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1.
J Fish Biol ; 104(6): 2068-2080, 2024 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-38596840

RESUMO

The pervasive utilization of plastics and their integration into ecosystems has resulted in significant environmental issues, particularly the pollution of microplastics (MPs). In aquaculture, high-fat feed (HFD) is frequently employed to enhance the energy intake and economic fish production. This study utilized zebrafish as a model organism to investigate the impact of concurrent exposure to HFD and MPs on fish intestinal pathology damage and intestinal microbiome. The experimental design involved the division of zebrafish into two groups: one receiving a normal diet (ND) and the other receiving HFD. The zebrafish were exposed to a control group, as well as polystyrene (PS) MPs of varying sizes (5 and 50 µm). Histopathological examination revealed that the combination of 5 µm MPs and HFD resulted in the most significant damage to the zebrafish intestinal tract. Furthermore, gut microbiome assays indicated that exposure to MPs and HFD altered the composition of the gut microbiome. This study demonstrates that in aquaculture, the issue of HFD must be considered alongside concerns about MPs contamination, as both factors appear to have a combined effect on the intestinal pathology damage and intestinal microbiome. The findings of this research offer valuable insights for the improvement of fish farming practices.


Assuntos
Microbioma Gastrointestinal , Intestinos , Microplásticos , Poliestirenos , Poluentes Químicos da Água , Peixe-Zebra , Animais , Peixe-Zebra/microbiologia , Microplásticos/toxicidade , Poliestirenos/toxicidade , Poliestirenos/efeitos adversos , Microbioma Gastrointestinal/efeitos dos fármacos , Intestinos/patologia , Intestinos/microbiologia , Intestinos/efeitos dos fármacos , Poluentes Químicos da Água/toxicidade , Poluentes Químicos da Água/efeitos adversos , Aquicultura , Dieta Hiperlipídica/efeitos adversos , Ração Animal/análise
2.
Fish Shellfish Immunol ; 137: 108803, 2023 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-37164123

RESUMO

Extensive use of microplastics (MPs) threatens the safety of aquatic environments and hydrobionts. Increasing the weight of economic fish through high-fat diet (HFD) to increase production is common in aquaculture. However, little is known about the combined effects of MPs and HFD in fish. The aim of this study was to investigate the relationship between adiposity and MP bioaccumulation in fish. Using zebrafish as a vertebrate model, the content of polystyrene (PS) MPs in zebrafish tissues exposed to 5 and 50 µm of 1000 µg/L PS MPs was detected via confocal Raman spectroscopy in normal diet (ND) and HFD. The content of PS MPs in HFD group was significantly higher than that in ND group. The levels of hepatic lipids were significantly elevated in zebrafish subjected to HFD treatment, and this effect was aggravated by exposure to 5 µm PS MPs, and even caused liver injury. Transcriptomic analysis revealed that exposure to PS MPs interferes with hepatic lipid metabolism and energy homeostasis in zebrafish. These results suggests that in addition to controlling the use and performing proper recycling of plastic products in our daily life, we should not blindly increase the weight of fish through HFD. This aids protect the quality of economic fish and prevent MPs from being consumed by humans through the food chain. This study explored the interaction between fish feed culture and environmental pollutants to provide important reference for fish culture.


Assuntos
Poliestirenos , Poluentes Químicos da Água , Humanos , Animais , Poliestirenos/toxicidade , Microplásticos/toxicidade , Plásticos , Peixe-Zebra/metabolismo , Bioacumulação , Metabolismo dos Lipídeos , Dieta Hiperlipídica/efeitos adversos , Poluentes Químicos da Água/toxicidade
3.
Int Microbiol ; 24(3): 291-299, 2021 Aug.
Artigo em Inglês | MEDLINE | ID: mdl-33608776

RESUMO

Enterovirus A71 (EV-A71) is an important pathogen of severe hand, foot, and mouth disease (HFMD) in young children. This study aimed to retrospectively analyze the molecular epidemiology and recombination of EV-A71 in mainland China during 1987-2017. Phylogenetic tree showed that besides the previously reported subgenotypes A, B5, C0, C2, C3, and C4, a new subgenotype C6 emerged in mainland China. Recombination analysis indicated that C4 EV-A71 was derived from a common ancestor as a "double-recombinant" virus by intertypic recombination between C EV-A71 and CVA4, CVA5, CVA14, and CVA16 strains in P3 region and intratypic recombination between C and B EV-A71 strains in P2 region. The B5 EV-A71 shared high similarity with C EV-A71 in P1 region while it contained an unidentified sequence in P2 and P3 regions with two possible recombination patterns: one occurred between C4 EV-A71 and CVA3, CVA5, CVA6, CVA10, and CVA12 stains with one breakpoint in 3C, and the other occurred between C1, C2, C3, and C5 EV-A71 and CVA4, CVA5, CVA14, and CVA16 strains with two breakpoints in the 2A/2B junction and 3C. The C2 EV-A71 was probably a recombinant virus between C4 EV-A71 and CVA8 strains with two breakpoints located in the 5'UTR and 2A/2B junction. Moreover, an incredible recombination of C6 EV-A71 occurred between C4 and C2 EV-A71 with multiple breakpoints. Thus, continuous studies on EV-A71 genome characteristics are still useful and essential for monitoring emergence of new viruses and preventing HFMD outbreaks.


