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1.
Sci Rep ; 12(1): 4765, 2022 03 19.
Article in English | MEDLINE | ID: mdl-35306526

ABSTRACT

Mosquito borne diseases are on the rise because of their fast spread worldwide and the lack of effective treatments. Here we are focusing on the development of a novel anti-malarial and virucidal agent with biocidal effects also on its vectors. We have synthesized a new quinoline (4,7-dichloroquinoline) derivative which showed significant larvicidal and pupicidal properties against a malarial and a dengue vector and a lethal toxicity ranging from 4.408 µM/mL (first instar larvae) to 7.958 µM/mL (pupal populations) for Anopheles stephensi and 5.016 µM/mL (larva 1) to 10.669 µM/mL (pupae) for Aedes aegypti. In-vitro antiplasmodial efficacy of 4,7-dichloroquinoline revealed a significant growth inhibition of both sensitive strains of Plasmodium falciparum with IC50 values of 6.7 nM (CQ-s) and 8.5 nM (CQ-r). Chloroquine IC50 values, as control, were 23 nM (CQ-s), and 27.5 nM (CQ-r). In vivo antiplasmodial studies with P. falciparum infected mice showed an effect of 4,7-dichloroquinoline compared to chloroquine. The quinoline compound showed significant activity against the viral pathogen serotype 2 (DENV-2). In vitro conditions and the purified quinoline exhibited insignificant toxicity on the host system up to 100 µM/mL. Overall, 4,7-dichloroquinoline could provide a good anti-vectorial and anti-malarial agent.


Subject(s)
Antimalarials , Dengue , Insecticides , Malaria , Metal Nanoparticles , Animals , Antimalarials/pharmacology , Chloroquine/pharmacology , Dengue/drug therapy , Insecticides/pharmacology , Larva , Malaria/drug therapy , Mice , Mosquito Vectors , Plant Extracts/pharmacology , Pupa
2.
Sci Rep ; 11(1): 19567, 2021 10 01.
Article in English | MEDLINE | ID: mdl-34599250

ABSTRACT

Mosquitoes are a great menace for humankind since they transmit pathogenic organisms causing Malaria, Dengue, Chikungunya, Elephantiasis and Japanese encephalitis. There is an urgent need to discover new and novel biological tools to mitigate mosquito-borne diseases. To develop bioinsecticides through newly developed nanotechnology is another option in the present research scenario. In this study we synthesize and characterize sardine fish scales with silver nitrate by adopting various instrumental techniques such as UV- and FTIR-spectroscopy, energy-dispersive X-ray (EDAX), X-ray diffraction analyses (XRD) and scanning electron microscopy (SEM). Toxicity bioassays were conducted with young developmental stages of mosquito vectors. Significant mortality appeared after different life stages of mosquito vectors (young larval and pupal instars were exposed to the nanomaterials). LC50 values were 13.261 ppm for young first instar larvae and 32.182 ppm for pupae. Feeding and predatory potential of G. affinis, before and after exposure to nanoparticles against mosquito larval (I & II) instars of the mosquitoes showed promising results in laboratory experiments. Feeding potential of mosquito fish without nanoparticle treatment was 79.7% and 70.55% for the first and second instar larval populations respectively. At the nanoparticle-exposed situation the predatory efficiency of mosquitofish was 94.15% and 84.3%, respectively. Antioxidant enzymes like (SOD), (CAT), and (LPO) were estimated in the gill region of sardine fish in control and experimental waters. A significant reduction of egg hatchability was evident after nanoparticle application. It became evident from this study that the nano-fabricated materials provide suitable tools to control the malaria vector Anopheles stephensi in the aquatic phase of its life cycle. This finding suggests an effective novel approach to mosquito control.


Subject(s)
Animal Scales/chemistry , Anopheles/drug effects , Fishes , Insecticides/chemistry , Insecticides/pharmacology , Metal Nanoparticles/chemistry , Silver , Animals , Anopheles/parasitology , Chemical Phenomena , Inhibitory Concentration 50 , Insect Vectors/drug effects , Mosquito Vectors/drug effects , Mosquito Vectors/parasitology , Parasitic Sensitivity Tests , Silver/chemistry , Spectrum Analysis
3.
Environ Sci Pollut Res Int ; 25(11): 10504-10514, 2018 Apr.
Article in English | MEDLINE | ID: mdl-28988379

ABSTRACT

The control of filariasis vectors has been enhanced in several areas, but there are main challenges, including increasing resistance to insecticides and lack of cheap and eco-friendly products. The toxicity of iron (Fe0) and iron oxide (Fe2O3) nanoparticles has been scarcely investigated yet. We studied the larvicidal and pupicidal activity of Fe0 and Fe2O3 nanoparticles against Culex quinquefasciatus. Fe0 and Fe2O3 nanoparticles produced by green (using a Ficus natalensis aqueous extract) and chemical nanosynthesis, respectively, were analyzed by UV-Vis spectrophotometry, FT-IR spectroscopy, XRD analysis, SEM, and EDX assays. In larvicidal and pupicidal experiments on Cx. quinquefasciatus, LC50 of Fe0 nanoparticles ranged from 20.9 (I instar larvae) to 43.7 ppm (pupae) and from 4.5 (I) to 22.1 ppm (pupae) for Fe2O3 nanoparticles synthesized chemically. Furthermore, the predation efficiency of the guppy fish, Poecilia reticulata, after a single treatment with sub-lethal doses of Fe0 and Fe2O3 nanoparticles was magnified. Overall, this work provides new insights about the toxicity of Fe0 and Fe2O3 nanoparticles against mosquito vectors; we suggested that green and chemical fabricated nano-iron may be considered to develop novel and effective pesticides.


