Fitness assessment of Mytilus galloprovincialis Lamarck, 1819 after exposure to herbicide metabolite propachlor ESA DOI Creative Commons

Nikola Třešňáková,

Federica Impellitteri, Sergio Famulari

и другие.

Environmental Pollution, Год журнала: 2023, Номер 331, С. 121878 - 121878

Опубликована: Май 25, 2023

The lack of data on the chronic effects chloroacetanilide herbicide metabolites non-target aquatic organisms creates a gap in knowledge about comprehensive impacts excessive and repeated pesticide use. Therefore, this study evaluates long-term propachlor ethanolic sulfonic acid (PROP-ESA) after 10 (T1) 20 (T2) days at environmental level 3.5 μg.L−1 (E1) its 10x fold multiply 35 (E2) model organism Mytilus galloprovincialis. To end, PROP-ESA usually showed time- dose-dependent trend, especially amount soft mussel tissue. bioconcentration factor increased from T1 to T2 both exposure groups – 2.12 5.30 E1 2.32 5.48 E2. Biochemical haemolymph profile haemocyte viability were not affected by exposure. In addition, digestive gland (DG) cells decreased only E2 compared control T1. Moreover, malondialdehyde levels gills, DG, superoxidase dismutase activity oxidatively modified proteins PROP-ESA. Histopathological observation several damages gills (e.g., vacuolation, over-production mucus, loss cilia) DG growing trend infiltrations, alterations tubules). This revealed potential risk herbicide, propachlor, via primary metabolite Bivalve bioindicator species M. Furthermore, considering possibility biomagnification effect, most prominent threat poses ability be accumulated edible tissues. future research toxicity alone or their mixtures is needed gain results living organisms.

Язык: Английский

Long-term exposure to microplastics induces oxidative stress and a pro-inflammatory response in the gut of Sparus aurata Linnaeus, 1758 DOI

Antònia Solomando,

Xavier Capó, Carme Alomar

и другие.

Environmental Pollution, Год журнала: 2020, Номер 266, С. 115295 - 115295

Опубликована: Июль 31, 2020

Язык: Английский

Процитировано

169

Studying microplastics: Lessons from evaluated literature on animal model organisms and experimental approaches DOI
Marko D. Prokić, Branka R. Gavrilović, Tijana B. Radovanović

и другие.

Journal of Hazardous Materials, Год журнала: 2021, Номер 414, С. 125476 - 125476

Опубликована: Фев. 23, 2021

Язык: Английский

Процитировано

147

Source, bioaccumulation, degradability and toxicity of triclosan in aquatic environments: A review DOI Creative Commons
Owias Iqbal Dar, Raouf Aslam,

Deng Pan

и другие.

Environmental Technology & Innovation, Год журнала: 2021, Номер 25, С. 102122 - 102122

Опубликована: Ноя. 27, 2021

Triclosan (TCS), a lipophilic broad-spectrum biocide is widely used in personal care, acrylic, veterinary, medical and household products. It has been observed to be present aquatic environments, animal plant tissues around the world, even human blood, urine breast milk. Under natural conditions, TCS degrades photolytically as well through microbial action into more persistent toxic byproducts like dioxins. Moreover, accumulation deep water bodies or soil strata where light not adequately available makes its degradation prolonged. Present review undertaken with an objective highlight concerns surrounding exposure organisms, infiltration routes food chain, persistence accumulation, teratogenic, biochemical cytogenic effects on wide range of species. The widespread use products containing potential toxicity at lethal concentrations it compound utmost concern worldwide hence under permissible levels, proper disposal needs regulated.

Язык: Английский

Процитировано

126

Sentinel species selection for monitoring microplastic pollution: A review on one health approach DOI
Cristiana Roberta Multisanti, Carmine Merola, Monia Perugini

и другие.

Ecological Indicators, Год журнала: 2022, Номер 145, С. 109587 - 109587

Опубликована: Окт. 22, 2022

Язык: Английский

Процитировано

125

Impact of phthalates and bisphenols plasticizers on haemocyte immune function of aquatic invertebrates: A review on physiological, biochemical, and genomic aspects DOI
Mario Alberto Burgos-Aceves, Haitham G. Abo‐Al‐Ela, Caterina Faggio

и другие.

