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fenvalerate

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Description

fenvalerate: synthetic pyrethroid; RN given refers to cpd without isomeric designation; structure [Medical Subject Headings (MeSH), National Library of Medicine, extracted Dec-2023]

fenvalerate : A carboxylic ester obtained by formal condensation between 2-(4-chlorophenyl)-3-methylbutyric acid and cyano(3-phenoxyphenyl)methanol. [Chemical Entities of Biological Interest (ChEBI), Hastings J, Owen G, Dekker A, Ennis M, Kale N, Muthukrishnan V, Turner S, Swainston N, Mendes P, Steinbeck C. (2016). ChEBI in 2016: Improved services and an expanding collection of metabolites. Nucleic Acids Res]

Cross-References

ID SourceID
PubMed CID3347
CHEMBL ID492491
CHEBI ID5014
SCHEMBL ID26911
MeSH IDM0068657

Synonyms (118)

Synonym
benzeneacetic acid, 4-chloro-.alpha.-(1-methylethyl)-, cyano (3-phenoxyphenyl)methyl ester,(s-(r*,r*))-
belmark
benzeneacetic acid, 4-chloro-.alpha.-(1-methylethyl)-, cyano(3-phenoxyphenyl)methyl ester
cyano[3-(phenyloxy)phenyl]methyl 2-(4-chlorophenyl)-3-methylbutanoate
benzeneacetic acid, 4-chloro-alpha-(1-methylethyl)-, cyano(3-phenoxyphenyl)methyl ester
(rs)-alpha-cyano-3-phenoxybenzyl (rs)-2-(4-chlorophenyl)-3-methylbutyrate
sumicidin
(rs)-alpha-cyano-3-phenoxybenzyl (rs)-2-(4-chloro-phenyl)-3-methylbutyrate
sanmarton
agrofen
fenvalerate [bsi:iso]
sumitick
furitrothion
ai3-29235
wl 43775
sumkidin
aqmatrine
alpha-cyano-3-phenoxybenzyl 2-(4-chlorophenyl)isovalerate
epa shaughnessy code: 109301
(+)-alpha-cyano-3-phenoxybenzyl-(+)-alpha-(4-chlorophenyl)isovalerate
alpha-cyano-3-phenoxybenzyl alpha-isopropyl-4-chlorophenylacetate
s-5602 ,
insectral
sumifleece
phenoxin
fenaxin
fenval
ccris 311
s 5602
sumicidin 20e
sumipower
brn 2025982
gold crest tribute
(cyano(3-phenoxyphenyl)methyl-4-chloro-alpha-(1-methylethyl)phenylacetate)
caswell no. 077a
cyano(3-phenoxybenzyl)methyl 2-(4-chlorophenyl)-3-methylbutyrate
fenkill
oms-2000
4-chloro-alpha-(1-methylethyl)benzeneacetic acid cyano(3-phenoxyphenyl)methyl ester
sumifly
ectrin
tribute
sumibac
sd 43775
hsdb 6640
einecs 257-326-3
alpha-cyano-3-phenoxybenzyl-2-(4-chlorophenyl)-3-methylbutyrate