Subject(s)
Insecticides/analysis , Larva/drug effects , Metal Nanoparticles/chemistry , Nanoparticles/chemistry , Predatory Behavior/drug effects , Pupa/drug effects , Animals , Culex/drug effects , Ferric Compounds/analysis , Ficus , Fishes , Iron/analysis , Mosquito Vectors , Spectroscopy, Fourier Transform Infrared
4.
Aquat Toxicol ; 188: 100-108, 2017 Jul.
Article in English | MEDLINE | ID: mdl-28482328

ABSTRACT

Currently, nano-formulated mosquito larvicides have been widely proposed to control young instars of malaria vector populations. However, the fate of nanoparticles in the aquatic environment is scarcely known, with special reference to the impact of nanoparticles on enzymatic activity of non-target aquatic invertebrates. In this study, we synthesized CdS nanoparticles using a green protocol relying on the cheap extract of Valoniopsis pachynema algae. CdS nanoparticles showed high toxicity on young instars of the malaria vectors Anopheles stephensi and A. sundaicus. The antimalarial activity of the nano-synthesized product against chloroquine-resistant (CQ-r) Plasmodium falciparum parasites was investigated. From a non-target perspective, we focused on the impact of this novel nano-pesticide on antioxidant enzymes acetylcholinesterase (AChE) and glutathione S-transferase (GST) activities of the mud crab Scylla serrata. The characterization of nanomaterials was carried out by UV-vis and FTIR spectroscopy, as well as SEM and XRD analyses. In mosquitocidal assays, LC50 of V. pachynema-synthesized CdS nanoparticles on A. stephensi ranged from 16.856 (larva I), to 30.301µg/ml (pupa), while for An. sundaicus they ranged from 13.584 to 22.496µg/ml. The antiplasmodial activity of V. pachynema extract and CdS nanoparticles was evaluated against CQ-r and CQ-sensitive (CQ-s) strains of Plasmodium falciparum. IC50 of V. pachynema extract was 58.1µg/ml (CQ-s) and 71.46µg/ml (CQ-r), while nano-CdS IC50 was 76.14µg/ml (CQ-s) and 89.21µg/ml (CQ-r). In enzymatic assays, S. serrata crabs were exposed to sub-lethal concentrations, i.e. 4, 6 and 8µg/ml of CdS nanoparticles, assessing changes in GST and AChE activity after 16days. We observed significantly higher activity of GST, if compared to the control, during the whole experiment period. In addition, a single treatment with CdS nanoparticles led to a significant decrease in AChE activity over time. The toxicity of CdS nanoparticles and Cd ions in aqueous solution was also assessed in mud crabs, showing higher toxicity of aqueous Cd ions if compared to nano-CdS. Overall, our results underlined the efficacy of green-synthesized CdS nanoparticles in malaria vector control, outlining also significant impacts on the enzymatic activity of non-target aquatic organisms, with special reference to mud crabs.


Subject(s)
Brachyura/drug effects , Cadmium Compounds/toxicity , Insecticides/toxicity , Metal Nanoparticles/toxicity , Sulfides/toxicity , Water Pollutants, Chemical/toxicity , Acetylcholinesterase/metabolism , Animals , Anopheles/drug effects , Brachyura/enzymology , Glutathione Transferase/metabolism , Green Chemistry Technology , Insect Vectors/drug effects , Larva/drug effects , Lethal Dose 50 , Malaria/transmission , Plasmodium falciparum/drug effects
5.
Nat Prod Res ; 31(10): 1185-1190, 2017 May.
Article in English | MEDLINE | ID: mdl-27552943

ABSTRACT

Mosquitoes are insects of huge public health importance, since they act as vectors for important pathogens and parasites. Here, we focused on the possibility of using the neem cake in the fight against mosquito vectors. The neem cake chemical composition significantly changes among producers, as evidenced by our HPTLC (High performance thin layer chromatography) analyses of different marketed products. Neem cake extracts were tested to evaluate the ovicidal, larvicidal and adulticidal activity against the rural malaria vector Anopheles culicifacies. Ovicidal activity of both types of extracts was statistically significant, and 150 ppm completely inhibited egg hatching. LC50 values were extremely low against fourth instar larvae, ranging from 1.321 (NM1) to 1.818 ppm (NA2). Adulticidal activity was also high, with LC50 ranging from 3.015 (NM1) to 3.637 ppm (NM2). This study pointed out the utility of neem cake as a source of eco-friendly mosquitocides in Anopheline vector control programmes.


Subject(s)
Anopheles/drug effects , Azadirachta , Chromatography, Thin Layer/methods , Insecticides/pharmacology , Malaria/transmission , Plant Extracts/pharmacology , Animals , Azadirachta/chemistry , Insect Vectors , Larva/drug effects
6.
Parasitol Res ; 116(2): 495-502, 2017 Feb.
Article in English | MEDLINE | ID: mdl-27815736

ABSTRACT

A main challenge in parasitology is the development of reliable tools to prevent or treat mosquito-borne diseases. We investigated the toxicity of magnetic nanoparticles (MNP) produced by Magnetospirillum gryphiswaldense (strain MSR-1) on chloroquine-resistant (CQ-r) and sensitive (CQ-s) Plasmodium falciparum, dengue virus (DEN-2), and two of their main vectors, Anopheles stephensi and Aedes aegypti, respectively. MNP were studied by Fourier-transform infrared spectroscopy and transmission electron microscopy. They were toxic to larvae and pupae of An. stephensi, LC50 ranged from 2.563 ppm (1st instar larva) to 6.430 ppm (pupa), and Ae. aegypti, LC50 ranged from 3.231 ppm (1st instar larva) to 7.545 ppm (pupa). MNP IC50 on P. falciparum were 83.32 µg ml-1 (CQ-s) and 87.47 µg ml-1 (CQ-r). However, the in vivo efficacy of MNP on Plasmodium berghei was low if compared to CQ-based treatments. Moderate cytotoxicity was detected on Vero cells post-treatment with MNP doses lower than 4 µg ml-1. MNP evaluated at 2-8 µg ml-1 inhibited DEN-2 replication inhibiting the expression of the envelope (E) protein. In conclusion, our findings represent the first report about the use of MNP in medical and veterinary entomology, proposing them as suitable materials to develop reliable tools to combat mosquito-borne diseases.


