83
Views
0
CrossRef citations to date
0
Altmetric
Research Article

Biocidal efficacy of olefinic N-alkylamides against Aedes aegypti and Culex quinquefasciatus larvae

ORCID Icon & ORCID Icon
Received 27 Nov 2023, Accepted 14 May 2024, Published online: 23 May 2024

References

  • Araujo de IF, Araujo de PHF, Ferreira RMA, Sena IDS, Lima AL, Carvalho JCT, Ferreira IM, Souto RNP. 2018. Larvicidal effect of hydroethanolic extract from the leaves of Acmella oleracea L. R.K. Jansen in Aedes aegypti and Culex quinquefasciatus. S Afr J Bot. 117:134–140.
  • Bellinato DF, Viana-Medeiros PF, Araújo SC, Martins AJ, Lima JBP, Valle D. 2016. Resistance status to the insecticides temephos, deltamethrin, and diflubenzuron in Brazilian Aedes aegypti populations. BioMed Res Int. 2016:8603263.
  • Benelli G, Jeffries CL, Walker T. 2016. Biological control of mosquito vectors: past, present, and future. Insects. 7(4):52. doi:10.3390/insects7040052.
  • Boonen J, Baert B, Burvenich C, Blondeel P, De Saeget S, De Spiegeleer B. 2010. LC–MS profiling of N-alkylamides in Spilanthes acmella extract and the trans-mucosal behavior of its main bioactive spilanthol. J Pharm Biomed Anal. 53:243–249.
  • Centre for Disease Control (CDC). 2003. Toxicological profile for pyrethrins and pyrethroids. https://wwwn.cdc.gov/TSP/ToxFAQs/ToxFAQsDetails.aspx?faqid=786&toxid=153#bookmark11. [assessed on 30 October 2022].
  • Cheng YB, Liu RH, Ho MC, Wu TY, Chen CY, Lo IW, Hou MF, Yuan SS, Wu YC, Chang FR. 2015. Alkylamides of Acmella oleracea. Molecules. 20(4):6970–6977. doi:10.3390/molecules20046970.
  • Cruz I, Cheetham JJ, Arnason JT, Yack JE, Smith ML. 2014. Alkamides from Echinacea disrupt the fungal cell wall membrane complex. Phytomedicine. 21(4):435–442. doi:10.1016/j.phymed.2013.10.025.
  • Du Y, Nomura Y, Satar G, Hu Z, Nauen R, He SY, Zhorov BS, Dong K. 2013. Molecular evidence for dual pyrethroid-receptor sites on a mosquito sodium channel. PNAS. 110(29):11785–11790.
  • Matovic NJ, Hayes PY, Penman K, Lehmann RPD, Voss JJ. 2011. Polyunsaturated alkyl amides from Echinacea: synthesis of diynes, enynes, and dienes. J Org Chem. 76(11):4467–4481.
  • Molina-Torres J, Salgado-Garciglia R, Ramirez-Chavez E, del-Rio R. 1996. Purely olefinic alkamides in Heliopsis longipes and Acmella (Spilanthes) oppositifolia. Biochem Syst Ecol. 24:43–47.
  • Nkya TE, Akhouayri I, Kisinza W, David JP. 2013. Impact of environment on mosquito response to pyrethroid insecticides: facts, evidences and prospects. Insect Biochem Mol Biol. 43(4):407–416.
  • Pandey V, Agrawal V, Raghavendra K, Dash AP. 2007. Strong larvicidal activity of three species of Spilanthes (Akarkara) against malaria (Anopheles stephensi Liston, Anopheles culicifacies, species C) and filaria vector (Culex quinquefasciatus Say. Parasitol Res. 102(1):171–174. doi:10.1007/s00436-007-0763-9.
  • Pandey V, Chopra M, Agrawal V. 2011. In vitro isolation and characterization of biolarvicidal compounds from micropropagated plants of Spilanthes acmella. Parasitol Res. 108(2):297–304. doi:10.1007/s00436-010-2056-y.
  • Phrutivorapongkul A, Vejabhikul ACS, Chansakaow WNS. 2008. An anesthetic alkamide and fixed oil from Acmella oleracea. J Health Res. 22(2):97–99.
  • Raduner S, Majewska A, Chen JZ, Xie XQ, Hamon J, Faller B, Altmann KH, Gertsch J. 2006. Alkylamides from Echinacea are a new class of cannabinomimetics: cannabinoid type 2 receptor-dependent and-independent immunomodulatory effects. J Biol Chem. 281(20):14192–14206. doi:10.1074/jbc.M601074200.
  • Rajendran R, Narashimman BS, Trivedi V, Chaturvedi R. 2017. Isolation and quantification of antimalarial N-alkylamides from flower-head derived in vitro callus cultures of Spilanthes paniculata. J Biosci Bioengin. 124:99–107.
  • Rizhsky L, Jin H, Shepard MR, Scott HW, Teitgen AM, Perera MA, Mhaske V, Jose A, Zheng X, Crispin M, et al. 2016. Integrating metabolomics and transcriptomics data to discover a biocatalyst that can generate the amine precursors for alkamide biosynthesis. Plant J. 88:775–793.
  • Rolnik A, Olas B. 2021. The plants of the Asteraceae family as agents in the protection of human health. Int J Mol Sci. 22(6):3009.
  • Rozendaal JA. 1997. Vector control: methods for use by individuals and communities. Geneva, Switzerland: World Health Organization. ISBN. 9241544945
  • Sharma V, Boonen J, Chauhan NS, Thakur M, De Spiegeleer B, Dixit VK. 2011. Spilanthes acmella ethanolic flower extract: LC–MS alkylamide profiling and its effects on sexual behavior in male rats. Phytomedicine. 18(13):1161–1169. doi:10.1016/j.phymed.2011.06.001.
  • Simas NK, Dellamora ECL, Schripsema J, Lage CLS, Filho AMO, Wessjo-Hann L, Porzel A, Kuster RM. 2013. Acetylenic 2-phenylethylamides and new isobutylamides from Acmella oleracea (L.) R.K. Jansen, a Brazilian spice with larvacidal activity on Aedes aegypti. Phytochem Lett. 6:67–72.
  • Singh M, Chaturvedi R. 2012. Screening and quantification of an antiseptic alkylamide, spilanthol from in vitro cell and tissue cultures of Spilanthes acmella Murr. Ind Crop Prod. 36:321–328.
  • World Health Organization. World Malaria report. 2019. ISBN: 9789241565721, License: CC BY-NC-SA 3.0 IGO. https://apps.who.int/iris/handle/10665/330011.
  • Zlotkin E. 1999. The insect voltage-gated sodium channel as target of insecticides. Ann Rev Entomol. 44(1):429–455.

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.