piperonyl butoxide has been researched along with Malaria in 46 studies
Malaria: A protozoan disease caused in humans by four species of the PLASMODIUM genus: PLASMODIUM FALCIPARUM; PLASMODIUM VIVAX; PLASMODIUM OVALE; and PLASMODIUM MALARIAE; and transmitted by the bite of an infected female mosquito of the genus ANOPHELES. Malaria is endemic in parts of Asia, Africa, Central and South America, Oceania, and certain Caribbean islands. It is characterized by extreme exhaustion associated with paroxysms of high FEVER; SWEATING; shaking CHILLS; and ANEMIA. Malaria in ANIMALS is caused by other species of plasmodia.
Excerpt | Relevance | Reference |
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" culicifacies have shown that chlorfenapyr can be a suitable insecticide for malaria vector control, in multiple-insecticide-resistant mosquitoes especially in areas with pyrethroid resistant mosquitoes." | 7.77 | Chlorfenapyr: a new insecticide with novel mode of action can control pyrethroid resistant malaria vectors. ( Barik, TK; Bhatt, RM; Dash, AP; Raghavendra, K; Sharma, P; Sreehari, U; Srivastava, HC, 2011) |
"Piperonyl butoxide (PBO) is a synergist that inhibits specific metabolic enzymes within mosquitoes and has been incorporated into pyrethroid-LLINs to form pyrethroid-PBO nets." | 6.58 | Piperonyl butoxide (PBO) combined with pyrethroids in insecticide-treated nets to prevent malaria in Africa. ( Choi, L; Gleave, K; Lissenden, N; Ranson, H; Richardson, M, 2018) |
"Chlorfenapyr pyrethroid LLINs were the most effective intervention against the main malaria vector An funestus sl over 3 years of community use, whereas the effect of piperonyl-butoxide pyrethroid LLIN was sustained for 2 years." | 5.69 | Differential impact of dual-active ingredient long-lasting insecticidal nets on primary malaria vectors: a secondary analysis of a 3-year, single-blind, cluster-randomised controlled trial in rural Tanzania. ( Jumanne, M; Kaaya, R; Kulkarni, MA; Lukole, E; Mallya, E; Manjurano, A; Martin, J; Matowo, NS; Messenger, LA; Mosha, FW; Mosha, JF; Moshi, O; Protopopoff, N; Rowland, M; Shirima, B, 2023) |
"Our phenotypic data supports trial epidemiological findings; chlorfenapyr PY-LLINs provided superior protection from malaria across multiple transmission seasons, with few effects on insecticide-resistance selection." | 5.69 | Effects of next-generation, dual-active-ingredient, long-lasting insecticidal net deployment on insecticide resistance in malaria vectors in Tanzania: an analysis of a 3-year, cluster-randomised controlled trial. ( Cross, CL; Fullerton, K; Jumanne, M; Kaaya, R; Kulkarni, MA; Lukole, E; Mallya, E; Manjurano, A; Martin, J; Matowo, NS; Messenger, LA; Mosha, FW; Mosha, JF; Moshi, O; Pelloquin, B; Portwood, NM; Protopopoff, N; Rowland, M; Walker, T, 2023) |
