124
Views
5
CrossRef citations to date
0
Altmetric
Research Articles

The Chemical Behavior of (2E)-3-(4,9-Dimethoxy-5-Oxo-5H-Furo[3,2-g] Chromen-6-yl)Acrylonitrile Towards Some Carbon Nucleophiles

, , , &
Pages 1357-1368 | Received 18 Jun 2019, Accepted 04 Oct 2019, Published online: 18 Oct 2019

References

  • S. Osama, M. El. Sherei, D. A. Al-Mahdy, M. Bishr, and O. Salama, “Effect of Salicylic Acid Foliar Spraying on Growth Parameters, γ-Pyrones, Phenolic Content and Radical Scavenging Activity of Drought Stressed Ammi Visnaga L. plant,” Industrial Crops and Products 134 (2019): 1–10.
  • A. A. Abu-Hashem, and M. El-Shazly, “Synthesis, Reactions and Biological Activities of Furochromones,” European Journal of Medicinal Chemistry 90 (2015): 633–65.
  • S. I. Khater, S. A. Kandil, and H. Hussien, “Preparation of Radioiodinated Khellin for the Urinary Tract Imaging,” Journal of Radioanalytical and Nuclear Chemistry 295, no. 3 (2013): 1939–44.
  • R. Al-Ramahi, N. Jaradat, A. Zaid, F. F. Vincieri, and M. Asmaa, “Medicinal Herbs and Methodologies for Their Pharmaceutical Compounding in the West Bank/Palestine,” Complementary Therapies in Clinical Practice 20, no. 4 (2014): 280–4.
  • H. K. Sellami, A. Napolitano, M. Masullo, S. Smiti, S. Piacente, and C. Pizza, “Influence of Growing Conditions on Metabolite Profile of Ammi Visnaga Umbels with Special Reference to Bioactive Furanochromones and Pyranocoumarins,” Phytochemistry 95 (2013): 197–206.
  • L. P. Pasari, A. Khurana, P. Anchi, M. A. Saifi, S. Annaldas, and C. Godugu, “Visnagin Attenuates Acute Pancreatitis via Nrf2/NFκB Pathway and Abrogates Associated Multiple Organ Dysfunction,” Biomedicine and Pharmacotherapy 112 (2019): 108629. doi: 10.1016/j.biopha.2019.108629.
  • A. Ashour, S. El-Sharkawy, M. Amer, F. A. Bar, R. Kondo, and K. Shimizu, “Melanin Biosynthesis Inhibitory Activity of Compounds Isolated from Unused Parts of Ammi Visnaga,” Journal of Cosmetics, Dermatological Sciences and Applications 3, no. 3 (2013): 40–3.[Mismatch.
  • A. A. Abu-Hashem, and M. M. Youssef, “Synthesis of New Visnagen and Khellin Furochromone Pyrimidine Derivatives and Their anti-Inflammatory and Analgesic Activity,” Molecules 16, no. 3 (2011): 1956–72.
  • R. M. S. Al-Hadhrami, R. M. S. Al Muniri, and M. A. Hossain, “Evaluation of Antimicrobial and Cytotoxic Activities of Polar Solvent Extracts from Leaves of Ammi Majus Used by the Omanis,” Pacific Science Review A: Natural Science and Engineering 18 (2016): 62–5.
  • A. E. Amr, M. M. Abdalla, S. A. Essaouy, M. M. H. Areef, M. H. Elgamal, T. A. Nassear, A. E. Haschich, and M. A. Al-Omar, “Synthesis of Some Substituted 5H-Furo [3,2-g]Chromene and Benzofuran Sulfonate Derivatives as Potent anti-HIV Agents,” Russian Journal of General Chemistry 87, no. 7 (2017): 1591–600.
  • A. S. S. H. Elgazwy, M. M. Edrees, and N. S. M. Ismail, “Molecular Modeling Study Bioactive Natural Product of Khellin Analogues as a Novel Potential Pharmacophore of EGFR Inhibitors,” Journal of Enzyme Inhibition and Medicinal Chemistry 28, no. 6 (2013): 1171–81.
  • A. A. Abu-Hashem, and M. El-Shazly, “Synthesis of New Quinoxaline, Pyrimidine, and Pyrazole Furochromone Derivatives as Cytotoxic Agents,” Monatshefte Für Chemie - Chemical Monthly 148, no. 10 (2017): 1853–63.
  • P. Joshi, V. R. Sonawane, I. S. Williams, G. J. P. McCann, L. Gatchie, R. Sharma, N. Satti, B. Chaudhuri, and S. B. Bharate, “Identification of Karanjin Isolated from the Indian Beech Tree as a Potent CYP1 Enzyme Inhibitor with Cellular Efficacy via Screening of a Natural Product Repository,” MedChemComm 9, no. 2 (2018): 371–82.