Assuntos
Enterovirus Humano A/genética , Doença de Mão, Pé e Boca/epidemiologia , Doença de Mão, Pé e Boca/virologia , China/epidemiologia , Evolução Molecular , Genoma Viral , Genótipo , Humanos , Epidemiologia Molecular , Filogenia , Recombinação Genética , Estudos Retrospectivos
4.
Environ Toxicol Chem ; 43(1): 147-158, 2024 Jan.
Artigo em Inglês | MEDLINE | ID: mdl-37850736

RESUMO

Nanoplastics (NPs) are widely found and threaten environmental and biological safety, because they do not degrade completely. We aimed to preliminarily explore the toxicity of NPs in obese children, because childhood obesity is a growing global health concern. We used zebrafish as a vertebrate toxicological model to examine the hepatic lipid metabolism and gut microbiota in juvenile zebrafish exposed to 1000 µg/L polystyrene NPs and a high-fat diet (HFD) using Raman spectroscopy, pathological examination, transcriptome analysis, and 16S sequencing techniques. Our study showed that polystyrene NPs perturb the lipid metabolism and gut microbiota stability in zebrafish. Furthermore, the combined effects of polystyrene NPs and HFD resulted in gastrointestinal injury. Our study is one of the first to investigate the toxicity of polystyrene NPs to normal-diet and HFD juvenile zebrafish using confocal Raman spectroscopy. Our results show the importance of a healthy diet and a reduction in the use of plasticware. Environ Toxicol Chem 2024;43:147-158. © 2023 SETAC.


Assuntos
Dieta Hiperlipídica , Obesidade Infantil , Criança , Animais , Humanos , Peixe-Zebra/metabolismo , Poliestirenos/toxicidade , Poliestirenos/metabolismo , Microplásticos/metabolismo , Obesidade Infantil/metabolismo , Fígado/metabolismo , Intestinos
5.
Acta Biomater ; 150: 199-210, 2022 09 15.
Artigo em Inglês | MEDLINE | ID: mdl-35870776

RESUMO

Tough hydrogel adhesives that consist of a robust gel network and can strongly adhere to wet tissues have shown great promise as the next generation of bioadhesives. While a variety of chemistries can be utilized to construct the tough gel network, the covalent conjugation methods for tissue adhesion are still limited. Here we report, for the first time, the use of side product-free amine-thiolactone chemistry which initiates a double crosslinking adhesion mechanism to develop tough gel adhesives. Thiolactone groups can conjugate with tissue-surface amines via a ring-opening reaction. The resultant thiol end groups can be further crosslinked into disulfide linkages, enabling the formation of a robust and stable adhesion layer. The thiolactone-bearing tough hydrogel composed of methacrylate-modified gelatin, acrylic acid, and thiolacone acrylamide exhibited good biocompatibility and mechanical properties, and strong adhesion to various types of engineering solids and tissues. We also demonstrated its ability to function as a tissue sealant and drug depot. The novel adhesion mechanism will diversify future design of bioadhesives for hemostasis, drug delivery, tissue repair, and other applications. STATEMENT OF SIGNIFICANCE: Tough hydrogel adhesives with excellent tissue-adhesive and mechanical properties have demonstrated tremendous promise for hemostasis, tissue repair, and drug delivery applications. However, the covalent chemistry for tissue adhesion has been limited, which narrows the choice of materials for the design of bioadhesives and may pose a safety concern. Here, for the first time, we report the use of side product-free amine-thiolactone chemistry, which involves a double crosslinking adhesion mechanism, for developing tough hydrogel adhesives. We demonstrate that thiolactone-bearing tough hydrogels exhibit favorable biocompatibility and mechanical properties, and superior adhesion to both engineering solids and tissues. Our new adhesion technology will greatly facilitate future development of advanced bioadhesives for numerous biomedical applications.


Assuntos
Hidrogéis , Adesivos Teciduais , Adesivos/química , Adesivos/farmacologia , Aminas , Gelatina/química , Humanos , Hidrogéis/química , Aderências Teciduais , Adesivos Teciduais/química , Adesivos Teciduais/farmacologia
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