fenkem
fenoxin
evercide 2362
alpha-cyano-3-phenoxybenzyl alpha-(4-chlorophenyl)isovalerate
tirade
cyano(3-phenoxyphenyl)methyl 4-chloro-alpha-(1-methylethyl)benzeneacetate
HSCI1_000043
fenvalerate
51630-58-1
pydrin
cyano(3-phenoxyphenyl)methyl 2-(4-chlorophenyl)-3-methylbutanoate
alpha-cyano-m-phenoxybenzyl 2-(p-chlorophenyl)-3-methylbutyrate
alpha-cyano-3-phenoxybenzyl 2-(4-chlorophenyl)-3-methylbutyrate
phenvalerate
CHEBI:5014 ,
alpha-cyano-(3-phenoxyphenyl)methyl-4-chloro-alpha-(1-methylethyl)benzeneacetate
NCGC00163508-02
NCGC00163508-01
cyano(3-phenoxyphenyl)methyl ester, 4-chloro-alpha-(1-methylethyl)benzeneacetic acid
BMK1-H10
fenvalerate (ban)
D07952
acadrex (tn)
wl-43775
CHEMBL492491
[cyano-(3-phenoxyphenyl)methyl] 2-(4-chlorophenyl)-3-methylbutanoate
NCGC00163508-03
fenvalerate [inn:ban]
unii-z6mxz39302
z6mxz39302 ,
FT-0630761
FT-0630648
niosh/cy1576360
CY15763600
benzeneacetic acid, 4-chloro-alpha-(1-methylethyl)-, cyano(3-phenoxyphenyl)methyl ester, (+-)-
(+-)-fenvalerate
(+-)-4-chloro-alpha-(1-methylethyl)benzeneacetic acid cyano(3-phenoxyphenyl)methyl ester
AKOS015904814
fenvalerate [hsdb]
(rs)-.alpha.-cyano-3-phenoxybenzyl (rs)-2-(4-chloro-phenyl)-3-methylbutyrate
(.alpha.rs)-.alpha.-cyano-3-phenoxybenzyl (2rs)-2-(4-chlorophenyl)-3-methylbutyrate
fenvalerate [iarc]
cyano(3-phenoxyphenyl)methyl 4-chloro-.alpha.-(1-methylethyl)benzeneacetate
fenvalerate [iso]
fenvalerate [mart.]
fenvalerate [mi]
fenvaierate
alpha-cyano-3-phenoxybenzyl 2-(4-chlorophenyl)-3-methylbutanoate
alpha-cyano-3-phenoxy-benzyl 2-(p-chlorophenyl)-2-isopropyl-acetate
SCHEMBL26911
W-111022
cyano (3-phenoxybenzyl)-2-(4-chlorophenyl)-3-methylbutyrate
AC-22281
mfcd00055324
fenvalerate, pestanal(r), analytical standard
fenvalerate, >=97%
fenvalerate 100 microg/ml in isooctane
fenvalerate 10 microg/ml in isooctane
cyano(3-phenoxyphenyl)methyl 4-chloro-a-(1-methylethyl)benzeneacetate, 9ci
a-cyano-3-phenoxybenzyl 2-(4-chlorophenyl)-3-methylbutyrate
fenvalerate, certified reference material, tracecert(r)
FT-0668516
Q412010
fenvalerate-(phenoxy-d5)
AS-49365
DTXSID101017940
[(s)-cyano-(3-phenoxyphenyl)methyl] (2r)-2-(4-chlorophenyl)-3-methylbutanoate
CS-0014107
H11436
HY-B2006
EN300-1717625