"In view of widespread pyrethroid resistance in malaria vectors in Africa, two long-lasting insecticidal nets (LLINs) incorporated with a synergist, piperonyl butoxide (PBO), DawaPlus 3." | 3.91 | Experimental hut evaluation of DawaPlus 3.0 LN and DawaPlus 4.0 LN treated with deltamethrin and PBO against free-flying populations of Anopheles gambiae s.l. in Vallée du Kou, Burkina Faso. ( Bayili, K; Dabiré, RK; Diabaté, A; N'Do, S; Namountougou, M; Ouattara, A; Ouédraogo, GA; Yadav, RS, 2019) |
"LLINs containing an insecticide plus the synergist, piperonyl butoxide (PBO) have been designed for increased efficacy against pyrethroid-resistant malaria vectors." | 3.88 | Efficacy of two PBO long lasting insecticidal nets against natural populations of Anopheles gambiae s.l. in experimental huts, Kolokopé, Togo. ( Ahadji-Dabla, KM; Amoudji, AD; Apetogbo, GY; Awokou, F; Chabi, J; Glitho, IA; Ketoh, GK, 2018) |
" culicifacies have shown that chlorfenapyr can be a suitable insecticide for malaria vector control, in multiple-insecticide-resistant mosquitoes especially in areas with pyrethroid resistant mosquitoes." | 3.77 | Chlorfenapyr: a new insecticide with novel mode of action can control pyrethroid resistant malaria vectors. ( Barik, TK; Bhatt, RM; Dash, AP; Raghavendra, K; Sharma, P; Sreehari, U; Srivastava, HC, 2011) |
"Piperonyl butoxide (PBO) is a synergist that inhibits the activity of metabolic enzymes of the cytochrome P450 family known to detoxify insecticides including pyrethroids." | 2.90 | Evaluation of an alpha-cypermethrin + PBO mixture long-lasting insecticidal net VEERALIN® LN against pyrethroid resistant Anopheles gambiae s.s.: an experimental hut trial in M'bé, central Côte d'Ivoire. ( Alou, LPA; Camara, S; Koffi, AA; N'Guessan, R; Oumbouke, WA; Rowland, M, 2019) |
"Piperonyl butoxide (PBO) is a synergist that inhibits specific metabolic enzymes within mosquitoes and has been incorporated into pyrethroid-LLINs to form pyrethroid-PBO nets." | 2.58 | Piperonyl butoxide (PBO) combined with pyrethroids in insecticide-treated nets to prevent malaria in Africa. ( Choi, L; Gleave, K; Lissenden, N; Ranson, H; Richardson, M, 2018) |
"The Piperonyl Butoxide (PBO) was used to enhance the activity of these oils with the aim of developing essential oil based formulations." | 1.35 | Effect of synergist piperonyl butoxide (PBO) on the toxicity of some essential oils against mosquito larvae. ( Mittal, PK; Saxena, PN; Singh, RK; Yadav, S, 2008) |
"The Piperonyl Butoxide (PBO) was used to enhance the activity of these oils with the aim of developing essential oil based formulations." | 1.35 | Effect of synergist piperonyl butoxide (PBO) on the toxicity of some essential oils against mosquito larvae. ( Mittal, PK; Saxena, PN; Singh, RK; Yadav, S, 2009) |
Timeframe | Studies, this research(%) | All Research% |
---|---|---|
pre-1990 | 0 (0.00) | 18.7374 |
1990's | 0 (0.00) | 18.2507 |
2000's | 3 (6.52) | 29.6817 |
2010's | 17 (36.96) | 24.3611 |
2020's | 26 (56.52) | 2.80 |
Authors | Studies |
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Zhou, G | 1 |
Lee, MC | 1 |
Wang, X | 1 |
