; 142:158–166. doi: https://doi.org/ggczwc

Reyes-Zambrano SJ, Lecona-Guzmán CA, Gutiérrez-Miceli FA, Santana-Buzzy N, Slas-Flores I, Tzec-Simá M, Barredo- Pool FA, Ruiz-Lau N, Ávila-Miranda ME. Scanning electron microscopy and enzymatic analysis in Agave americana during Fusarium oxysporum infection. Mex J Phytopathol. [Internet]. 2020; 38(3):408–419. doi: https://doi.org/pcz8

Lusher AL, Welden NA, Sobral P, Cole M. Sampling, isolation, and identification of microplastics ingested by fish and invertebrates. Analytical Methods. [Internet]. 2017; 9(9):1346-1360. doi: https://doi.org/gf428t

Van-Cauwenberghe L, Devriese L, Galgani F, Robbens J, Janssen CR. Microplastics in sediments: A review of techniques, occurrence and effects. Mar. Environ. Res. [Internet]. 2015; 111:5-17.doi: https://doi.org/ggrmr2

Mithun MH, Bin-Shaikat MF, Sazzad SA, Billah M, Salehin S, Foysal AM, Jubayer A, Islam R, Anzum A, Rahman- Sunny A. Microplastics in Aquatic Ecosystems: Sources, Impacts, and Challenges for Biodiversity, Food Security, and Human Health - A Meta-Analysis. Angiotherapy. [Internet]. 2024; 8(11):100035.doi: https://doi.org/pcz9

Kumar A, Negi YS, Choudhary V, Bhardwaj NK. Characterization of cellulose nanocrystals produced by acid hydrolysis from sugarcane bagasse as agro-waste. J. Mater Phys. Chem. [Internet]. 2014; 2(1):1–8. doi: https://doi.org/gjjkxb

Dagnino J. Biostatistics and epidemiology. Analysis of variance and correlation. Rev. Chil. Anest. [Internet]. 2014; 43(2):306-310. doi: https://doi.org/pc2b

INFOSTAT. Statistical analysis for research and management. Infostat. [Internet]. 2020[cited December 12 2024]. Available in: https://goo.su/zzVz4f

Wright SL, Rowe D, Thompson RC, Galloway TS. Microplastic ingestion decreases energy reserves in marine worms. Curr. Biol. [Internet]. 2013; 23(23):2186– 2190. doi: https://doi.org/p92

Prata JC, Patrico-Silva AL, Da-Costa JP, Dias-Pereira P, Carvalho A, Fernandes AJ, Da Costa FM, Duarte AC, Rocha-Santos T. Microplastics in internal tissues of companion animals from urban environments. Animals. [Internet]. 2022; 12(15):1979. doi: https://doi.org/pc2c

Bahrani F, Mohammadi A, Obaradaran S, De La Torre GE, Ramavandi B, SaeedI R, Tekle-Röttering A. Accumulation of microplastics in edible tissues of livestock (Cow and sheep). SSRN [Internet]. 2023; 4:6-10. Preprint. doi: https://doi.org/pc2d

Arthur CM, Baker J, Bamford H. Proceedings of the International Research Workshop on the Occurrence, Effects, and Fate of Microplastic Marine Debris; 2008 September 9-11; University of Washington Tacoma, Tacoma, WA, USA. Group; 2009. p 530. Available in: https://n9.cl/zsnqox

Lacava JE, Schmaedke A, Denaro MA, Bernabeu PR, Gargarello RM. Evaluation of the presence of microplastics on the beaches of the Río de la Plata: Buenos Aires City and surroundings. Rev. AIDIS Ing. Cienc. Ambient. [Internet]. 2022; 15(3):1163-1173. doi: https://doi.org/pc2f

Bilal M, Taj M, Ul-Hassan H, Yaqub A, Shah MIA, Sohail M, Rafiq N, Atique U, Abbas M, Sultana S, Abdali U, Arai T. First Report on Microplastics Quantification in Poultry Chicken and Potential Human Health Risks in Pakistan. Toxics. [Internet]. 2023; 11(7):612. doi: https://doi.org/gwnxcx

Ragusa A, Svelato A, Santacroce C, Catalano P, Notarstefano V, Carnevali O, Papa F, Rongioletti MCA, Baiocco F, Draghi S, D’Amore E, Rinaldo D, Giorgini E. Plasticenta: First evidence of microplastics in human placenta. Environ. Int. [Internet]. 2021; 146:106-274. doi: https://doi.org/ghqfkv

Amato-Lourenço LF, Carvalho-Oliveira R, Ribeiro-Júnior G, Dos Santos-Galvão L, Augusto-Ando R, Mauad T. Presence of airborne microplastics in human lung tissue. J. Hazard Mater. [Internet]. 2021; 416:124-126. doi: https://doi.org/gj6frf

Urli S, Corte-Pause F, CrociatI M, Baufeld A, Monaci M, Stradaioli G. Impact of microplastics and nanoplastics on livestock health: An emerging risk for reproductive efficiency. Animals. [Internet]. 2023; 13(7):1132. doi: https://doi.org/pc2g

Grechi N, Ferronato GA, Devkota S, Ferraz MAMM. Microplastics are detected in bull and dog sperm and polystyrene microparticles impair sperm fertilization. Biol. Reprod. [Internet]. 2024; 111(6):1341-1351. doi: https://doi.org/pc2h

Talsnes CE, Andrade AJ, Kuriyama SN, Taylor JA, Vom- Saal FS. Components of plastic: experimental studies in animals and relevance for human health. Philos. Trans. R. Soc. B. [Internet]. 2009; 364(1526):2079–2096. doi: https://doi.org/bqsrn9

Blackburn K, Green D. The potential effects of microplastics on human health: What is known and what is unknown. Ambio. [Internet]. 2022; 51(3):518-530. doi: https://doi.org/gm28cb

Wang W, Guan J, Feng Y, Nie L, Xu Y, Xu H, Fu F. Polystyrene microplastics induced nephrotoxicity associated with oxidative stress, inflammation, and endoplasmic reticulum stress in juvenile rats. Front. Nutr. [Internet]. 2023; 9:1059660. doi: https://doi.org/pc2j

Ying-Yong CQ, Valitaveettil S, Tang BL. Toxicity of microplastics and nanoplastics in mammalian systems. Int J Environ Res Public Health. [Internet]. 2020; 17(5):1509. doi: https://doi.org/gjf83k

Deng Y, Zhang Y, Lemos B, Ren H. Tissue accumulation of microplastics in mice and biomarker responses suggest widespread health risks of exposure. Sci. Rep. [Internet]. 2017; 7:46-87. doi: https://doi.org/f945n3

Published
2025-04-09
How to Cite
1.
Culcay-Troncozo I, Yánez-Avalos D, Delgado-Lozada J, Montalvo-Lozada M, Díaz-Albuja R, Marini P. Detection of plastics particles in equine blood by Scanning Electron Microscopy. Rev. Cient. FCV-LUZ [Internet]. 2025Apr.9 [cited 2025Jul.29];35(2):7. Available from: https://produccioncientifica.luz.edu.ve/index.php/cientifica/article/view/43788
Section
Veterinary Medicine