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1.
Sci Total Environ ; 750: 141569, 2021 Jan 01.
Artigo em Inglês | MEDLINE | ID: mdl-32853936

RESUMO

Although the long-term exposure of aquatic organisms to cyanobacterial blooms is a regular occurrence in the environment, the prooxidant and neurotoxic effects of such conditions are still insufficiently investigated in situ. We examined the temporal dynamics of the biochemical parameters in the liver of Pelophylax kl. esculentus frogs that inhabit the northern (N) side of Lake Ludas (Serbia) with microcystins (MCs) produced in a cyanobacterial bloom over three summer months. The obtained data were compared with data on frogs that live on the southern (S), MC-free side of the same lake. Our results showed that the MC-producing bloom induced oxidative damage to proteins and lipids, observed as a decrease in the concentration of protein -SH groups and increased lipid peroxidation (LPO) in the liver of N frogs in comparison to S frogs. Glutathione (GSH) played a key role in the transient defense against the MC-induced development of LPO. The low glutathione peroxidase (GPx) activity detected in all groups of frogs from the N site was crucial for the observed prooxidant consequences. The bloom impaired cholinergic homeostasis as a result of a decrease in ChE activity. A delayed neurotoxic effect in relation to the prooxidant outcomes was observed. Our results also showed that even though the integrated biomarker response (IBR) of the antioxidant biomarkers increased during exposure, the individual biochemical parameters did not exhibit a well-defined time-dependent pattern because of specific adaptation dynamics and/or additional effects of the physicochemical parameters of the water. This comprehensive environmental ecotoxicological evaluation of the cyanobacterial bloom-induced biochemical alterations in the liver of frogs provides a new basis for further investigations of the prolonged, real-life ecotoxicity of the blooms.


Assuntos
Cianobactérias , Microcistinas , Animais , Cianobactérias/metabolismo , Fígado/metabolismo , Microcistinas/metabolismo , Microcistinas/toxicidade , Estresse Oxidativo , Rana esculenta/metabolismo , Sérvia
2.
Aquat Toxicol ; 220: 105399, 2020 Mar.
Artigo em Inglês | MEDLINE | ID: mdl-31896464

RESUMO

There is little information in scientific literature as to how conditions created by a microcystin (MC) producing cyanobacterial bloom affect the oxidant/antioxidant, biotransformation and neurotoxicity parameters in adult frogs in situ. We investigated biochemical parameters in the skin and muscle of Pelophylax kl. esculentus from Lake Ludas (Serbia) by comparing frogs that live on the northern bloom side (BS) of the lake with those that inhabit the southern no-bloom side (NBS). A higher protein carbonylation level and lower antioxidant defense system capability in the skin of frogs living in conditions of the cyanobacterial bloom were observed. Inhibition of glutathione-dependent machinery was the major mechanism responsible for the induction of cyanobacterial bloom-mediated oxidative stress in frog skin. On the other hand, the detected higher ability of muscle to overcome bloom prooxidant toxicity was linked to a higher efficiency of the biotransformation system through glutathione-S-transferase activity and/or was the consequence of indirect exposure of the tissue to the bloom. Our results have also revealed that the cyanobacterial bloom conditions induced the cholinergic neurotransmitter system in both tissues. This study provides a better understanding of the ecotoxicological impact of the MC producing cyanobacterial bloom on frogs in situ. However, further investigations of the complex mechanism involved in cyanobacterial bloom toxicity in real environmental conditions are required.


Assuntos
Toxinas Bacterianas/toxicidade , Cianobactérias/metabolismo , Eutrofização , Toxinas Marinhas/toxicidade , Microcistinas/toxicidade , Músculos/efeitos dos fármacos , Rana esculenta/metabolismo , Pele/efeitos dos fármacos , Poluentes Químicos da Água/toxicidade , Animais , Antioxidantes/metabolismo , Toxinas Bacterianas/metabolismo , Biotransformação , Cianobactérias/crescimento & desenvolvimento , Toxinas de Cianobactérias , Monitoramento Ambiental , Lagos/química , Toxinas Marinhas/metabolismo , Microcistinas/metabolismo , Músculos/metabolismo , Estresse Oxidativo/efeitos dos fármacos , Rana esculenta/crescimento & desenvolvimento , Sérvia , Pele/metabolismo , Poluentes Químicos da Água/metabolismo
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