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1

Stone, H. C., S. B. Wilson, and J. Overnell. "Cadmium-Binding Proteins in the Scallop Pecten maximus." Environmental Health Perspectives 65 (March 1986): 189. http://dx.doi.org/10.2307/3430179.

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Stone, H. C., S. B. Wilson, and J. Overnell. "Cadmium-binding proteins in the scallop Pecten maximus." Environmental Health Perspectives 65 (March 1986): 189–91. http://dx.doi.org/10.1289/ehp.8665189.

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Blanco, Juan, Ángeles Moroño, Fabiola Arévalo, et al. "Twenty-Five Years of Domoic Acid Monitoring in Galicia (NW Spain): Spatial, Temporal and Interspecific Variations." Toxins 13, no. 11 (2021): 756. http://dx.doi.org/10.3390/toxins13110756.

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Prevalence, impact on shellfish resources and interspecific, spatial, and temporal variabilities of domoic acid (DA) in bivalves from Galicia (NW Spain) have been studied based on more than 25 years of monitoring data. The maximum prevalence (samples in which DA was detected) (100%) and incidence (samples with DA levels above the regulatory limit) (97.4%) were recorded in Pecten maximus, and the minimum ones in Mytilus galloprovincialis (12.6 and 1.1%, respectively). The maximum DA concentrations were 663.9 mg kg−1 in P. maximus and 316 mg kg−1 in Venerupis corrugata. After excluding scallop P
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Turner, Andrew D., Adam M. Lewis, Robert G. Hatfield, Angus W. Galloway, and Wendy A. Higman. "Transformation of paralytic shellfish poisoning toxins in Crassostrea gigas and Pecten maximus reference materials." Toxicon 60, no. 6 (2012): 1117–34. http://dx.doi.org/10.1016/j.toxicon.2012.07.013.

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Blanco, Juan, Aida Mauríz, and Gonzalo Álvarez. "Distribution of Domoic Acid in the Digestive Gland of the King Scallop Pecten maximus." Toxins 12, no. 6 (2020): 371. http://dx.doi.org/10.3390/toxins12060371.

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The king scallop Pecten maximus retains the amnesic shellfish poisoning toxin, domoic acid (DA), for a long time. Most of the toxin is accumulated in the digestive gland, but this organ contains several cell types whose contribution to the accumulation of the toxin is unknown. Determining the time-course of the depuration by analyzing whole organs is difficult because the inter-individual variability is high. A sampling method, using biopsies of the digestive gland, has been developed. This method allows for repetitive sampling of the same scallop, but the representativeness of the samples obt
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6

LIU, H., M. KELLY, D. CAMPBELL, S. DONG, J. ZHU, and S. WANG. "Exposure to domoic acid affects larval development of king scallop Pecten maximus (Linnaeus, 1758)." Aquatic Toxicology 81, no. 2 (2007): 152–58. http://dx.doi.org/10.1016/j.aquatox.2006.11.012.

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Ventoso, Pablo, Antonio J. Pazos, Juan Blanco, M. Luz Pérez-Parallé, Juan C. Triviño, and José L. Sánchez. "Transcriptional Response in the Digestive Gland of the King Scallop (Pecten maximus) After the Injection of Domoic Acid." Toxins 13, no. 5 (2021): 339. http://dx.doi.org/10.3390/toxins13050339.

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Some diatom species of the genus Pseudo-nitzschia produce the toxin domoic acid. The depuration rate of domoic acid in Pecten maximus is very low; for this reason, king scallops generally contain high levels of domoic acid in their tissues. A transcriptomic approach was used to identify the genes differentially expressed in the P. maximus digestive gland after the injection of domoic acid. The differential expression analysis found 535 differentially expressed genes (226 up-regulated and 309 down-regulated). Protein–protein interaction networks obtained with the up-regulated genes were enriche
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8

Metian, M., M. Warnau, R. P. Cosson, F. Oberhänsli, and P. Bustamante. "Bioaccumulation and detoxification processes of Hg in the king scallop Pecten maximus: Field and laboratory investigations." Aquatic Toxicology 90, no. 3 (2008): 204–13. http://dx.doi.org/10.1016/j.aquatox.2008.08.014.

