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Journal articles on the topic 'Adrafinil'

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1

&NA;. "Adrafinil." Reactions Weekly &NA;, no. 1022 (October 2004): 6. http://dx.doi.org/10.2165/00128415-200410220-00015.

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2

&NA;. "Adrafinil/paroxetine interaction." Reactions Weekly &NA;, no. 1272 (October 2009): 6. http://dx.doi.org/10.2165/00128415-200912720-00017.

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3

Thobois, Stéphane, Jing Xie, Helena Mollion, Isabelle Benatru, and Emmanuel Broussolle. "Adrafinil-induced orofacial dyskinesia." Movement Disorders 19, no. 8 (August 2004): 965–66. http://dx.doi.org/10.1002/mds.20154.

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4

Lowe, Danielle W., Eric Dobson, Amanda G. Jewett, and Emily E. Whisler. "Adrafinil: Psychostimulant and Purported Nootropic?" American Journal of Psychiatry Residents' Journal 17, no. 1 (September 21, 2021): 7–9. http://dx.doi.org/10.1176/appi.ajp-rj.2021.170105.

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5

Caglayan, Mehmet Gokhan, Sara Sheykhi, Lorenzo Mosca, and Pavel Anzenbacher. "Fluorescent zinc and copper complexes for detection of adrafinil in paper-based microfluidic devices." Chemical Communications 52, no. 53 (2016): 8279–82. http://dx.doi.org/10.1039/c6cc03640f.

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6

Milgram, Norton W., Heather Callahan, and Christina Siwak. "Adrafinil: A Novel Vigilance Promoting Agent." CNS Drug Reviews 5, no. 3 (June 7, 2006): 193–212. http://dx.doi.org/10.1111/j.1527-3458.1999.tb00100.x.

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7

Siwak, C. T., P. Gruet, F. Woehrlé, M. Schneider, B. A. Muggenburg, H. L. Murphey, H. Callahan, and N. W. Milgram. "Behavioral Activating Effects of Adrafinil in Aged Canines." Pharmacology Biochemistry and Behavior 66, no. 2 (June 2000): 293–300. http://dx.doi.org/10.1016/s0091-3057(00)00188-x.

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8

Siwak, Christina T., Heather Callahan, and Milgram Norton W. "Adrafinil: Effects on behavior and cognition in aged canines." Progress in Neuro-Psychopharmacology and Biological Psychiatry 24, no. 5 (July 2000): 709–26. http://dx.doi.org/10.1016/s0278-5846(00)00103-2.

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9

Rao, R. Nageswara, Dhananjay D. Shinde, M. V. N. Kumar Talluri, and Sachin B. Agawane. "LC–ESI-MS determination and pharmacokinetics of adrafinil in rats." Journal of Chromatography B 873, no. 1 (September 2008): 119–23. http://dx.doi.org/10.1016/j.jchromb.2008.07.025.

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10

Taghizadeh, Mohammad Javad, Huoman Karimi, and Akbar Mirzaie. "Zeolite-encapsulated Mn(II) Complex: A New Nano Catalyst for the Synthesis of Modafinil and Its Derivatives." Letters in Organic Chemistry 16, no. 7 (May 30, 2019): 541–49. http://dx.doi.org/10.2174/1570178615666180622123944.

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The Mn-hydrazone Schiff base encapsulated into NaY has been prepared and characterized as a new heterogeneous catalyst. Elemental analysis, UV-Vis, infrared spectroscopic analysis, diffused reflectance spectroscopy, thermal analysis, small angle X-ray diffraction, and N2 sorption demonstrate the existence of Mn-hydrazone schiff base in the nanopores of zeolite-Y. MnII(Hsal- hrz)/Y, which showed excellent catalytic property in oxidation with various sulfide compounds including important drugs such as adrafinil and modafinil, using hydroperoxide-urea (UHP) as oxidant. Thioanisole conversion was high (98%).
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11

Milgram, Norton W., Christina T. Siwak, Philippe Gruet, Patricia Atkinson, Frédérique Woehrlé, and Heather Callahan. "Oral Administration of Adrafinil Improves Discrimination Learning in Aged Beagle Dogs." Pharmacology Biochemistry and Behavior 66, no. 2 (June 2000): 301–5. http://dx.doi.org/10.1016/s0091-3057(00)00175-1.

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12

Pu, Qiang, Mosstafa Kazemi, and Masoud Mohammadi. "Application of Transition Metals in Sulfoxidation Reactions." Mini-Reviews in Organic Chemistry 17, no. 4 (May 31, 2020): 423–49. http://dx.doi.org/10.2174/1570193x16666190430154835.

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Sulfoxides are key scaffolds in the synthesis of pharmaceutically active molecules. A large number of sulfoxides are indispensable ingredients in the structure of most antibiotics, biological and natural products such as Modafinil, Adrafinil, CRL-40,941 or fladrafinil, Fipronil, Oxydemetonmethyl, Omeprazole, Pantoprazole, Lansoprazole and Rabeprazole. The oxidation of sulfides is the most common and efficient strategy for the preparation of sulfoxides. Recently, many protocols based on using transition metals have been reported for the oxidation of sulfides to the sulfoxides. In this paper, we summarized a nice category of the reported protocols in the literature for the oxidation of sulfides to sulfoxides.
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13

Lu, Jianghai, Xiaobing Wang, Shuming Yang, Xin Liu, Yang Qin, Li Shen, Yun Wu, Youxuan Xu, Moutian Wu, and Gangfeng Ouyang. "Doping control analysis for adrafinil and its major metabolites in human urine." Rapid Communications in Mass Spectrometry 23, no. 11 (June 15, 2009): 1592–600. http://dx.doi.org/10.1002/rcm.4044.

