Transcriptome analysis to elucidate the toxicity mechanisms of fenvalerate, sulfide gatifloxacin, and ridomil on the hepatopancreas of Procambarus clarkii.
Alanine
/ analogs & derivatives
Animals
Anti-Bacterial Agents
/ toxicity
Astacoidea
/ drug effects
Fungicides, Industrial
/ toxicity
Gatifloxacin
/ toxicity
Gene Expression Profiling
Hepatopancreas
/ drug effects
Insecticides
/ toxicity
Nitriles
/ toxicity
Pyrethrins
/ toxicity
Transcriptome
/ drug effects
Water Pollutants, Chemical
/ toxicity
Fenvalerate
Hepatopancreas
Ridomil
Sulfide gatifloxacin
Toxicity mechanism
Transcriptome
Journal
Fish & shellfish immunology
ISSN: 1095-9947
Titre abrégé: Fish Shellfish Immunol
Pays: England
ID NLM: 9505220
Informations de publication
Date de publication:
Sep 2021
Sep 2021
Historique:
received:
29
03
2021
revised:
15
06
2021
accepted:
09
07
2021
pubmed:
14
7
2021
medline:
27
8
2021
entrez:
13
7
2021
Statut:
ppublish
Résumé
Most antibiotics, insecticides, and other chemicals used in agricultural and fishery production tend to persist in the environment. Fenvalerate, sulfide gatifloxacin, and ridomil are widely used in aquaculture as antibacterial, antifungal, and antiparasitic drugs; however, their toxicity mechanism remains unclear. Thus, we herein analyzed the effects of these three drugs on the hepatopancreas of Procambarus clarkii at the transcriptome level. Twelve normalized cDNA libraries were constructed using RNA extracted from P. clarkii after treatment with fenvalerate, sulfide gatifloxacin, or ridomil and from an untreated control group, followed by Kyoto Encyclopedia of Genes and Genomes pathway analysis. In the control vs fenvalerate and control vs sulfide gatifloxacin groups, 14 and seven pathways were significantly enriched, respectively. Further, the effects of fenvalerate and sulfide gatifloxacin were similar on the hepatopancreas of P. clarkii. We also found that the expression level of genes encoding senescence marker protein-30 and arylsulfatase A was downregulated in the sulfide gatifloxacin group, indicating that sulfide gatifloxacin accelerated the apoptosis of hepatopancreatocytes. The expression level of major facilitator superfamily domain containing 10 was downregulated, implying that it interferes with the ability of the hepatopancreas to metabolize drugs. Interestingly, we found that Niemann pick type C1 and glucosylceramidase-β potentially interact with each other, consequently decreasing the antioxidant capacity of P. clarkii hepatopancreas. In the fenvalerate group, the downregulation of the expression level of xanthine dehydrogenase indicated that fenvalerate affected the immune system of P. clarkii; moreover, the upregulation of the expression level of pancreatitis-associated protein-2 and cathepsin C indicated that fenvalerate caused possible inflammatory pathological injury to P. clarkii hepatopancreas. In the ridomil group, no pathway was significantly enriched. In total, 21 genes showed significant differences in all three groups. To conclude, although there appears to be some overlap in the toxicity mechanisms of fenvalerate, sulfide gatifloxacin, and ridomil, further studies are warranted.
Identifiants
pubmed: 34256134
pii: S1050-4648(21)00193-5
doi: 10.1016/j.fsi.2021.07.004
pii:
doi:
Substances chimiques
Anti-Bacterial Agents
0
Fungicides, Industrial
0
Insecticides
0
Nitriles
0
Pyrethrins
0
Water Pollutants, Chemical
0
metalaxyl
16K4M187IF
Gatifloxacin
L4618BD7KJ
Alanine
OF5P57N2ZX
fenvalerate
Z6MXZ39302
Types de publication
Journal Article
Langues
eng
Sous-ensembles de citation
IM
Pagination
140-149Informations de copyright
Copyright © 2021 Elsevier Ltd. All rights reserved.