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Braña Magdalena, A., M. Lehane, C. Moroney, A. Furey, and K. J. James. "Food safety implications of the distribution of azaspiracids in the tissue compartments of scallops (Pecten maximus)." Food Additives & Contaminants 20, no. 2 (2003): 154–60. http://dx.doi.org/10.1080/0265203021000050275.

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Deshmukh, V., J. Deshpande, and M. Wani. "Elicitation based enhancement of solasodine production in in-vitro cultures of different Solanum species." Journal of Environmental Biology 44, no. 2 (2023): 167–74. http://dx.doi.org/10.22438/jeb/44/2/mrn-4011.

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Aim: To study the enhancement of solasodine content using elicitors such as NaCl, pectin, salicylic acid and yeast extract in cell suspension cultures of Solanum incanum, Solanum nigrum, Solanum surattense and Solanum villosum. Methodology: In-vitro callus induction from leaf explants was carried out on MS media supplemented with auxin, 2, 4- Dichlorophenoxyacetic acid (2.0 mg l-1). MS liquid medium supplemented with 2, 4-D (2.0 mg l-1) and varied concentrations of different elicitors were used for cell suspension culture. Results: The elicitor NaCl (150 mM) indicated maximum increment in sola
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11

Silitonga, Friska Septiani, D. Siswanta, Mudasir, and K. Gurning. "OPTIMIZATION OF CHITOSAN/PECTIN POLYELECTROLYTE COMPLEX USING GLUTARALDEHYDE-CROSSLINKED AS METHYLENE BLUE ABSORBENT." RASAYAN Journal of Chemistry 15, no. 03 (2022): 1938–42. http://dx.doi.org/10.31788/rjc.2022.1536917.

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This study aimed to make a crosslinked chitosan/pectin membrane with glutaraldehyde under conditions of time, pH, and maximum concentration in the adsorption of methylene blue. The first step was to synthesize the chitosan-pectin polyelectrolyte complex membrane which was cross-linked with glutaraldehyde by dissolving pectin in distilled water, then combining chitosan in acetic acid and adding glutaraldehyde and evaporated at 70°C. The second step is to characterize the synthesized membrane using FTIR, and determine the optimum contact time, optimum pH, and maximum concentration of methylene b
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12

Friocourt, M. P., G. Bodennec, and F. Berthou. "Determination of polyaromatic hydrocarbons in scallops (Pecten maximus) by UV fluorescence and HPLC combined with UV and fluorescence detectors." Bulletin of Environmental Contamination and Toxicology 34, no. 1 (1985): 228–38. http://dx.doi.org/10.1007/bf01609728.

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13

Mauriz, Aida, and Juan Blanco. "Distribution and linkage of domoic acid (amnesic shellfish poisoning toxins) in subcellular fractions of the digestive gland of the scallop Pecten maximus." Toxicon 55, no. 2-3 (2010): 606–11. http://dx.doi.org/10.1016/j.toxicon.2009.10.017.

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Metian, Marc, Michel Warnau, Jean-Louis Teyssié, and Paco Bustamante. "Characterization of 241Am and 134Cs bioaccumulation in the king scallop Pecten maximus: investigation via three exposure pathways." Journal of Environmental Radioactivity 102, no. 6 (2011): 543–50. http://dx.doi.org/10.1016/j.jenvrad.2011.02.008.

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15

Sauvey, Aurore, Françoise Denis, Hélène Hégaret, et al. "Interactions between Filter-Feeding Bivalves and Toxic Diatoms: Influence on the Feeding Behavior of Crassostrea gigas and Pecten maximus and on Toxin Production by Pseudo-nitzschia." Toxins 13, no. 8 (2021): 577. http://dx.doi.org/10.3390/toxins13080577.