Subject(s)
Chloroquine/pharmacology , Dengue Virus/drug effects , Insecticides/pharmacology , Magnetite Nanoparticles/toxicity , Mosquito Vectors/drug effects , Plasmodium falciparum/drug effects , Aedes/drug effects , Aedes/physiology , Animals , Anopheles/drug effects , Anopheles/physiology , Chlorocebus aethiops , Dengue Virus/physiology , Drug Resistance , Mosquito Vectors/physiology , Plasmodium falciparum/physiology , Vero Cells
7.
Ecotoxicol Environ Saf ; 132: 318-28, 2016 Oct.
Article in English | MEDLINE | ID: mdl-27344400

ABSTRACT

Mosquitoes are arthropods of huge medical and veterinary relevance, since they vector pathogens and parasites of public health importance, including malaria, dengue and Zika virus. Currently, nanotechnology is considered a potential eco-friendly approach in mosquito control research. We proposed a novel method of biofabrication of silver nanoparticles (AgNP) using chitosan (Ch) from crab shells. Ch-AgNP nanocomposite was characterized by UV-vis spectroscopy, FTIR, SEM, EDX and XRD. Ch-AgNP were tested against larvae and pupae of the malaria vector Anopheles stephensi obtaining LC50 ranging from 3.18 ppm (I) to 6.54 ppm (pupae). The antibacterial properties of Ch-AgNP were proved against Bacillus subtilis, Klebsiella pneumoniae and Salmonella typhi, while no growth inhibition was reported in assays conducted on Proteus vulgaris. Concerning non-target effects, in standard laboratory considtions the predation efficiency of Danio rerio zebrafishes was 68.8% and 61.6% against I and II instar larvae of A. stephensi, respectively. In a Ch-AgNP-contaminated environment, fish predation was boosted to 89.5% and 77.3%, respectively. Quantitative analysis of antioxidant enzymes SOD, CAT and LPO from hepatopancreas of fresh water crabs Paratelphusa hydrodromous exposed for 16 days to a Ch-AgNP-contaminated aquatic environment were conducted. Notably, deleterious effects of Ch-AgNP contaminating aquatic enviroment on the non-target crab P. hydrodromous were observed, particularly when doses higher than 8-10ppm are tested. Overall, this research highlights the potential of Ch-AGNP for the development of newer control tools against young instar populations of malaria mosquitoes, also highlighting some risks concerned the employ of nanoparticles in aquatic environments.


Subject(s)
Anopheles , Chitosan/chemical synthesis , Insecticides/chemical synthesis , Metal Nanoparticles/chemistry , Silver/chemistry , Animals , Brachyura , Humans , Larva/drug effects , Malaria/prevention & control , Mosquito Control , Pupa/drug effects
8.
Environ Sci Pollut Res Int ; 23(16): 16671-85, 2016 Aug.
Article in English | MEDLINE | ID: mdl-27180838

ABSTRACT

Mosquitoes act as vectors of devastating pathogens and parasites, representing a key threat for millions of humans and animals worldwide. The control of mosquito-borne diseases is facing a number of crucial challenges, including the emergence of artemisinin and chloroquine resistance in Plasmodium parasites, as well as the presence of mosquito vectors resistant to synthetic and microbial pesticides. Therefore, eco-friendly tools are urgently required. Here, a synergic approach relying to nanotechnologies and biological control strategies is proposed. The marine environment is an outstanding reservoir of bioactive natural products, which have many applications against pests, parasites, and pathogens. We proposed a novel method of seaweed-mediated synthesis of silver nanoparticles (AgNP) using the spongeweed Codium tomentosum, acting as a reducing and capping agent. AgNP were characterized by UV-Vis spectroscopy, Fourier transform infrared (FTIR) spectroscopy, scanning electron microscopy (SEM), energy-dispersive X-ray spectroscopy (EDX), and X-ray diffraction (XRD). In mosquitocidal assays, the 50 % lethal concentration (LC50) of C. tomentosum extract against Anopheles stephensi ranged from 255.1 (larva I) to 487.1 ppm (pupa). LC50 of C. tomentosum-synthesized AgNP ranged from 18.1 (larva I) to 40.7 ppm (pupa). In laboratory, the predation efficiency of Mesocyclops aspericornis copepods against A. stephensi larvae was 81, 65, 17, and 9 % (I, II, III, and IV instar, respectively). In AgNP contaminated environment, predation was not affected; 83, 66, 19, and 11 % (I, II, III, and IV). The anti-plasmodial activity of C. tomentosum extract and spongeweed-synthesized AgNP was evaluated against CQ-resistant (CQ-r) and CQ-sensitive (CQ-s) strains of Plasmodium falciparum. Fifty percent inhibitory concentration (IC50) of C. tomentosum were 51.34 µg/ml (CQ-s) and 65.17 µg/ml (CQ-r); C. tomentosum-synthesized AgNP achieved IC50 of 72.45 µg/ml (CQ-s) and 76.08 µg/ml (CQ-r). Furthermore, low doses of the AgNP inhibited the growth of Bacillus subtilis, Klebsiella pneumoniae, and Salmonella typhi, using the agar disk diffusion and minimum inhibitory concentration protocol. Overall, C. tomentosum metabolites and spongeweed-synthesized AgNP may be potential candidates to develop novel and effective tools in the fight against Plasmodium parasites and their mosquito vectors. The employ of ultra-low doses of nanomosquitocides in synergy with cyclopoid crustaceans seems a promising green route for effective mosquito control programs.