Zhong, D | 1 |
Hemming-Schroeder, E | 1 |
Yan, G | 1 |
Roh, ME | 1 |
Oundo, B | 1 |
Dorsey, G | 6 |
Shiboski, S | 1 |
Gosling, R | 1 |
Glymour, MM | 1 |
Staedke, SG | 7 |
Bennett, A | 1 |
Sturrock, H | 1 |
Mpimbaza, A | 1 |
Ngufor, C | 3 |
Fagbohoun, J | 1 |
Agbevo, A | 2 |
Ismail, H | 1 |
Challenger, JD | 1 |
Churcher, TS | 3 |
Rowland, M | 9 |
Sherrard-Smith, E | 1 |
Winskill, P | 1 |
Hamlet, A | 1 |
N'Guessan, R | 3 |
Guelbeogo, MW | 1 |
Sanou, A | 1 |
Nash, RK | 1 |
Hill, A | 1 |
Russell, EL | 1 |
Woodbridge, M | 1 |
Tungu, P | 1 |
Kont, MD | 1 |
Mclean, T | 1 |
Fornadel, C | 2 |
Richardson, JH | 1 |
Donnelly, MJ | 6 |
Gonahasa, S | 5 |
Protopopoff, N | 6 |
Syme, T | 1 |
Gbegbo, M | 1 |
Obuobi, D | 1 |
Fongnikin, A | 1 |
Todjinou, D | 1 |
Ngonghala, CN | 1 |
Maiteki-Sebuguzi, C | 4 |
Kamya, MR | 5 |
Katureebe, A | 3 |
Bagala, I | 1 |
Lynd, A | 4 |
Mutungi, P | 2 |
Kigozi, SP | 2 |
Opigo, J | 4 |
Hemingway, J | 4 |
Mangani, C | 2 |
Mzilahowa, T | 2 |
Cohee, L | 1 |
Kayange, M | 1 |
Ntenda, P | 2 |
Sixpence, A | 2 |
Gumbo, A | 1 |
Lankhulani, S | 1 |
Goupeyou-Youmsi, J | 2 |
Walker, E | 1 |
Laufer, M | 1 |
Valim, C | 2 |
Seydel, K | 1 |
Wilson, ML | 2 |
Taylor, T | 1 |
Mathanga, DP | 2 |
Cohee, LM | 1 |
Seydel, KB | 1 |
Mbewe, RB | 1 |
Matengeni, A | 1 |
Takala-Harrison, S | 1 |
Walker, ED | 1 |
Laufer, MK | 1 |
Taylor, TE | 1 |
Nankabirwa, JI | 1 |
Rek, J | 1 |
Arinaitwe, E | 1 |
Namuganga, JF | 1 |
Nsobya, SL | 1 |
Asua, V | 1 |
Mawejje, HD | 1 |
Epstein, A | 1 |
Greenhouse, B | 1 |
Rodriguez-Barraquer, I | 1 |
Briggs, J | 1 |
Krezanoski, PJ | 1 |
Rosenthal, PJ | 1 |
Conrad, M | 1 |
Smith, D | 1 |
Drakeley, C | 1 |
Bousema, T | 1 |
Andolina, C | 1 |
Azizi, S | 1 |
Matowo, J | 1 |
Mbewe, NJ | 1 |
Athumani, R | 1 |
Matiku, W | 1 |
Shayo, M | 1 |
Tenu, F | 1 |
Mosha, F | 1 |
Kitau, J | 1 |
Mbuba, E | 1 |
Odufuwa, OG | 1 |
Moore, J | 1 |
Mmbaga, S | 1 |
Tchicaya, E | 1 |
Edi, C | 2 |
Chalageri, V | 1 |
Uragayala, S | 1 |
Sharma, A | 1 |
Rahi, M | 1 |
Raghavendra, K | 2 |
Eapen, A | 1 |
Koenker, H | 1 |
Ross, A | 1 |
Moore, SJ | 1 |
Matowo, NS | 2 |
Kulkarni, MA | 2 |
Messenger, LA | 4 |
Jumanne, M | 2 |
Martin, J | 2 |
Mallya, E | 2 |
Lukole, E | 4 |
Mosha, JF | 4 |
Moshi, O | 2 |
Shirima, B | 1 |
Kaaya, R | 2 |
Manjurano, A | 4 |
Mosha, FW | 4 |
Cross, CL | 1 |
Portwood, NM | 1 |
Pelloquin, B | 2 |
Fullerton, K | 1 |
Walker, T | 2 |
Barker, TH | 1 |
Stone, JC | 1 |
Hasanoff, S | 1 |
Price, C | 1 |
Kabaghe, A | 1 |
Munn, Z | 1 |
Charlwood, JD | 2 |
Wright, A | 2 |
Kessy, E | 1 |
Kleinschmidt, I | 2 |
Kabera, M | 1 |
Mangala, JN | 1 |
Soebiyanto, R | 1 |
Mukarugwiro, B | 1 |
Munguti, K | 1 |
Mbituyumuremyi, A | 1 |
Lucchi, NW | 1 |
Hakizimana, E | 1 |
Sahu, SS | 1 |
Dash, S | 1 |
Sonia, T | 1 |
Gunasekaran, K | 1 |
Oumbouke, WA | 1 |
Koffi, AA | 1 |
Alou, LPA | 1 |
Camara, S | 1 |
Bayili, K | 1 |
N'Do, S | 1 |
Yadav, RS | 1 |
Namountougou, M | 1 |
Ouattara, A | 1 |
Dabiré, RK | 2 |
Ouédraogo, GA | 1 |
Diabaté, A | 1 |