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Among Pseudo-nitzschia species, some produce the neurotoxin domoic acid (DA), a source of serious health problems for marine organisms. Filter-feeding organisms—e.g., bivalves feeding on toxigenic Pseudo-nitzschia spp.—are the main vector of DA in humans. However, little is known about the interactions between bivalves and Pseudo-nitzschia. In this study, we examined the interactions between two juvenile bivalve species—oyster (Crassostrea gigas) and scallop (Pecten maximus)—and two toxic Pseudo-nitzschia species—P. australis and P. fraudulenta. We characterized the influence of (1) diet compo
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16

Julshamn, Kaare, Arne Duinker, Sylvia Frantzen, Lise Torkildsen, and Amund Maage. "Organ Distribution and Food Safety Aspects of Cadmium and Lead in Great Scallops, Pecten maximus L., and Horse Mussels, Modiolus modiolus L., from Norwegian Waters." Bulletin of Environmental Contamination and Toxicology 80, no. 4 (2008): 385–89. http://dx.doi.org/10.1007/s00128-008-9377-x.

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Amponsah, Seth Kwabena, Simon Yeboah, Kennedy Kwami Edem Kukuia, Benoit Banga N’guessan, and Ofosua Adi-Dako. "A Pharmacokinetic Evaluation of a Pectin-Based Oral Multiparticulate Matrix Carrier of Carbamazepine." Advances in Pharmacological and Pharmaceutical Sciences 2021 (July 3, 2021): 1–7. http://dx.doi.org/10.1155/2021/5527452.

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Background. Carbamazepine is a drug used in the treatment of neurological disorders such as epilepsy. However, due to its erratic absorption, oral bioavailability is often poor. There is, therefore, the need to develop alternative formulations for carbamazepine with better pharmacokinetic characteristics. Aim. The aim of this study was to formulate an oral modified-release multiparticulate matrix of carbamazepine from cocoa pod husk (CPH) pectin and evaluate the pharmacokinetic profile of this formulation using in vitro and in vivo models. Methods. CPH pectin was extracted from cocoa pod husks
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18

Le Pennec, Gaël, and Marcel Le Pennec. "Induction of glutathione-S-transferases in primary cultured digestive gland acini from the mollusk bivalve Pecten maximus (L.): application of a new cellular model in biomonitoring studies." Aquatic Toxicology 64, no. 2 (2003): 131–42. http://dx.doi.org/10.1016/s0166-445x(03)00041-9.

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Garnova, Natalya, Alla Filippova, Mikhail Kasatkin, and Yuliya Tikhonova. "Biologically active substances in the aboveground part of three Stellaria speciesx." Research Journal of Pharmacy and Technology, July 29, 2022, 3153–58. http://dx.doi.org/10.52711/0974-360x.2022.00527.

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The phytochemical screening of potentially efficient medicinal herbs is one of the current focus areas of modern pharmacochemistry. This work aims to analyze the phytochemical composition of the aboveground parts in three Stellaria species (S. bungeana, S. graminea, S. holostea). The study was conducted between May and July 2020 in the Moscow region of the Russian Federation. Yield values for raw herbal materials and density of stitchwort samples per 1 m2 (154 sites in total) were recorded, followed by a phytochemical analysis of the dry mass by chromatography. The maximum yield of S. bungeana
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20

Kamini, Pankaj Kumar Sharma, Monika Sachdeva, Pankaj Budhlakoti, and Nemai Chandra Ghosh. "Effective Topical Psoralen Herbal Hydrogel Expending Capsaicin as a Penetration Enhancer." Current Drug Therapy 17 (August 11, 2022). http://dx.doi.org/10.2174/1574885517666220811112147.

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Background: This research aims to prepare a hydrogel of psoralen and capsaicin extract for topical application using various gelling agents like Carbopol 940, HPMC, Pluronic 127, and Pectin to minimize the side effect of synthetic drugs in treating psoriasis. Natural, synthetic, and semi-synthetic polymers were utilized for the treatment of psoriasis provide a number of benefits, including improved skin permeability, particularly for psoralen, and improved drug stability with improved therapeutic concentration gradients across the skin. Psoriasis is a T cell-mediated autoimmune disease affecti
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