Subject(s)
Anopheles/drug effects , Chlorophyta/chemistry , Insecticides , Metal Nanoparticles , Plant Extracts/pharmacology , Plasmodium falciparum/drug effects , Seaweed/chemistry , Silver/pharmacology , Animals , Copepoda/drug effects , Humans , Insect Vectors/drug effects , Insecticides/chemistry , Larva/drug effects , Metal Nanoparticles/chemistry , Mosquito Control , Plant Leaves/metabolism , Pupa/drug effects , Silver/chemistry
9.
Res Vet Sci ; 106: 14-22, 2016 Jun.
Article in English | MEDLINE | ID: mdl-27234530

ABSTRACT

Malaria transmission is a serious emergence in urban and semiurban areas worldwide, becoming a major international public health concern. Malaria is transmitted through the bites of Anopheles mosquitoes. The extensive employ of synthetic pesticides leads to negative effects on human health and the environment. Recently, plant-synthesized nanoparticles have been proposed as highly effective mosquitocides. In this research, we synthesized silver nanoparticles (AgNP) using the Azadirachta indica seed kernel extract as reducing and stabilizing agent. AgNP were characterized by UV-vis spectrophotometry, SEM, EDX, XRD and FTIR spectroscopy. The A. indica seed kernel extract was toxic against Anopheles stephensi larvae and pupae, LC50 were 232.8ppm (larva I), 260.6ppm (II), 290.3ppm (III), 323.4ppm (IV), and 348.4ppm (pupa). AgNP LC50 were 3.9ppm (I), 4.9ppm (II), 5.6ppm (III), 6.5ppm (IV), and 8.2ppm (pupa). The antiplasmodial activity of A. indica seed kernel extract and AgNP was evaluated against CQ-resistant (CQ-r) and CQ-sensitive (CQ-s) strains of Plasmodium falciparum. IC50 of A. indica seed kernel extract were 63.18µg/ml (CQ-s) and 69.24µg/ml (CQ-r). A. indica seed kernel-synthesized AgNP achieved IC50, of 82.41µg/ml (CQ-s) and 86.12µg/ml (CQ-r). However, in vivo anti-plasmodial experiments conducted on Plasmodium berghei infecting albino mice showed moderate activity of the A. indica extract and AgNP. Overall, this study showed that the A. indica-mediated fabrication of AgNP is of interest for a wide array of purposes, ranging from IPM of mosquito vectors to the development of novel and cheap antimalarial drugs.


Subject(s)
Antimalarials/pharmacology , Azadirachta/metabolism , Malaria/prevention & control , Metal Nanoparticles/chemistry , Plasmodium berghei/drug effects , Plasmodium falciparum/drug effects , Silver/pharmacology , Animals , Anopheles/drug effects , Anopheles/growth & development , Anopheles/parasitology , Azadirachta/chemistry , Larva/drug effects , Larva/parasitology , Malaria/parasitology , Pupa/drug effects , Pupa/parasitology
10.
Parasitol Int ; 65(3): 276-84, 2016 Jun.
Article in English | MEDLINE | ID: mdl-26873539

ABSTRACT

The development of parasites and pathogens resistant to synthetic drugs highlighted the needing of novel, eco-friendly and effective control approaches. Recently, metal nanoparticles have been proposed as highly effective tools towards cancer cells and Plasmodium parasites. In this study, we synthesized silver nanoparticles (EW-AgNP) using Eudrilus eugeniae earthworms as reducing and stabilizing agents. EW-AgNP showed plasmon resonance reduction in UV-vis spectrophotometry, the functional groups involved in the reduction were studied by FTIR spectroscopy, while particle size and shape was analyzed by FESEM. The effect of EW-AgNP on in vitro HepG2 cell proliferation was measured using MTT assays. Apoptosis assessed by flow cytometry showed diminished endurance of HepG2 cells and cytotoxicity in a dose-dependent manner. EW-AgNP were toxic to Anopheles stephensi larvae and pupae, LC(50) were 4.8 ppm (I), 5.8 ppm (II), 6.9 ppm (III), 8.5 ppm (IV), and 15.5 ppm (pupae). The antiplasmodial activity of EW-AgNP was evaluated against CQ-resistant (CQ-r) and CQ-sensitive (CQ-s) strains of Plasmodium falciparum. EW-AgNP IC(50) were 49.3 µg/ml (CQ-s) and 55.5 µg/ml (CQ-r), while chloroquine IC(50) were 81.5 µg/ml (CQ-s) and 86.5 µg/ml (CQ-r). EW-AgNP showed a valuable antibiotic potential against important pathogenic bacteria and fungi. Concerning non-target effects of EW-AgNP against mosquito natural enemies, the predation efficiency of the mosquitofish Gambusia affinis towards the II and II instar larvae of A. stephensi was 68.50% (II) and 47.00% (III), respectively. In EW-AgNP-contaminated environments, predation was boosted to 89.25% (II) and 70.75% (III), respectively. Overall, this research highlighted the EW-AgNP potential against hepatocellular carcinoma, Plasmodium parasites and mosquito vectors, with little detrimental effects on mosquito natural enemies.


Subject(s)
Anopheles/drug effects , Carcinoma, Hepatocellular/drug therapy , Liver Neoplasms/drug therapy , Malaria/drug therapy , Metal Nanoparticles/therapeutic use , Oligochaeta/chemistry , Plasmodium falciparum/drug effects , Animals , Anopheles/parasitology , Carcinoma, Hepatocellular/parasitology , Humans , Insect Vectors/drug effects , Insect Vectors/parasitology , Larva , Liver Neoplasms/parasitology , Malaria/parasitology , Metal Nanoparticles/chemistry , Pupa , Silver/chemistry , Silver/pharmacology , Silver/therapeutic use
11.
Environ Sci Pollut Res Int ; 23(8): 7543-58, 2016 Apr.
Article in English | MEDLINE | ID: mdl-26732702