  • I. F. Zaeid, A. M. Nasef, N. M. Fawzy, A. M. Soliman, and M. M. E-Baroudy, “A Novel Multi-Component Reaction of Indoles and Formyl Furochromone Was Described for the Synthesis of Indoles Derivatives with Expected Antitumor Activity,” International Journal of Pharmaceutical Sciences Review and Research 30 (2015): 306–14.
  • N. M. El-Gohary, M. A. Ibrahim, E. R. El-Sawy, and N. A. Abdel-Fatah, “Chemical Reactivity of 4,9‐Dimethoxy‐5‐Oxo‐5H‐Furo[3,2‐g]Chromene‐6‐Carboxaldehyde toward Some Nucleophilic Reagents,” Journal of Heterocyclic Chemistry 54, no. 2 (2017): 1467–78.
  • T. E. Ali, M. A. Assiri, I. S. Yahia, and H. Y. Zahran, “Unusual Behavior of 3-(Dimethylamino)-1-(2-Hydroxyphenyl)Prop-2-en-1-One towards Some Phosphorus Reagents: synthesis of Novel Diethyl 2-Phosphonochromone, Diethyl 3-Phosphono-Pyrone and 1,3,2-Oxathiaphosphinines,” Synthetic Communications 49, no. 4 (2019): 550–7.
  • M. A. Ibrahim, A. S. Badran, N. M. El-Gohary, and S. H. Hashiem, “Studies on the Chemical Reactions of Some 3‐Substituted‐6,8‐Dimethylchromones with Nucleophilic Reagents,” Journal of Heterocyclic Chemistry 55, no. 10 (2018): 2315–24.
  • M. A. Ibrahim, and N. M. El-Gohary, “Domino Reactions Between 3-(6-Methylchromonyl) Acrylonitrile and Nucleophilic Reagents,” Tetrahedron 74, no. 4 (2018): 512–8.
  • M. S. Alam, and D. U. Lee, “Quantum-Chemical Studies to Approach the Antioxidant Mechanism of Nonphenolic Hydrazone Schiff Base Analogs: synthesis, Molecular Structure, Hirschfield and Density Functional Theory Analyses,” Bulletin of the Korean Chemical Society 36 (2015): 682–91.
  • Z. Ke, G. C. Tsui, X-Sh Peng, and Y.-Y. Yeung, “Five-Membered Ring Systems: furans and Benzofurans,” Progress in Heterocyclic Chemistry 30 (2018): 169–95.
  • A. S. Plaskon, O. O. Grygorenko, and S. V. Ryabukhin, “Recyclizations of 3-Formylchromones with Binucleophiles,” Tetrahedron 68, no. 13 (2012): 2743–57.
  • T. E. Ali, M. A. Assiri, N. M. Hassanin, I. S. Yahia, and M. S. A. Hussien, “A Convenient Synthetic Route of Diethyl (4-Oxo-Chromeno[2,3-d]Pyrimidin-2(5)-yl)Phosphonates,” Journal of Heterocyclic Chemistry 56, no. 5 (2019): 1684–6.
  • Baji vali Shaik, Mohan Seelam, Ramana Tamminana, and Prasad Rao Kammela, “Copper Promoted C-S and C-N Cross-Coupling Reactions: The Synthesis of 2-(N-Aryolamino)Benzothiazoles and 2-(N-Aryolamino)Benzimidazoles,” Tetrahedron 75, no. 29 (2019): 3865–74.
  • Magdy A. Ibrahim, and Youssef A. Alnamer, “Ring Opening and Recyclization Reactions of 3-Nitrochromone with Some Nucleophilic Reagents,” Journal of Heterocyclic Chemistry 56, no. 9 (2019): 2341–6.
  • A. M. Abdel Hamid, “Addition–Cyclization Reactions of Furan-2-Carbonyl Isothiocyanate with Nitrogen Nucleophiles as a Synthetic Route to Novel Azines and Azoles of Potential Biological Activity,” Journal of the Iranian Chemical Society 16, no. 9 (2019): 1853–61.
  • V. Y. Sosnovskikh, “Fluorinated Pyrones, Chromones and Coumarins,” Fluorine in Heterocyclic Chemistry 2 (2014): 211–90.
  • W. S. Shehab, M. G. Assy, H. Y. Moustafa, M. H. Abdellattif, and H. M. A. Rahman, “Pyrimidines as Block Units in Heterocycles: novel Synthesis of Pyrimidines and Condensed Pyrimidine Derivatives,” Journal of the Iranian Chemical Society 16, no. 11 (2019): 2451–61.
  • A. M. Farag, K. M. Dawood, H. A. Abdel-Aziz, N. A. Hamdy, and I. M. I. Fakhr, “Synthesis of Some New Azole, Pyrimidine, Pyran, and Benzo/Naphtho[b]Furan Derivatives Incorporating Thiazolo[3,2‐a]Benzimidazole Moiety,” Journal of Heterocyclic Chemistry 48, no. 2 (2011): 355–60.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.