Menze, BD | 1 |
Kouamo, MF | 1 |
Wondji, MJ | 2 |
Tchapga, W | 2 |
Tchoupo, M | 2 |
Kusimo, MO | 1 |
Mouhamadou, CS | 1 |
Riveron, JM | 2 |
Wondji, CS | 2 |
Ahogni, IB | 1 |
Salako, AS | 1 |
Akinro, B | 1 |
Sovi, A | 2 |
Gnanguenon, V | 1 |
Azondekon, R | 1 |
Dagnon, JF | 1 |
Akogbeto, P | 1 |
Tokponon, F | 1 |
Akogbeto, MC | 1 |
Bajunirwe, F | 1 |
Kyohere, M | 2 |
Keita, C | 1 |
Sinaba, Y | 1 |
Dicko, A | 1 |
Traore, I | 1 |
Cisse, MBM | 1 |
Koita, O | 1 |
Dengela, D | 1 |
Flatley, C | 1 |
Bankineza, E | 1 |
Mihigo, J | 1 |
Belemvire, A | 1 |
Carlson, J | 1 |
Oxborough, RM | 1 |
Meiwald, A | 1 |
Clark, E | 1 |
Kristan, M | 1 |
Jeffries, CL | 1 |
Irish, SR | 1 |
Shepard, DS | 1 |
Odumah, JU | 1 |
Awolola, ST | 1 |
Gleave, K | 2 |
Lissenden, N | 3 |
Chaplin, M | 1 |
Choi, L | 2 |
Ranson, H | 4 |
Minakawa, N | 1 |
Kongere, JO | 1 |
Sonye, GO | 1 |
Lutiali, PA | 1 |
Awuor, B | 1 |
Kawada, H | 1 |
Isozumi, R | 1 |
Futami, K | 1 |
Ten Brink, D | 1 |
Gad, M | 1 |
Ruiz, F | 1 |
Mwalimu, CD | 1 |
Kisinza, W | 1 |
Ketoh, GK | 1 |
Ahadji-Dabla, KM | 1 |
Chabi, J | 1 |
Amoudji, AD | 1 |
Apetogbo, GY | 1 |
Awokou, F | 1 |
Glitho, IA | 1 |
Toe, KH | 1 |
Müller, P | 1 |
Badolo, A | 1 |
Traore, A | 1 |
Sagnon, N | 1 |
Richardson, M | 1 |
Oruni, A | 1 |
Yeka, A | 2 |
Huijben, S | 1 |
Tchouakui, M | 1 |
Irving, H | 1 |
Cuamba, N | 1 |
Maquina, M | 1 |
Paaijmans, K | 1 |
Birhanu, A | 1 |
Asale, A | 1 |
Yewhalaw, D | 1 |
Pennetier, C | 1 |
Bouraima, A | 1 |
Chandre, F | 1 |
Piameu, M | 1 |
Etang, J | 1 |
Rossignol, M | 1 |
Sidick, I | 1 |
Zogo, B | 1 |
Lacroix, MN | 1 |
Yadav, R | 1 |
Pigeon, O | 2 |
Corbel, V | 1 |
Griffin, JT | 1 |
Worrall, E | 1 |
Yadav, S | 2 |
Mittal, PK | 2 |
Saxena, PN | 2 |
Singh, RK | 2 |
Asidi, A | 1 |
Boko, P | 1 |
Odjo, A | 1 |
Akogbeto, M | 1 |
Barik, TK | 1 |
Sharma, P | 1 |
Bhatt, RM | 1 |
Srivastava, HC | 1 |
Sreehari, U | 1 |
Dash, AP | 1 |
Barbosa, S | 1 |
Hastings, IM | 1 |
Kumar, S | 1 |
Thomas, A | 1 |
Sahgal, A | 1 |
Verma, A | 1 |
Samuel, T | 1 |
Pillai, MK | 1 |
Trial | Phase | Enrollment | Study Type | Start Date | Status | ||
---|---|---|---|---|---|---|---|
Effectiveness Study of Bednets Treated With Synegistic Combination of Insectcides in an Area With Pyrethroid-resistant Vectors in the Democratic Republic of the Congo[NCT03289663] | Phase 4 | 1,680 participants (Anticipated) | Interventional | 2017-10-02 | Active, not recruiting | ||
Efficacy of Three Different Bi-treated Long Lasting Insecticidal Nets and Deployment Strategy for Control of Malaria Transmitted by Pyrethroid Resistant Vectors: A Randomised Controlled Trial[NCT03554616] | 4,200 participants (Actual) | Interventional | 2019-02-01 | Completed | |||
Evaluation of a Novel Long Lasting Insecticidal Net and Indoor Residual Spray Product, Separately and Together, Against Malaria Transmitted by Pyrethroid Resistant Mosquitoes.[NCT02288637] | 3,840 participants (Actual) | Interventional | 2014-09-30 | Completed | |||