ABSTRACT

Mosquito-borne diseases represent a deadly threat for millions of people worldwide. According to recent estimates, about 3.2 billion people, almost half of the world's population, are at risk of malaria. Malaria control is particularly challenging due to a growing number of chloroquine-resistant Plasmodium and pesticide-resistant Anopheles vectors. Newer and safer control tools are required. In this research, gold nanoparticles (AuNPs) were biosynthesized using a cheap flower extract of Couroupita guianensis as reducing and stabilizing agent. The biofabrication of AuNP was confirmed by UV-vis spectrophotometry, Fourier transform infrared (FTIR) spectroscopy, transmission electron microscopy (TEM), energy-dispersive X-ray (EDX) spectroscopy, X-ray diffraction (XRD), zeta potential, and particle size analysis. AuNP showed different shapes including spheres, ovals, and triangles. AuNPs were crystalline in nature with face-centered cubic geometry; mean size was 29.2-43.8 nm. In laboratory conditions, AuNPs were toxic against Anopheles stephensi larvae, pupae, and adults. LC50 was 17.36 ppm (larva I), 19.79 ppm (larva II), 21.69 ppm (larva III), 24.57 ppm (larva IV), 28.78 ppm (pupa), and 11.23 ppm (adult). In the field, a single treatment with C. guianensis flower extract and AuNP (10 × LC50) led to complete larval mortality after 72 h. In standard laboratory conditions, the predation efficiency of golden wonder killifish, Aplocheilus lineatus, against A. stephensi IV instar larvae was 56.38 %, while in an aquatic environment treated with sub-lethal doses of the flower extract or AuNP, predation efficiency was boosted to 83.98 and 98.04 %, respectively. Lastly, the antiplasmodial activity of C. guianensis flower extract and AuNP was evaluated against CQ-resistant (CQ-r) and CQ-sensitive (CQ-s) strains of Plasmodium falciparum. IC50 of C. guianensis flower extract was 43.21 µg/ml (CQ-s) and 51.16 µg/ml (CQ-r). AuNP IC50 was 69.47 µg/ml (CQ-s) and 76.33 µg/ml (CQ-r). Overall, our results showed the multipurpose effectiveness of C. guianensis-synthesized AuNPs, since they may be proposed as newer and safer tools in the fight against CQ-r strains of P. falciparum and for field control of malaria vectors, in synergy with wonder killifish predators.


Subject(s)
Anopheles/parasitology , Antimalarials/pharmacology , Gold/pharmacology , Insect Vectors/drug effects , Lecythidaceae/chemistry , Metal Nanoparticles/analysis , Plasmodium falciparum/drug effects , Animals , Antimalarials/analysis , Cyprinodontiformes/physiology , Flowers/chemistry , Gold/analysis , Insecticides/analysis , Insecticides/pharmacology , Larva/drug effects , Malaria/parasitology , Malaria/prevention & control , Malaria/transmission , Metal Nanoparticles/chemistry , Plant Extracts/chemistry , Predatory Behavior/drug effects , Pupa/drug effects
12.
Parasitol Res ; 115(2): 751-9, 2016 Feb.
Article in English | MEDLINE | ID: mdl-26499804

ABSTRACT

Aedes albopictus is an important arbovirus vector, including dengue. Currently, there is no specific treatment for dengue. Its prevention solely depends on effective vector control measures. In this study, silver nanoparticles (AgNPs) were biosynthesized using a cheap leaf extract of Berberis tinctoria as reducing and stabilizing agent and tested against Ae. albopictus and two mosquito natural enemies. AgNPs were characterized by using UV­vis spectrophotometry, X-ray diffraction, and scanning electron microscopy. In laboratory conditions, the toxicity of AgNPs was evaluated on larvae and pupae of Ae. albopictus. Suitability Index/Predator Safety Factor was assessed on Toxorhynchites splendens and Mesocyclops thermocyclopoides. The leaf extract of B. tinctoria was toxic against larval instars (I­IV) and pupae of Ae. albopictus; LC50 was 182.72 ppm (I instar), 230.99 ppm (II), 269.65 ppm (III), 321.75 ppm (IV), and 359.71 ppm (pupa). B. tinctoria-synthesized AgNPs were highly effective, with LC50 of 4.97 ppm (I instar), 5.97 ppm (II), 7.60 ppm (III), 9.65 ppm (IV), and 14.87 ppm (pupa). Both the leaf extract and AgNPs showed reduced toxicity against the mosquito natural enemies M. thermocyclopoides and T. splendens. Overall, this study firstly shed light on effectiveness of B. tinctoria-synthesized AgNPs as an eco-friendly nanopesticide, highlighting the concrete possibility to employ this newer and safer tool in arbovirus vector control programs.


Subject(s)
Aedes , Berberis/metabolism , Copepoda , Culicidae , Insecticides/metabolism , Nanoparticles/metabolism , Aedes/drug effects , Animals , Copepoda/drug effects , Copepoda/physiology , Culicidae/drug effects , Culicidae/physiology , Insect Vectors/drug effects , Insecticides/toxicity , Larva/drug effects , Larva/physiology , Microscopy, Electron, Scanning , Nanoparticles/toxicity , Plant Extracts/biosynthesis , Plant Extracts/toxicity , Plant Leaves/chemistry , Pupa/drug effects , Silver , Spectrophotometry, Ultraviolet , X-Ray Diffraction
13.
Parasitol Res ; 115(3): 997-1013, 2016 Mar.
Article in English | MEDLINE | ID: mdl-26612497

