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Artykuły w czasopismach na temat "Hydroxybenzoates toxins"

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Rachid, Amanhir, Benhadouch Asia, Taleb Hamid, Rijal Leblad Benlahcen, Vale Paulo, and Blaghen Mohammed. "Weekly Occurrence of Gymnodinium catenatum and Paralytic Shellfish Poisoning in the Mediterranean Shore of Morocco." International Journal of Biochemistry Research & Review 17, no. 2 (2017): 1–11. https://doi.org/10.9734/IJBCRR/2017/14413.

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Weekly monitoring for the presence of <em>Gymnodinium catenatum </em>and PSP toxins in mussels (<em>Mytilus galloprovinciallis</em>) harvested on the growing site in Fnideq on the Mediterranean Moroccan coast was carried out from 2010 until 2012. The enumeration of <em>G. catenatum </em>cells in water was conducted using the light inverted microscope. Monitoring of PSP toxins levels in mussels was achieved using the mouse bioassay (MBA) method and toxin's profile was performed by HPLC/FD in a selected sample. The results showed a correlation between the evolution of <em>G. catenatum </em>cells
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Reis Costa, Pedro, Ana Braga, and Andrew Turner. "Accumulation and Elimination Dynamics of the Hydroxybenzoate Saxitoxin Analogues in Mussels Mytilus galloprovincialis Exposed to the Toxic Marine Dinoflagellate Gymnodinium catenatum." Toxins 10, no. 11 (2018): 428. http://dx.doi.org/10.3390/toxins10110428.

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Paralytic shellfish poisoning (PSP) is a severe food-borne illness, caused by the ingestion of seafood containing paralytic shellfish toxins (PST), which are naturally produced by marine dinoflagellates and accumulate in shellfish during algae blooms. Novel PST, designated as hydroxybenzoate analogues (also known as GC toxins), was relatively recently discovered in Gymnodinium catenatum strains worldwide. However, to date, there have been no studies examining their accumulation in shellfish. In this study, mussels (Mytilus galloprovincialis) were exposed to G. catenatum for five days and then
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Lin, Zhuo-Ru, Hui-Xia Geng, and Ren-Cheng Yu. "Potential roles of hydroxybenzoate paralytic shellfish toxins in modulating toxin biokinetics in scallops." Journal of Hazardous Materials 469 (May 2024): 133896. http://dx.doi.org/10.1016/j.jhazmat.2024.133896.

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Costa, Pedro Reis, Patrícia Pereira, Sofia Guilherme, et al. "Hydroxybenzoate paralytic shellfish toxins induce transient GST activity depletion and chromosomal damage in white seabream (Diplodus sargus)." Marine Environmental Research 79 (August 2012): 63–69. http://dx.doi.org/10.1016/j.marenvres.2012.05.004.

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Hussain, Nadia, Fatima Muccee, Muhammad Hammad, Farhan Mohiuddin, Saboor Muarij Bunny, and Aansa Shahab. "Molecular and metabolic characterization of petroleum hydrocarbons degrading Bacillus cereus." Polish Journal of Microbiology 73, no. 1 (2024): 107–20. http://dx.doi.org/10.33073/pjm-2024-012.

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Abstract Hydrocarbon constituents of petroleum are persistent, bioaccumulated, and bio-magnified in living tissues, transported to longer distances, and exert hazardous effects on human health and the ecosystem. Bioaugmentation with microorganisms like bacteria is an emerging approach that can mitigate the toxins from environmental sources. The present study was initiated to target the petroleum-contaminated soil of gasoline stations situated in Lahore. Petroleum degrading bacteria were isolated by serial dilution method followed by growth analysis, biochemical and molecular characterization,
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Lee, Jessica A., Sergey Stolyar, and Christopher J. Marx. "Aerobic Methoxydotrophy: Growth on Methoxylated Aromatic Compounds by Methylobacteriaceae." Frontiers in Microbiology 13 (March 11, 2022). http://dx.doi.org/10.3389/fmicb.2022.849573.

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Pink-pigmented facultative methylotrophs have long been studied for their ability to grow on reduced single-carbon (C1) compounds. The C1 groups that support methylotrophic growth may come from a variety of sources. Here, we describe a group of Methylobacterium strains that can engage in methoxydotrophy: they can metabolize the methoxy groups from several aromatic compounds that are commonly the product of lignin depolymerization. Furthermore, these organisms can utilize the full aromatic ring as a growth substrate, a phenotype that has rarely been described in Methylobacterium. We demonstrate
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