Have a personal or library account? Click to login
Prenylated Benzophenones from Vismia guianensis Reduced Nematode Growth and Chemotaxis Cover

Prenylated Benzophenones from Vismia guianensis Reduced Nematode Growth and Chemotaxis

Open Access
|Jan 2023

References

  1. Acuna, U. M., Jancovski, N., and Kennelly, E. J. 2009. Polyisoprenylated benzophenones from Clusiaceae: Potential drugs and lead compounds. Current Topics in Medicinal Chemistry 9:1560–1580.
  2. Ballivet, M., Alloid, C., Bertrans, S., and Bertrand, D. 1996. Nicotinic acetylcholine receptors in the nematode Caenorhabditis elegans. Journal of Molecular Biology 258:261–269.
  3. Burns, A. R., Luciani, G. M., Musso, G., Bagg, R., Yeo, M., Zhang, Y., and Roy, P. J. 2015. Caenorhabditis elegans is a useful model for anthelmintic discovery. Nature Communications 6:1–11.
  4. Delle Monache, F., Delle Monache, G., and Gacs-Baitz, E. 1991. Prenylated benzophenones from Clusia sandiensis. Phytochemistry 30:2003–2005.
  5. Duprat, R. C., Anholeti, M. C., de Sousa, B. P., Pacheco, J. P. F., Figueiredo, M. R., Kaplan, M. A. C., Santos, M. G., Gonzalez, M. S., Ratcliffe, N. A., Mello, C. B., Pavia, S. R., and Feder, D. 2017. Laboratory evaluation of Clusia fluminensis extracts and their isolated compounds against Dysdercus peruvianus and Oncopeltus fasciatus. Revista Brasileria de Farmacognosia 27:59–66.
  6. Fissiha, W., and Kinde, M. Z. 2021. Anthelmintic resistance and its mechanism: A review. Infection and Drug Resistance 14:5403–5410.
  7. Garcia, G., Chiara, D. C., Nirthanan, S., Hamouda, A. K., Stewart, D. S., and Cohen, J. B. 2007. [3H] Benzophenone photolabeling identifies state-dependent changes in nicotinic acetylcholine receptor structure. Biochemistry 46:10296–10307.
  8. Gerald, C., Deshazo, B., Patterson, H., and Spence, P. 2022. Growth and chemotaxis of nematodes reduced upon exposure to third fork creek surface water. Environmental Science Europe 34:1–11.
  9. Hahnel, S. R., Dilks, C. M., Heisler, I., Andersen, E. C., and Kulke, D. 2020. Caenorhabditis elegans in anthelmintic research – old model, new perspectives. International Journal for Parasitology: Drugs and Drug Resistance, 14:237–248.
  10. Harder, A. 2016. The biochemistry of Haemonchus contortus and other parasitic nematodes. Advances in parasitology 93:69–94.
  11. Holden-Dye, L., and Walker, R. J. December 16, 2014. Anthelmintic drugs and nematicides: Studies in Caenorhabditis elegans. WormBook, ed. The C. elegans Research Community, WormBook, doi/10.1895/ wormbook.1.143.2, http://www.wormbook.org.
  12. Hussain, H., Hussain, J., Al-Harrasi, A., Saleem, M., Green, I. R., van Ree, T., and Ghulam, A. 2012. Chemistry and biology of genus Vismia. Pharmaceutical Biology 50:1448–1462.
  13. Ihler, C. F. 2010. Anthelmintic resistance. An overview of the situation in the Nordic countries. Acta Veterinaria Scandinavica 52:1–5.
  14. Kotze, A. C., Gilleard, J. S., Doyle, S. R., and Prichard, R. K. 2020. Challenges and opportunities for the adoption of molecular diagnostics for anthelmintic resistance. International Journal for Parasitology: Drugs and Drug Resistance 14:264–273.
  15. National Research Council 2002. Neem: A tree for solving global problems. Washington (DC). The Minerva Group, Inc.
  16. Peña-Espinoza, M., Valente, A. H., Thamsborg, S. M., Simonsen, H. T., Boas, U., Enemark, H. L., and Williams, A. R. 2018. Antiparasitic activity of chicory (Cichorium intybus) and its natural bioactive compounds in livestock: a review. Parasites & Vectors 11:1–14.
  17. Qi, J., and Porco, J. A. Jr. 2007. Rapid access to polyprenylated phloroglucinols via alkylative dearomatization-annulation. Total synthesis of (+)-clusianone. Journal of the American. Chemical Society 129:12682–12683.
  18. Reynolds, A. M., Dutta, T. K., Curtis, R. H., Powers, S. J., Gaur, H. S., and Kerry, B. R. 2011. Chemotaxis can take plant-parasitic nematodes to the source of a chemo-attractant via the shortest possible routes. Journal of the Royal Society Interface 8:568–577.
  19. Seiber, J. N., Coats, J., Duke, S. O., and Gross, A. D. 2014. Biopesticides: State of the art and future opportunities. Journal of Agriculture and Food Chemistry 62:11613–11619.
  20. Sleigh, J. N. 2010. Functional analysis of nematode nicotinic receptors. Bioscience Horizons 3:29–39.
  21. Stasiuk, S. J., MacNevin, G., Workentine, M. L., Gray, D., Redman, E., Bartley, D., and Gilleard, J. S. 2019. Similarities and differences in the biotransformation and transcriptomic responses of Caenorhabditis elegans and Haemonchus contortus to five different benzimidazole drugs. International Journal for Parasitology: Drugs and Drug Resistance 11:13–29.
  22. Zheleva-Dimitrova, D., Nedialkov, P, and Momekov, G. 2013. Benzophenones from Hypericum elegans with antioxidant and acetylcholinesterase inhibitory potential. Pharmacognosy Magazine 9:S1–S5. http://www.phcog.com/text.asp?2013/9/36/1/117846
DOI: https://doi.org/10.2478/jofnem-2022-0054 | Journal eISSN: 2640-396X | Journal ISSN: 0022-300X
Language: English
Submitted on: Apr 6, 2022
Published on: Jan 8, 2023
Published by: Society of Nematologists, Inc.
In partnership with: Paradigm Publishing Services
Publication frequency: 1 issue per year

© 2023 Carresse Gerald, Rick-Kia Howard, Rachael Adesina, Seon Hamer, Omar E. Christian, published by Society of Nematologists, Inc.
This work is licensed under the Creative Commons Attribution 4.0 License.