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Bio-nanoparticle assembly: a potent on-site biolarvicidal agent against mosquito vectors

Background: Vector-borne diseases such as malaria, dengue, yellow fever, encephalitis and filariasis are considered serious human health concerns in the field of medical entomology. Controlling the population of mosquito vectors is one of the best strategies for combating such vector-borne diseases....

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Autores principales: Sultana, Nazima, Raul, Prasanta K., Goswami, Diganta, Das, Dipankar, Islam, Saidul, Tyagi, Varun, Das, Bodhaditya, Gogoi, Hemanta K., Chattopadhyay, Pronobesh, Raju, Pakalapati S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9050063/
https://www.ncbi.nlm.nih.gov/pubmed/35497225
http://dx.doi.org/10.1039/c9ra09972g
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author Sultana, Nazima
Raul, Prasanta K.
Goswami, Diganta
Das, Dipankar
Islam, Saidul
Tyagi, Varun
Das, Bodhaditya
Gogoi, Hemanta K.
Chattopadhyay, Pronobesh
Raju, Pakalapati S.
author_facet Sultana, Nazima
Raul, Prasanta K.
Goswami, Diganta
Das, Dipankar
Islam, Saidul
Tyagi, Varun
Das, Bodhaditya
Gogoi, Hemanta K.
Chattopadhyay, Pronobesh
Raju, Pakalapati S.
author_sort Sultana, Nazima
collection PubMed
description Background: Vector-borne diseases such as malaria, dengue, yellow fever, encephalitis and filariasis are considered serious human health concerns in the field of medical entomology. Controlling the population of mosquito vectors is one of the best strategies for combating such vector-borne diseases. However, the use of synthetic insecticides for longer periods of time increases mosquito resistance to the insecticides. Recently, the search for new environmentally friendly and efficient insecticides has attracted major attention globally. With the evolution of material sciences, researchers have reported the effective control of such diseases using various sustainable resources. The present investigation demonstrates a potent on-site biolarvicidal agent against different mosquito vectors such as Aedes albopictus, Anopheles stephensi and Culex quinquefasciatus. Methods: Stable and photo-induced colloidal silver nanoparticles were generated via the surface functionalization of the root extract of Cyprus rotundas. Characterizations of the nanoparticles were performed using assorted techniques, such as UV-visible spectroscopy, FTIR spectroscopy, DLS and HRTEM. The bioefficacy of the synthesized nanoparticles was investigated against different species of mosquito larvae through the evaluation of their life history trait studies, fecundity and hatchability rate of the treated larvae. Histopathological and polymerase chain reaction-random amplified polymorphic DNA (RAPD) analyses of the treated larvae were also examined to establish the cellular damage. Results: The synthesized nanoparticles showed remarkable larvicidal activity against mosquito larvae in a very low concentration range (0.001–1.00) mg L(−1). The histopathological study confirmed that the present nanoparticles could easily enter the cuticle membrane of mosquito larvae and subsequently obliterate their complete intestinal system. Furthermore, RAPD analysis of the treated larvae could assess the damage of the DNA banding pattern. Conclusion: The present work demonstrates a potent biolarvicidal agent using sustainable bioresources of the aqueous Cyprus rotundas root extract. The results showed that the synthesized nanoparticles were stable under different physiological conditions such as temperature and photo-induced oxidation. The effectiveness of these materials against mosquito larvae was quantified at very low dose concentrations. The present biolarvicidal agent can be considered as an environmentally benign material to control the mosquito vectors with an immense potential for on-site field applications.
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spelling pubmed-90500632022-04-29 Bio-nanoparticle assembly: a potent on-site biolarvicidal agent against mosquito vectors Sultana, Nazima Raul, Prasanta K. Goswami, Diganta Das, Dipankar Islam, Saidul Tyagi, Varun Das, Bodhaditya Gogoi, Hemanta K. Chattopadhyay, Pronobesh Raju, Pakalapati S. RSC Adv Chemistry Background: Vector-borne diseases such as malaria, dengue, yellow fever, encephalitis and filariasis are considered serious human health concerns in the field of medical entomology. Controlling the population of mosquito vectors is one of the best strategies for combating such vector-borne diseases. However, the use of synthetic insecticides for longer periods of time increases mosquito resistance to the insecticides. Recently, the search for new environmentally friendly and efficient insecticides has attracted major attention globally. With the evolution of material sciences, researchers have reported the effective control of such diseases using various sustainable resources. The present investigation demonstrates a potent on-site biolarvicidal agent against different mosquito vectors such as Aedes albopictus, Anopheles stephensi and Culex quinquefasciatus. Methods: Stable and photo-induced colloidal silver nanoparticles were generated via the surface functionalization of the root extract of Cyprus rotundas. Characterizations of the nanoparticles were performed using assorted techniques, such as UV-visible spectroscopy, FTIR spectroscopy, DLS and HRTEM. The bioefficacy of the synthesized nanoparticles was investigated against different species of mosquito larvae through the evaluation of their life history trait studies, fecundity and hatchability rate of the treated larvae. Histopathological and polymerase chain reaction-random amplified polymorphic DNA (RAPD) analyses of the treated larvae were also examined to establish the cellular damage. Results: The synthesized nanoparticles showed remarkable larvicidal activity against mosquito larvae in a very low concentration range (0.001–1.00) mg L(−1). The histopathological study confirmed that the present nanoparticles could easily enter the cuticle membrane of mosquito larvae and subsequently obliterate their complete intestinal system. Furthermore, RAPD analysis of the treated larvae could assess the damage of the DNA banding pattern. Conclusion: The present work demonstrates a potent biolarvicidal agent using sustainable bioresources of the aqueous Cyprus rotundas root extract. The results showed that the synthesized nanoparticles were stable under different physiological conditions such as temperature and photo-induced oxidation. The effectiveness of these materials against mosquito larvae was quantified at very low dose concentrations. The present biolarvicidal agent can be considered as an environmentally benign material to control the mosquito vectors with an immense potential for on-site field applications. The Royal Society of Chemistry 2020-03-05 /pmc/articles/PMC9050063/ /pubmed/35497225 http://dx.doi.org/10.1039/c9ra09972g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Sultana, Nazima
Raul, Prasanta K.
Goswami, Diganta
Das, Dipankar
Islam, Saidul
Tyagi, Varun
Das, Bodhaditya
Gogoi, Hemanta K.
Chattopadhyay, Pronobesh
Raju, Pakalapati S.
Bio-nanoparticle assembly: a potent on-site biolarvicidal agent against mosquito vectors
title Bio-nanoparticle assembly: a potent on-site biolarvicidal agent against mosquito vectors
title_full Bio-nanoparticle assembly: a potent on-site biolarvicidal agent against mosquito vectors
title_fullStr Bio-nanoparticle assembly: a potent on-site biolarvicidal agent against mosquito vectors
title_full_unstemmed Bio-nanoparticle assembly: a potent on-site biolarvicidal agent against mosquito vectors
title_short Bio-nanoparticle assembly: a potent on-site biolarvicidal agent against mosquito vectors
title_sort bio-nanoparticle assembly: a potent on-site biolarvicidal agent against mosquito vectors
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9050063/
https://www.ncbi.nlm.nih.gov/pubmed/35497225
http://dx.doi.org/10.1039/c9ra09972g
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