Phase III, Open-label, Community-based, Cluster Randomised Controlled Trial to Evaluate the Efficacy, Cost-effectiveness, and Acceptability of Attractive Targeted Sugar Baits (ATSB) for Malaria Burden Reduction in Western Kenya[NCT05219565] | 5,376 participants (Anticipated) | Interventional | 2022-03-01 | Recruiting | |||
Estimating the Malaria Prevention Impact of New Nets: Observational Analyses to Evaluate the Evidence Generated During Piloted New Net Distributions in Rwanda[NCT04230161] | 3,502 participants (Actual) | Observational | 2020-02-24 | Completed | |||
Estimating the Malaria Prevention Impact of New Nets: Observational Analyses to Evaluate the Evidence Generated During Piloted New Net Distributions in Mozambique[NCT04716387] | 8,726 participants (Actual) | Observational | 2020-08-18 | Completed | |||
A Household Randomized Control Trial of Insecticide-treated Eave Nets and Window Screens for Malaria Control in Chalinze District, Tanzania.[NCT05125133] | 1,800 participants (Anticipated) | Interventional | 2021-07-09 | Recruiting | |||
[information is prepared from clinicaltrials.gov, extracted Sep-2024] |
4 reviews available for piperonyl butoxide and Malaria
Article | Year |
---|---|
Effectiveness of dual active ingredient insecticide-treated nets in preventing malaria: A systematic review and meta-analysis.
Topics: Humans; Insecticide-Treated Bednets; Insecticides; Malaria; Mosquito Control; Piperonyl Butoxide; Py | 2023 |
Piperonyl butoxide (PBO) combined with pyrethroids in insecticide-treated nets to prevent malaria in Africa.
Topics: Africa; Animals; Culicidae; Drug Combinations; Feeding Behavior; Humans; Insecticide Resistance; Ins | 2021 |
Piperonyl butoxide (PBO) combined with pyrethroids in insecticide-treated nets to prevent malaria in Africa.
Topics: Africa; Animals; Culicidae; Drug Combinations; Feeding Behavior; Humans; Insecticide Resistance; Ins | 2018 |
The impact of pyrethroid resistance on the efficacy and effectiveness of bednets for malaria control in Africa.
Topics: Africa; Animals; Anopheles; Biological Assay; Humans; Insecticide Resistance; Insecticide-Treated Be | 2016 |
10 trials available for piperonyl butoxide and Malaria
32 other studies available for piperonyl butoxide and Malaria
Article | Year |
---|---|
An Adaptive Intervention Trial Design for Finding the Optimal Integrated Strategies for Malaria Control and Elimination in Africa: A Model Simulation Study.
Topics: Animals; Anopheles; Bacterial Toxins; Disease Eradication; Humans; Insecticide-Treated Bednets; Keny | 2021 |
A quasi-experimental study estimating the impact of long-lasting insecticidal nets with and without piperonyl butoxide on pregnancy outcomes.
Topics: Adult; Female; Humans; Insecticide-Treated Bednets; Insecticides; Interrupted Time Series Analysis; | 2022 |
Comparative efficacy of two pyrethroid-piperonyl butoxide nets (Olyset Plus and PermaNet 3.0) against pyrethroid resistant malaria vectors: a non-inferiority assessment.