ABSTRACT

Malaria remains a major public health problem due to the emergence and spread of Plasmodium falciparum strains resistant to chloroquine. There is an urgent need to investigate new and effective sources of antimalarial drugs. This research proposed a novel method of fern-mediated synthesis of silver nanoparticles (AgNP) using a cheap plant extract of Pteridium aquilinum, acting as a reducing and capping agent. AgNP were characterized by UV-vis spectrophotometry, Fourier transform infrared (FTIR) spectroscopy, energy-dispersive X-ray spectroscopy (EDX), and X-ray diffraction (XRD). Phytochemical analysis of P. aquilinum leaf extract revealed the presence of phenols, alkaloids, tannins, flavonoids, proteins, carbohydrates, saponins, glycosides, steroids, and triterpenoids. LC/MS analysis identified at least 19 compounds, namely pterosin, hydroquinone, hydroxy-acetophenone, hydroxy-cinnamic acid, 5, 7-dihydroxy-4-methyl coumarin, trans-cinnamic acid, apiole, quercetin 3-glucoside, hydroxy-L-proline, hypaphorine, khellol glucoside, umbelliferose, violaxanthin, ergotamine tartrate, palmatine chloride, deacylgymnemic acid, methyl laurate, and palmitoyl acetate. In DPPH scavenging assays, the IC50 value of the P. aquilinum leaf extract was 10.04 µg/ml, while IC50 of BHT and rutin were 7.93 and 6.35 µg/ml. In mosquitocidal assays, LC50 of P. aquilinum leaf extract against Anopheles stephensi larvae and pupae were 220.44 ppm (larva I), 254.12 ppm (II), 302.32 ppm (III), 395.12 ppm (IV), and 502.20 ppm (pupa). LC50 of P. aquilinum-synthesized AgNP were 7.48 ppm (I), 10.68 ppm (II), 13.77 ppm (III), 18.45 ppm (IV), and 31.51 ppm (pupa). In the field, the application of P. aquilinum extract and AgNP (10 × LC50) led to 100 % larval reduction after 72 h. Both the P. aquilinum extract and AgNP reduced longevity and fecundity of An. stephensi adults. Smoke toxicity experiments conducted against An. stephensi adults showed that P. aquilinum leaf-, stem-, and root-based coils evoked mortality rates comparable to the permethrin-based positive control (57, 50, 41, and 49 %, respectively). Furthermore, the antiplasmodial activity of P. aquilinum leaf extract and green-synthesized AgNP was evaluated against CQ-resistant (CQ-r) and CQ-sensitive (CQ-s) strains of P. falciparum. IC50 of P. aquilinum were 62.04 µg/ml (CQ-s) and 71.16 µg/ml (CQ-r); P. aquilinum-synthesized AgNP achieved IC50 of 78.12 µg/ml (CQ-s) and 88.34 µg/ml (CQ-r). Overall, our results highlighted that fern-synthesized AgNP could be candidated as a new tool against chloroquine-resistant P. falciparum and different developmental instars of its primary vector An. stephensi. Further research on nanosynthesis routed by the LC/MS-identified constituents is ongoing.


Subject(s)
Antimalarials/chemistry , Insecticides/chemistry , Plant Extracts/chemistry , Pteridium/chemistry , Silver/toxicity , Animals , Anopheles/drug effects , Anopheles/physiology , Antimalarials/toxicity , Humans , Insecticides/toxicity , Larva/drug effects , Malaria/parasitology , Malaria/prevention & control , Nanoparticles/chemistry , Plant Extracts/metabolism , Plant Leaves/chemistry , Plant Leaves/metabolism , Plasmodium falciparum/drug effects , Plasmodium falciparum/physiology , Pteridium/metabolism , Silver/chemistry , X-Ray Diffraction
14.
Parasitol Res ; 115(3): 1015-25, 2016 Mar.
Article in English | MEDLINE | ID: mdl-26573518

ABSTRACT

Mosquitoes (Diptera: Culicidae) serve as important vectors for a wide number of parasites and pathogens of huge medical and veterinary importance. Aedes aegypti is a primary dengue vector in tropical and subtropical urban areas. There is an urgent need to develop eco-friendly mosquitocides. In this study, silver nanoparticles (AgNP) were biosynthesized using neem cake, a by-product of the neem oil extraction from the seed kernels of Azadirachta indica. AgNP were characterized using a variety of biophysical methods, including UV-vis spectrophotometry, FTIR, SEM, EDX, and XRD analyses. Furthermore, the neem cake extract and the biosynthesized AgNP were tested for acute toxicity against larvae and pupae of the dengue vector Ae. aegypti. LC50 values achieved by the neem cake extract ranged from 106.53 (larva I) to 235.36 ppm (pupa), while AgNP LC50 ranged from 3.969 (larva I) to 8.308 ppm (pupa). In standard laboratory conditions, the predation efficiency of a Carassius auratus per day was 7.9 (larva II) and 5.5 individuals (larva III). Post-treatment with sub-lethal doses of AgNP, the predation efficiency was boosted to 9.2 (larva II) and 8.1 individuals (larva III). The genotoxic effect of AgNP was studied on C. auratus using the comet assay and micronucleus frequency test. DNA damage was evaluated on peripheral erythrocytes sampled at different time intervals from the treatment; experiments showed no significant damages at doses below 12 ppm. Overall, this research pointed out that neem cake-fabricated AgNP are easy to produce, stable over time, and can be employed at low dosages to reduce populations of dengue vectors, with moderate detrimental effects on non-target mosquito natural enemies.


Subject(s)
Aedes , Azadirachta/chemistry , Insect Vectors , Insecticides , Metal Nanoparticles , Aedes/drug effects , Aedes/genetics , Animals , Comet Assay , DNA Damage , Dengue/transmission , Glycerides , Goldfish/genetics , Goldfish/physiology , Humans , Insect Repellents , Insect Vectors/drug effects , Insect Vectors/genetics , Insecticides/pharmacology , Larva/drug effects , Metal Nanoparticles/toxicity , Micronucleus Tests , Plant Extracts/pharmacology , Plant Leaves , Predatory Behavior/drug effects , Pupa/drug effects , Silver , Terpenes
15.
Parasitol Res ; 115(3): 1085-96, 2016 Mar.
Article in English | MEDLINE | ID: mdl-26621285

ABSTRACT

Mosquito vectors (Diptera: Culicidae) are responsible for transmission of serious diseases worldwide. Mosquito control is being enhanced in many areas, but there are significant challenges, including increasing resistance to insecticides and lack of alternative, cost-effective, and eco-friendly products. To deal with these crucial issues, recent emphasis has been placed on plant materials with mosquitocidal properties. Furthermore, cancers figure among the leading causes of morbidity and mortality worldwide, with approximately 14 million new cases and 8.2 million cancer-related deaths in 2012. It is expected that annual cancer cases will rise from 14 million in 2012 to 22 million within the next two decades. Nanotechnology is a promising field of research and is expected to give major innovation impulses in a variety of industrial sectors. In this study, we synthesized titanium dioxide (TiO2) nanoparticles using the hydrothermal method. Nanoparticles were subjected to different analysis including UV-Vis spectrophotometry, Fourier transform infrared spectroscopy (FTIR), X-ray diffraction (XRD), field emission scanning electron microscopy (FESEM), zeta potential, and energy-dispersive spectrometric (EDX). The synthesized TiO2 nanoparticles exhibited dose-dependent cytotoxicity against human breast cancer cells (MCF-7) and normal breast epithelial cells (HBL-100). After 24-h incubation, the inhibitory concentrations (IC50) were found to be 60 and 80 µg/mL on MCF-7 and normal HBL-100 cells, respectively. Induction of apoptosis was evidenced by Acridine Orange (AO)/ethidium bromide (EtBr) and 4',6-diamidino-2-phenylindole dihydrochloride (DAPI) staining. In larvicidal and pupicidal experiments conducted against the primary dengue mosquito Aedes aegypti, LC50 values of nanoparticles were 4.02 ppm (larva I), 4.962 ppm (larva II), 5.671 ppm (larva III), 6.485 ppm (larva IV), and 7.527 ppm (pupa). Overall, our results suggested that TiO2 nanoparticles may be considered as a safe tool to build newer and safer mosquitocides and chemotherapeutic agents with little systemic toxicity.