Journal of Hazardous Materials, Год журнала: 2021, Номер 419, С. 126426 - 126426

Опубликована: Июнь 17, 2021

Язык: Английский

Процитировано

120

Microplastics in decapod crustaceans: Accumulation, toxicity and impacts, a review DOI
Avelyno D’Costa

The Science of The Total Environment, Год журнала: 2022, Номер 832, С. 154963 - 154963

Опубликована: Апрель 1, 2022

Язык: Английский

Процитировано

113

Effects of microplastics, pesticides and nano-materials on fish health, oxidative stress and antioxidant defense mechanism DOI Creative Commons
Udayadharshini Subaramaniyam,

Rethi Saliya Allimuthu,

Shanu Vappu

и другие.

Frontiers in Physiology, Год журнала: 2023, Номер 14

Опубликована: Июнь 26, 2023

Microplastics and pesticides are emerging contaminants in the marine biota, which cause many harmful effects on aquatic organisms, especially fish. Fish is a staple affordable food source, rich animal protein, along with various vitamins, essential amino acids, minerals. Exposure of fish to microplastics, pesticides, nanoparticles generates ROS induces oxidative stress, inflammation, immunotoxicity, genotoxicity, DNA damage alters gut microbiota, thus reducing growth quality Changes behavioral patterns, swimming, feeding habits were also observed under exposures above contaminants. These affect Nrf-2, JNK, ERK, NF-κB, MAPK signaling pathways. And Nrf2-KEAP1 signalling modulates redox status marinating enzymes Effects found modulate antioxidant enzymes, including superoxide dismutase, catalase, glutathione system. So, protect health from contribution nano-technology or nano-formulations was researched. A decrease nutritional population significantly impacts human diet, influencing traditions economics worldwide. On other hand, traces microplastics habitat water can enter humans by consuming contaminated may result serious hazards. This review summarizes stress caused due nano-particle contamination exposure their impact health. As rescue mechanism, use management disease discussed.

Язык: Английский

Процитировано

83

Effects of plastic particles on aquatic invertebrates and fish – A review DOI
Nikola Hodkovicová, Aneta Hollerová, Zdeňka Svobodová

и другие.

Environmental Toxicology and Pharmacology, Год журнала: 2022, Номер 96, С. 104013 - 104013

Опубликована: Ноя. 1, 2022

Язык: Английский

Процитировано

78

Review: Mytilus galloprovincialis: An essential, low-cost model organism for the impact of xenobiotics on oxidative stress and public health DOI
Alexandrina-Ștefania Curpăn, Federica Impellitteri, Gabriel Plăvan

и другие.

Comparative Biochemistry and Physiology Part C Toxicology & Pharmacology, Год журнала: 2022, Номер 256, С. 109302 - 109302

Опубликована: Фев. 22, 2022

Язык: Английский

Процитировано

73

Combined effect of microplastic, salinomycin and heating on Unio tumidus DOI Creative Commons
Viktoria Martyniuk, Vira Khoma, Tetiana Matskiv

и другие.

Environmental Toxicology and Pharmacology, Год журнала: 2023, Номер 98, С. 104068 - 104068

Опубликована: Янв. 19, 2023

Microplastic (MP) and heating (T) suspected to modulate biological effects of aquatic contaminants. Salinomycin (Sal) is veterinary antibiotic anticancer agent. The goal this study was examine the multistress effect MP, Sal T on bioindicator bivalve mollusc. Unio tumidus were treated with MP (1 mg L-1), (0.6 µg their combination under 18° C (Mix) 25° (MixT) for 14 days. digestive glands analyzed. did not cause changes Mn- Cu,Zn-SOD, lipid peroxidation Cyp-450-depended EROD levels, whereas catalase, GST protein carbonyls (Sal-group) increased compared control. In Mix-group, enzymes, particularly (by 34% 115% respectively) up-regulated. However, in MixT-group, they corresponding control or lesser (EROD, catalase). Our findings emphasize need take into account interactions environmental risk assessment.

Язык: Английский

Процитировано

54