Research Excerpts

Overview

Fenvalerate (Fen) is an endocrine disruptor capable of interfering with the activity of estrogen and androgen. Fenvalerate is a neurotoxic pyrethroid insecticide widely used for agricultural and residential purposes and is considered toxic to nontarget organisms.

ExcerptReferenceRelevance
"Fenvalerate is a broadly used type II pyrethroid with a potential toxic effect in fish. "( Environmentally relevant concentrations of fenvalerate induces immunotoxicity and reduces pathogen resistance in Chinese rare minnow (Gobiocypris rarus).
Hong, X; Yan, S; Zha, J; Zhang, L, 2022
)
2.43
"Esfenvalerate is a kind of commonly used highly effective pyrethroid insecticide. "( [A case of poisoning caused by intramuscular injection of esfenvalerate].
Li, J; Tang, GM; Xiang, SZ; Yang, L; Yang, MY, 2023
)
1.87
"Esfenvalerate is a pyrethroid insecticide used widely for agricultural and residential applications. "( The pyrethroid esfenvalerate induces hypoactivity and decreases dopamine transporter expression in embryonic/larval zebrafish (Danio rerio).
Li, XY; Martyniuk, CJ; Souders, CL; Wang, XH; Xavier, P; Yan, B, 2020
)
1.62
"Fenvalerate (Fen) is an endocrine disruptor, capable of interfering with the activity of estrogen and androgen. "( Key proteins of proteome underlying sperm malformation of rats exposed to low fenvalerate doses are highly related to P53.
Huang, S; Li, S; Lu, Y; Wang, J; Xia, J; Zhang, X; Zhou, T; Zhou, Z, 2021
)
2.29
"Fenvalerate is an environmental endocrine disruptor that disrupts testosterone and estradiol synthesis. "( Maternal Fenvalerate Exposure Induces Fetal Intrauterine Growth Restriction Through Disrupting Placental Thyroid Hormone Receptor Signaling.
Chen, YH; Fu, L; Liu, JJ; Meng, XH; Shen, R; Wang, B; Wang, H; Wang, Y; Xu, DX; Yu, Z; Zhang, C, 2017
)
2.31
"Esfenvalerate is a neurotoxic pyrethroid insecticide widely used for agricultural and residential purposes and is considered toxic to nontarget organisms such as fish and aquatic invertebrates. "( Effects of the Pyrethroid Esfenvalerate on the Oligochaete, Lumbriculus variegatus.
Bordalo, MD; Pestana, JL; Rosa, R; Soares, AM, 2016
)
1.45
"Fenvalerate (Fen) is a widely used synthetic pyrethroid insecticide which is considered to impede the male reproductive function. "( Fenvalerate-induced Ca2+ transients via both intracellular and extracellular way in mouse GC-2spd (ts) cells.
Cheng, J; Ding, H; Gao, R; Gao, X; Jiang, L; Wang, J; Wang, Q; Xiao, H, 2009
)
3.24
"Fenvalerate is a widely used synthetic pyrethroid insecticide and is reported to disrupt reproductive function in humans and animals. "( Fenvalerate inhibits the growth of primary cultured rat preantral ovarian follicles.
Chen, JF; Ding, XL; Fei, J; Lu, CC; Qu, JH; Song, L; Wang, SL; Wang, XR; Xia, YK; Xue, K, 2010
)
3.25
"Fenvalerate is a potential endocrine disruptor. "( Effects of pubertal fenvalerate exposure on testosterone and estradiol synthesis and the expression of androgen and estrogen receptors in the developing brain.
Chen, YH; Ji, YL; Liu, P; Meng, XH; Wang, H; Xu, DX; Xu, ZM; Zhang, C; Zhao, M; Zhao, XF, 2011
)
2.14
"Fenvalerate is a potential EDC."( Gender-specific impairments on cognitive and behavioral development in mice exposed to fenvalerate during puberty.
Chen, GH; Liu, P; Meng, XH; Wang, H; Xu, DX; Xu, ZM; Zhao, XF, 2011
)
1.31
"Fenvalerate is a synthetic pyrethroid insecticide used in agriculture and domestic insect control. "( In utero and lactational exposure to fenvalerate disrupts reproductive function in female rats.
de Toledo, FC; Guerra, MT; Kempinas, Wde G, 2011
)
2.08
"Fenvalerate (Fen) is a synthetic pyrethroid, which is commonly used for destroying a variety of insect pests damaging several vegetable, fruit, and cotton crops. "( Steroidogenic alterations in testes and sera of rats exposed to formulated Fenvalerate by inhalation.
Dutta, KK; Islam, F; Kumar, P; Maji, BK; Mani, U; Prasad, AK; Suresh Kumar, V, 2002
)
1.99
"Fenvalerate (20% EC) is a synthetic pyrethroid, which is commonly used in India by farmers for the protection of many food and vegetable crops against a wide variety of insects. "( Hepatotoxic alterations induced by subchronic exposure of rats to formulated fenvalerate (20% EC) by nose only inhalation.
Dutta, KK; Kumar, P; Lal, K; Maji, BK; Mani, U; Prasad, AK; Sureshkumar, V, 2004
)
2
"Fenvalerate is a non-systemic insecticide/acaricide used in controlling a wide range of pests, including those resistant to organochlorine, organophosphorus and carbamate insecticides. "( Fenvalerate residue level and dissipation in tea and in its infusion.
Gupta, M; Shanker, A; Sharma, A, 2008
)
3.23
"Fenvalerate is a widely used synthetic pyrethroid insecticide and is known to impede the male reproductive function. "( Fenvalerate inhibits progesterone production through cAMP-dependent signal pathway.
Chen, JF; Hong, X; Qu, JH; Song, L; Sun, H; Wang, SL; Wang, XR; Wang, YB; Xu, XL, 2008
)
3.23
"Fenvalerate is a commonly used pyrethroid insecticide, used to control a wide range of pests. "( Effect of fenvalerate, a pyrethroid insecticide on membrane fluidity.
Balasubramanian, SV; Sarkar, SN; Sikdar, SK, 1993
)
2.13
"Fenvalerate is a pyrethroid insecticide which interacts with ionic channels. "( Spectroscopic studies of the interactions of the pyrethroid insecticide fenvalerate with gramicidin.
Ghosh, JK; Sarkar, SN; Sikdar, SK, 1998
)
1.98
"Fenvalerate is a widely used pesticide, which has been shown recently to be nonmutagenic. "( Carcinogenicity study of the pesticide fenvalerate in mice.
Cabral, JR; Galendo, D, 1990
)
1.99