Subject(s)
Aedes/drug effects , Breast Neoplasms/drug therapy , Insect Vectors/drug effects , Metal Nanoparticles , Mosquito Control/methods , Titanium , Animals , Apoptosis/drug effects , Breast Neoplasms/pathology , Dengue/transmission , Female , Humans , Insecticides/pharmacology , Larva/drug effects , MCF-7 Cells , Metal Nanoparticles/chemistry , Metal Nanoparticles/therapeutic use , Plant Extracts/pharmacology , Plant Leaves/chemistry , Pupa/drug effects , Silver , Specific Pathogen-Free Organisms
16.
Parasitol Res ; 115(3): 1071-83, 2016 Mar.
Article in English | MEDLINE | ID: mdl-26614358

ABSTRACT

Mosquito-borne diseases represent a deadly threat for millions of people worldwide. The Culex genus, with special reference to Culex quinquefasciatus, comprises the most common vectors of filariasis across urban and semi-urban areas of Asia. In recent years, important efforts have been conducted to propose green-synthesized nanoparticles as a valuable alternative to synthetic insecticides. However, the mosquitocidal potential of carbon nanoparticles has been scarcely investigated. In this study, the larvicidal and pupicidal activity of carbon nanoparticle (CNP) and silver nanoparticle (AgNP) was tested against Cx. quinquefasciatus. UV-Vis spectrophotometry, Fourier transform infrared (FTIR) spectroscopy, X-ray diffraction (XRD) analysis, scanning electron microscopy (SEM), transmission electron microscopy (TEM), energy-dispersive X-ray (EDX) spectroscopy, and Raman analysis confirmed the rapid and cheap synthesis of carbon and silver nanoparticles. In laboratory assays, LC50 (lethal concentration that kills 50 % of the exposed organisms) values ranged from 8.752 ppm (first-instar larvae) to 18.676 ppm (pupae) for silver nanoparticles and from 6.373 ppm (first-instar larvae) to 14.849 ppm (pupae) for carbon nanoparticles. The predation efficiency of the water bug Lethocerus indicus after a single treatment with low doses of silver and carbon nanoparticles was not reduced. Moderate evidence of genotoxic effects induced by exposure to carbon nanoparticles was found on non-target goldfish, Carassius auratus. Lastly, the plant extract used for silver nanosynthesis was tested for 2,2-diphenyl-1-picrylhydrazyl (DPPH) and 2,2'-azino-bis-3-ethylbenzothiazoline-6-sulfonic acid (ABTS) radical scavenging activity. Overall, our results pointed out that AgNP and CNP can be a candidate for effective tools to reduce larval and pupal populations of filariasis vectors, with reduced genotoxicity and impact on behavioral traits of other aquatic organisms sharing the same ecological niche of Cx. quinquefasciatus.


Subject(s)
Culex , Insect Vectors , Nanoparticles/toxicity , Animals , Benzothiazoles/metabolism , Biphenyl Compounds/metabolism , Carbon , Culex/drug effects , DNA Damage/drug effects , Free Radical Scavengers/pharmacology , Goldfish/genetics , Goldfish/physiology , Heteroptera/drug effects , Heteroptera/genetics , Heteroptera/physiology , India , Indicators and Reagents/metabolism , Insect Vectors/drug effects , Insecticides/pharmacology , Larva/drug effects , Lethal Dose 50 , Moringa oleifera/chemistry , Nanoparticles/chemistry , Picrates/metabolism , Plant Extracts/pharmacology , Plant Leaves/chemistry , Predatory Behavior/drug effects , Pupa/drug effects , Seeds/chemistry , Silver , Specific Pathogen-Free Organisms , Sulfonic Acids/metabolism
17.
Parasitol Res ; 115(3): 1149-60, 2016 Mar.
Article in English | MEDLINE | ID: mdl-26627691

ABSTRACT

Mosquitoes are vectors of devastating pathogens and parasites, causing millions of deaths every year. Dengue is a mosquito-borne viral infection found in tropical and subtropical regions around the world. Recently, dengue transmission has strongly increased in urban and semiurban areas, becoming a major international public health concern. Aedes aegypti (Diptera: Culicidae) is a primary vector of dengue. Shedding light on genetic deviation in A. aegypti populations is of crucial importance to fully understand their molecular ecology and evolution. In this research, haplotype and genetic analyses were conducted using individuals of A. aegypti from 31 localities in the north, southeast, northeast and central regions of Tamil Nadu (South India). The mitochondrial DNA region of cytochrome c oxidase 1 (CO1) gene was used as marker for the analyses. Thirty-one haplotypes sequences were submitted to GenBank and authenticated. The complete haplotype set included 64 haplotypes from various geographical regions clustered into three groups (lineages) separated by three fixed mutational steps, suggesting that the South Indian Ae. aegypti populations were pooled and are linked with West Africa, Columbian and Southeast Asian lineages. The genetic and haplotype diversity was low, indicating reduced gene flow among close populations of the vector, due to geographical barriers such as water bodies. Lastly, the negative values for neutrality tests indicated a bottle-neck effect and supported for low frequency of polymorphism among the haplotypes. Overall, our results add basic knowledge to molecular ecology of the dengue vector A. aegypti, providing the first evidence for multiple introductions of Ae. aegypti populations from Columbia and West Africa in South India.


