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Oxidative stress, lysosomal damage and dysfunctional autophagy in molluscan hepatopancreas (digestive gland) induced by chemical contaminants.
Shaw, J P; Moore, M N; Readman, J W; Mou, Z; Langston, W J; Lowe, D M; Frickers, P E; Al-Moosawi, L; Pascoe, C; Beesley, A.
Affiliation
  • Shaw JP; Plymouth Marine Laboratory, Prospect Place, the Hoe, Plymouth, Devon, PL1 3DH, UK.
  • Moore MN; Plymouth Marine Laboratory, Prospect Place, the Hoe, Plymouth, Devon, PL1 3DH, UK; European Centre for Environment & Human Health (ECEHH), University of Exeter Medical School, Knowledge Spa, Royal Cornwall Hospital, Truro, TR1 3HD, UK; School of Biological & Marine Sciences, University of Pl
  • Readman JW; Plymouth Marine Laboratory, Prospect Place, the Hoe, Plymouth, Devon, PL1 3DH, UK; School of Biological & Marine Sciences, University of Plymouth, Drake Circus, Plymouth, PL4 8AA, UK.
  • Mou Z; Plymouth Marine Laboratory, Prospect Place, the Hoe, Plymouth, Devon, PL1 3DH, UK.
  • Langston WJ; Marine Biological Association UK, Citadel Hill, Plymouth, Devon, PL1 2PB, UK.
  • Lowe DM; Plymouth Marine Laboratory, Prospect Place, the Hoe, Plymouth, Devon, PL1 3DH, UK.
  • Frickers PE; Plymouth Marine Laboratory, Prospect Place, the Hoe, Plymouth, Devon, PL1 3DH, UK.
  • Al-Moosawi L; Plymouth Marine Laboratory, Prospect Place, the Hoe, Plymouth, Devon, PL1 3DH, UK.
  • Pascoe C; Plymouth Marine Laboratory, Prospect Place, the Hoe, Plymouth, Devon, PL1 3DH, UK.
  • Beesley A; Plymouth Marine Laboratory, Prospect Place, the Hoe, Plymouth, Devon, PL1 3DH, UK.
Mar Environ Res ; 152: 104825, 2019 Dec.
Article in En | MEDLINE | ID: mdl-31668363
ABSTRACT
Autophagy is a highly conserved evolutionary survival or defence process that enables cells and organisms to survive periods of environmental stress by breaking down cellular organelles and macromolecules in autolysosomes to provide a supply of nutrients for cell maintenance. However, autophagy is also a part of normal cellular physiology that facilitates the turnover of cellular constituents under normal conditions it can be readily augmented by mild environmental stress; but becomes dysfunctional with severe oxidative stress leading to cellular pathology. The molluscan hepatopancreas or digestive gland provides a versatile and environmentally relevant model to investigate lysosomal autophagy and stress-induced dysfunctional autophagy. This latter process has been implicated in many animal and human disease conditions, including degenerative and neurodegenerative diseases, as well as obesity related conditions. Many environmental pollutants have also been found to induce dysfunctional autophagy in molluscan hepatopancreatic digestive cells, and in this study, the marine blue mussel Mytilus galloprovincialis was exposed for 7 days to 0.1 µM, 1 µM and 10 µM concentrations of fluoranthene and phenanthrene (PAHs); chlorpyrifos and malathion (organophosphorus compounds); atrazine (triazine herbicide); copper (transition metal) and dodecylbenzene sulphonic acid (LAS, surfactant). The marine snail or periwinkle, Littorina littorea, was also exposed to phenanthrene, chlorpyrifos and copper. Indices of oxidative stress, cell injury and dysfunctional autophagy were measured (i.e., lysosomal membrane stability, protein carbonyls, lipofuscin, and lysosomal accumulation of lipid or lipidosis). Evidence of oxidative stress, based on the elevation of lipofuscin and protein carbonyls, was found for all compounds tested; with chlorpyrifos being the most toxic to both species. Dysfunctional autophagy was induced by all of the compounds tested in both species, except for atrazine in mussels. This failure of normal autophagy was consistently associated with oxidative stress. Autophagic dysfunction is an important emerging feature in the aetiology of many disease conditions in animals and humans; and an explanatory conceptual mechanistic model has been developed for dysregulation of autophagy in response to oxidative stress.
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Full text: 1 Database: MEDLINE Main subject: Autophagy / Water Pollutants, Chemical / Oxidative Stress / Mytilus Limits: Animals / Humans Language: En Journal: Mar Environ Res Journal subject: BIOLOGIA / SAUDE AMBIENTAL / TOXICOLOGIA Year: 2019 Type: Article Affiliation country: United kingdom

Full text: 1 Database: MEDLINE Main subject: Autophagy / Water Pollutants, Chemical / Oxidative Stress / Mytilus Limits: Animals / Humans Language: En Journal: Mar Environ Res Journal subject: BIOLOGIA / SAUDE AMBIENTAL / TOXICOLOGIA Year: 2019 Type: Article Affiliation country: United kingdom