Topics: Animals; Anopheles; Benin; Insecticide Resistance; Insecticide-Treated Bednets; Malaria; Mosquito Co | 2022 |
Optimising the deployment of vector control tools against malaria: a data-informed modelling study.
Topics: Animals; Insecticide-Treated Bednets; Malaria; Mosquito Control; Piperonyl Butoxide; Tanzania | 2022 |
Pyrethroid-piperonyl butoxide (PBO) nets reduce the efficacy of indoor residual spraying with pirimiphos-methyl against pyrethroid-resistant malaria vectors.
Topics: Animals; Anopheles; Insecticide Resistance; Malaria; Mosquito Control; Mosquito Vectors; Organothiop | 2022 |
Assessing the impact of insecticide-treated nets in the face of insecticide resistance on malaria control.
Topics: Adult; Animals; Culicidae; Humans; Insecticide Resistance; Insecticide-Treated Bednets; Insecticides | 2022 |
Malawi ICEMR Malaria Research: Interactions and Results Influencing Health Policies and Practices.
Topics: Adult; Animals; Child; Health Policy; Humans; Insecticide Resistance; Insecticide-Treated Bednets; M | 2022 |
Understanding the Intransigence of Malaria in Malawi.
Topics: Animals; Child; Child, Preschool; Humans; Insecticide Resistance; Insecticide-Treated Bednets; Insec | 2022 |
East Africa International Center of Excellence for Malaria Research: Summary of Key Research Findings.
Topics: Adolescent; Animals; Antimalarials; Artemisinins; Carbamates; Child; Child, Preschool; Humans; Insec | 2022 |
Laboratory and semi-field efficacy evaluation of permethrin-piperonyl butoxide treated blankets against pyrethroid-resistant malaria vectors.
Topics: Animals; Anopheles; Humans; Insecticide Resistance; Insecticide-Treated Bednets; Insecticides; Malar | 2022 |
Impact of Pyrethroid Plus Piperonyl Butoxide Synergist-Treated Nets on Malaria Incidence 24 Months after a National Distribution Campaign in Rwanda.
Topics: Humans; Incidence; Insecticide Resistance; Insecticide-Treated Bednets; Insecticides; Malaria; Mosqu | 2023 |
Synergist piperonyl butoxide enhances the efficacy of deltamethrin in deltamethrin-resistant
Topics: Animals; Anopheles; Drug Synergism; Humans; India; Insecticide Resistance; Insecticides; Malaria; Mo | 2019 |
Experimental hut evaluation of DawaPlus 3.0 LN and DawaPlus 4.0 LN treated with deltamethrin and PBO against free-flying populations of Anopheles gambiae s.l. in Vallée du Kou, Burkina Faso.
Topics: Agriculture; Animals; Anopheles; Burkina Faso; Equipment Design; Flight, Animal; Gossypium; Humans; | 2019 |
An Experimental Hut Evaluation of PBO-Based and Pyrethroid-Only Nets against the Malaria Vector
Topics: Animals; Anopheles; Cameroon; Glutathione Transferase; Insect Proteins; Insecticide Resistance; Inse | 2020 |
Physical integrity and survivorship of long-lasting insecticidal nets distributed to households of the same socio-cultural community in Benin, West Africa.
Topics: Animals; Benin; Cohort Studies; Family Characteristics; Health Education; Humans; Informed Consent; | 2020 |
Pyrethroid resistance in sub-Saharan Africa.
Topics: Africa South of the Sahara; Humans; Malaria; Piperonyl Butoxide; Pyrethrins; Uganda | 2020 |
Anopheles gambiae (s.l.) exhibit high intensity pyrethroid resistance throughout Southern and Central Mali (2016-2018): PBO or next generation LLINs may provide greater control.
Topics: Animals; Anopheles; Biological Assay; Female; Insecticide Resistance; Insecticide-Treated Bednets; I | 2020 |
Association of Reduced Long-Lasting Insecticidal Net Efficacy and Pyrethroid Insecticide Resistance With Overexpression of CYP6P4, CYP6P3, and CYP6Z1 in Populations of Anopheles coluzzii From Southeast Côte d'Ivoire.