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14

Siwak, Christina T., Philippe Gruet, Frederique Woehrle, Bruce A. Muggenburg, Heather L. Murphey, and Norton W. Milgram. "Comparison of the effects of adrafinil, propentofylline, and nicergoline on behavior in aged dogs." American Journal of Veterinary Research 61, no. 11 (November 2000): 1410–14. http://dx.doi.org/10.2460/ajvr.2000.61.1410.

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15

Siwak, C. "Adrafinil disrupts performance on a delayed nonmatching-to-position task in aged beagle dogs." Pharmacology Biochemistry and Behavior 76, no. 1 (August 2003): 161–68. http://dx.doi.org/10.1016/s0091-3057(03)00211-9.

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16

Osorio-Lozada, Antonio, Thomas Prisinzano, and Horacio F. Olivo. "Synthesis and determination of the absolute stereochemistry of the enantiomers of adrafinil and modafinil." Tetrahedron: Asymmetry 15, no. 23 (November 2004): 3811–15. http://dx.doi.org/10.1016/j.tetasy.2004.10.019.

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17

CHARIOT, J., F. APPIA, C. VAILLE, and C. ROZÉ. "EFFECT OF MODAFINIL ON PANCREATIC EXOCRINE SECRETION IN RATS. A COMPARISON WITH ADRAFINIL AND RELATED DRUGS." Fundamental & Clinical Pharmacology 1, no. 4 (July 8, 1987): 243–52. http://dx.doi.org/10.1111/j.1472-8206.1987.tb00563.x.

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18

Nithyanandham Masilamani and Dhanraj Ganapathy. "Awareness of medical applications of Modafinil therapy among dental students." International Journal of Research in Pharmaceutical Sciences 11, SPL3 (October 6, 2020): 1005–8. http://dx.doi.org/10.26452/ijrps.v11ispl3.3322.

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Modafinil was initially evolved by a French neurophysiologist Professor Michel Jouvet. Modafinil started with the late 1970s creation of a progression of benzhydryl sulfinyl mixes, including adrafinil that was used in the management of narcolepsy in 1986. Modafinil is fundamentally utilized for its antisomnic function. The aim of the survey is for assessing the awareness of medical applications of Modafinil therapy amongst dental students. A cross-sectional study was done with a self-administered questionnaire with 10 questions circulated among 100 dental students. The questionnaire assessed the awareness about Modafinil therapy in medical applications, their medicinal uses, antisomnic activity, mechanism of action and side effects. The responses were recorded and analysed. 94 % of the respondents were not aware of medical uses of Modafinil therapy .83 % were not aware of antisomnic activity therapy. 90 % were not aware of the mechanism of action of Modafinil therapy. 85% were not aware of the side effects of Modafinil therapy. The awareness about the use of Modafinil therapy in medical applications is very less among dental students. Increased awareness programs and sensitization and continuing dental education programs along with greater importance to the curricular modifications should be incorporated to improve the awareness levels.
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19

Ameline, Alice, Laurie Gheddar, Jean-Sébastien Raul, and Pascal Kintz. "Identification of adrafinil and its main metabolite modafinil in human hair. Self-administration study and interpretation of an authentic case." Forensic Sciences Research 5, no. 4 (January 29, 2020): 322–26. http://dx.doi.org/10.1080/20961790.2019.1704482.

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20

Rao, R. Nageswara, and Dhananjay D. Shinde. "Enantioselective separation and determination of adrafinil and modafinil on Chiralcel OJ-H column in rat serum and urine using solid-phase extraction followed by HPLC." Biomedical Chromatography 23, no. 8 (August 2009): 811–16. http://dx.doi.org/10.1002/bmc.1190.

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21

Beotra, A., S. Jain, S. Dubey, S. Ahi, IM Reddy, and T. Kaur. "A novel study of screening and confirmation of modafinil, adrafinil and their metabolite modafinilic acid under EI-GC-MS and ESI-LC-MS-MS ionization." Indian Journal of Pharmacology 41, no. 6 (2009): 278. http://dx.doi.org/10.4103/0253-7613.59928.

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22

Rao, R. Nageswara, Pawan K. Maurya, and Dhananjay D. Shinde. "Development of a validated LC method for enantiomeric separation and determination of adrafinil and its related substances on a Chiralcel OJ-H column connected to PDA and polarimetric detectors in series." Biomedical Chromatography 24, no. 11 (May 4, 2010): 1228–33. http://dx.doi.org/10.1002/bmc.1432.

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23

Dowling, Geraldine, Pierce V. Kavanagh, Brian Talbot, John O’Brien, Gary Hessman, Gavin McLaughlin, Brendan Twamley, and Simon D. Brandt. "Outsmarted by nootropics? An investigation into the thermal degradation of modafinil, modafinic acid, adrafinil, CRL-40,940 and CRL-40,941 in the GC injector: formation of 1,1,2,2-tetraphenylethane and its tetra fluoro analog." Drug Testing and Analysis 9, no. 3 (December 29, 2016): 518–28. http://dx.doi.org/10.1002/dta.2142.

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24

"Adrafinil/modafinil." Reactions Weekly 1511, no. 1 (July 2014): 6. http://dx.doi.org/10.1007/s40278-014-2091-z.

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