Subject(s)
Aedes/genetics , Environment , Genetic Variation , Insect Vectors/genetics , Aedes/virology , Africa, Western , Animals , DNA, Mitochondrial/genetics , Dengue/transmission , Dengue Virus/physiology , Gene Flow , Geography , Haplotypes , Humans , India
18.
Nat Prod Res ; 30(18): 2077-84, 2016 Sep.
Article in English | MEDLINE | ID: mdl-26679526

ABSTRACT

The impact of green-synthesised mosquitocidal nanoparticles on non-target aquatic predators is poorly studied. In this research, we proposed a single-step method to synthesise silver nanoparticles (Ag NP) using the seed extract of Melia azedarach. Ag NP were characterised using a variety of biophysical methods, including UV-vis spectrophotometry, scanning electron microscopy, energy-dispersive X-ray spectroscopy and Fourier transform infrared spectroscopy. In laboratory assays on Anopheles stephensi, Ag NP showed LC50 ranging from 2.897 (I instar larvae) to 14.548 ppm (pupae). In the field, the application of Ag NP (10 × LC50) lead to complete elimination of larval populations after 72 h. The application of Ag NP in the aquatic environment did not show negative adverse effects on predatory efficiency of the mosquito natural enemy Cyclops vernalis. Overall, this study highlights the concrete possibility to employ M. azedarach-synthesised Ag NP on young instars of malaria vectors.


Subject(s)
Anopheles , Green Chemistry Technology/methods , Insect Control/methods , Insecticides/chemical synthesis , Insecticides/toxicity , Malaria/transmission , Melia/chemistry , Minocycline , Nanoparticles/chemistry , Animals , Larva/drug effects , Lethal Dose 50 , Plant Extracts/chemistry , Predatory Behavior/drug effects , Seeds/chemistry , Silver/chemistry , Spectrophotometry, Ultraviolet , Spectroscopy, Fourier Transform Infrared , X-Ray Absorption Spectroscopy
19.
Nat Prod Res ; 30(7): 826-33, 2016.
Article in English | MEDLINE | ID: mdl-26284510

ABSTRACT

Aedes aegypti is a primary vector of dengue, a mosquito-borne viral disease infecting 50-100 million people every year. Here, we biosynthesised mosquitocidal silver nanoparticles (AgNP) using the aqueous leaf extract of Crotalaria verrucosa. The green synthesis of AgNP was studied by UV-vis spectroscopy, SEM, EDX and FTIR. C. verrucosa-synthesised AgNPs were toxic against A. aegypti larvae and pupae. LC50 of AgNP ranged from 3.496 ppm (I instar larvae) to 17.700 ppm (pupae). Furthermore, we evaluated the predatory efficiency of dragonfly nymphs, Brachydiplax sobrina, against II and III instar larvae of A. aegypti in an aquatic environment contaminated with ultra-low doses of AgNP. Under standard laboratory conditions, predation after 24 h was 87.5% (II) and 54.7% (III). In an AgNP-contaminated environment, predation was 91 and 75.5%, respectively. Overall, C. verrucosa-synthesised AgNP could be employed at ultra-low doses to reduce larval population of dengue vectors enhancing predation rates of dragonfly nymphs.


Subject(s)
Aedes , Crotalaria/chemistry , Metal Nanoparticles/chemistry , Odonata/physiology , Plant Extracts/chemistry , Predatory Behavior , Animals , Disease Vectors , Insecticides/chemistry , Larva , Mosquito Control , Plant Leaves/chemistry , Pupa , Silver/chemistry
20.
Parasitol Res ; 114(12): 4645-54, 2015 Dec.
Article in English | MEDLINE | ID: mdl-26337272

ABSTRACT

Malaria is a life-threatening disease caused by parasites transmitted to people and animals through the bites of infected mosquitoes. The employ of synthetic insecticides to control Anopheles populations leads to high operational costs, non-target effects, and induced resistance. Recently, plant-borne compounds have been proposed for efficient and rapid extracellular synthesis of mosquitocidal nanoparticles. However, their impact against predators of mosquito larvae has been poorly studied. In this study, we synthesized silver nanoparticles (AgNPs) using the Datura metel leaf extract as reducing and stabilizing agent. The biosynthesis of AgNPs was confirmed analyzing the excitation of surface plasmon resonance using ultraviolet-visible (UV-vis) spectroscopy. Scanning electron microscopy (SEM) showed the clustered and irregular shapes of AgNPs, with a mean size of 40-60 nm. The presence of silver was determined by energy-dispersive X-ray (EDX) spectroscopy. Fourier transform infrared (FTIR) spectroscopy analysis investigated the identity of secondary metabolites, which may be acting as AgNP capping agents. In laboratory, LC50 of D. metel extract against Anopheles stephensi ranged from 34.693 ppm (I instar larvae) to 81.500 ppm (pupae). LC50 of AgNP ranged from 2.969 ppm (I instar larvae) to 6.755 ppm (pupae). Under standard laboratory conditions, the predation efficiency of Anax immaculifrons nymphs after 24 h was 75.5 % (II instar larvae) and 53.5 % (III instar larvae). In AgNP-contaminated environment, predation rates were boosted to 95.5 and 78 %, respectively. Our results documented that D. metel-synthesized AgNP might be employed at rather low doses to reduce larval populations of malaria vectors, without detrimental effects on behavioral traits of young instars of the dragonfly Anax immaculifrons.


Subject(s)
Anopheles/drug effects , Datura metel/chemistry , Insect Vectors/drug effects , Nanoparticles/metabolism , Odonata/physiology , Plant Extracts/chemistry , Silver/metabolism , Animals , Anopheles/physiology , Datura metel/metabolism , Humans , Insect Vectors/physiology , Insecticides/pharmacology , Larva/drug effects , Larva/physiology , Malaria/transmission , Nanoparticles/chemistry , Nymph/drug effects , Nymph/growth & development , Plant Extracts/metabolism , Plant Leaves/chemistry , Plant Leaves/metabolism , Pupa/drug effects , Pupa/growth & development , Silver/pharmacology
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