Topics: Animals; Anopheles; Cote d'Ivoire; Insecticide Resistance; Insecticide-Treated Bednets; Insecticides | 2022 |
Cost-Effectiveness of PBO versus Conventional Long-Lasting Insecticidal Bed Nets in Preventing Symptomatic Malaria in Nigeria: Results of a Pragmatic Randomized Trial.
Topics: Adolescent; Adult; Aged; Aged, 80 and over; Animals; Anopheles; Child; Child, Preschool; Cost-Benefi | 2020 |
Malaria innovations: pursuing value in an evolving market.
Topics: Animals; Diffusion of Innovation; Disease Vectors; Global Health; Humans; Insecticide Resistance; In | 2018 |
Efficacy of two PBO long lasting insecticidal nets against natural populations of Anopheles gambiae s.l. in experimental huts, Kolokopé, Togo.
Topics: Animals; Anopheles; Genes, Insect; Humans; Insecticide Resistance; Insecticide-Treated Bednets; Inse | 2018 |
Do bednets including piperonyl butoxide offer additional protection against populations of Anopheles gambiae s.l. that are highly resistant to pyrethroids? An experimental hut evaluation in Burkina Fasov.
Topics: Animals; Anopheles; Biological Assay; Burkina Faso; DNA; Female; Housing; Humans; Insecticide Resist | 2018 |
LLIN Evaluation in Uganda Project (LLINEUP): a cross-sectional survey of species diversity and insecticide resistance in 48 districts of Uganda.
Topics: Animals; Anopheles; Cross-Sectional Studies; Female; Humans; Insecticide Resistance; Insecticide-Tre | 2019 |
Escalation of Pyrethroid Resistance in the Malaria Vector Anopheles funestus Induces a Loss of Efficacy of Piperonyl Butoxide-Based Insecticide-Treated Nets in Mozambique.
Topics: Africa; Alleles; Animals; Anopheles; Cytochrome P-450 Enzyme System; Female; Humans; Insecticide Res | 2019 |
Bio-efficacy and physical integrity of piperonylbutoxide coated combination net (PermaNet
Topics: Animals; Anopheles; Culex; Ethiopia; Female; Insecticide Resistance; Insecticide-Treated Bednets; In | 2019 |
Efficacy of Olyset® Plus, a new long-lasting insecticidal net incorporating permethrin and piperonyl-butoxide against multi-resistant malaria vectors [corrected].
Topics: Animals; Anopheles; Female; Insecticide Resistance; Insecticide-Treated Bednets; Insecticides; Malar | 2013 |
Effect of synergist piperonyl butoxide (PBO) on the toxicity of some essential oils against mosquito larvae.
Topics: Animals; Culicidae; Cymbopogon; Humans; Insect Vectors; Insecticides; Larva; Malaria; Mentha piperit | 2008 |
Effect of synergist piperonyl butoxide (PBO) on the toxicity of some essential oils against mosquito larvae.
Topics: Animals; Anopheles; Cymbopogon; Humans; Insect Vectors; Lamiaceae; Larva; Lethal Dose 50; Malaria; M | 2009 |
An experimental hut evaluation of PermaNet(®) 3.0, a deltamethrin-piperonyl butoxide combination net, against pyrethroid-resistant Anopheles gambiae and Culex quinquefasciatus mosquitoes in southern Benin.
Topics: Animals; Anopheles; Benin; Culex; Drug Resistance; Housing; Humans; Insecticide-Treated Bednets; Ins | 2010 |
Chlorfenapyr: a new insecticide with novel mode of action can control pyrethroid resistant malaria vectors.
Topics: Animals; Anopheles; DDT; Female; India; Insect Vectors; Insecticide Resistance; Insecticides; Lethal | 2011 |
The importance of modelling the spread of insecticide resistance in a heterogeneous environment: the example of adding synergists to bed nets.
Topics: Animals; Anopheles; Gene Frequency; Genes, Insect; Humans; Insecticide Resistance; Insecticides; Log | 2012 |
Variations in the insecticide-resistance spectrum of Anopheles stephensi after selection with deltamethrin or a deltamethrin-piperonyl-butoxide combination.
Topics: Animals; Anopheles; DDT; Disease Vectors; Drug Combinations; Insecticide Resistance; Insecticides; L | 2004 |