Effects

Fenvalerate has a potentially adverse effect on male reproduction and spermatogenesis. The precise mechanism remains obscure. residues of this pesticide have been found in some agricultural crops.

ExcerptReferenceRelevance
"Fenvalerate has a potentially adverse effect on male reproduction and spermatogenesis, whereas the precise mechanism remains obscure. "( Fenvalerate induces germ cell apoptosis in mouse testes through the Fas/FasL signaling pathway.
Ji, YL; Liu, P; Wang, H; Wang, Q; Xu, DX; Zhang, C; Zhang, Y; Zhao, XF, 2011
)
3.25
"Fenvalerate has a potentially adverse effect on male reproduction and spermatogenesis, whereas the precise mechanism remains obscure. "( Fenvalerate induces germ cell apoptosis in mouse testes through the Fas/FasL signaling pathway.
Ji, YL; Liu, P; Wang, H; Wang, Q; Xu, DX; Zhang, C; Zhang, Y; Zhao, XF, 2011
)
3.25
"Fenvalerate has been widely used for the control of many common pests, but residues of this pesticide have been found in some agricultural crops. "( A sensitivity-improved enzyme-linked immunosorbent assay for fenvalerate: a new approach for hapten synthesis and application to tea samples.
Liu, B; Lu, Y; Song, Y; Wang, S; Xu, N, 2011
)
2.05
"Fenvalerate (FEN) has been demonstrated to be a reproductive toxicant in humans and rodents. "( Effect of low-dose fenvalerate on semen quality capacitation in adult mice.
Bi, HJ; Fu, HL; Li, JM; Li, LY; Liu, DK; Shi, XD, 2011
)
2.14
"Fenvalerate has obvious reproductive toxicity on male rats and can change their serum and testis homogenate levels of sex hormone or activity of testicular marked enzymes, which may be correlated with the impairment of Sertoli cell and spermatogenic epithelium."( [Effects of fenvalerate on reproductive and endocrine systems of male rats].
Chen, JH; Hu, JY; Song, L; Wang, SL; Wang, XR; Yang, J; Zhao, RC, 2002
)
2.14

Treatment

Fenvalerate was treated with 0.5 mmol L(-1) NaOH-methanol solution to improve its solubility by isomerization. Fenvalerate treatment inhibited progesterone secretion induced by human chorionic gonadotropin (hCG), cholera toxin (CT) or forskolin.

ExcerptReferenceRelevance
"Fenvalerate was treated with 0.5 mmol L(-1) NaOH-methanol solution to improve its solubility by isomerization."( A sensitivity-improved enzyme-linked immunosorbent assay for fenvalerate: a new approach for hapten synthesis and application to tea samples.
Liu, B; Lu, Y; Song, Y; Wang, S; Xu, N, 2011
)
1.33
"Fenvalerate treated human sera showed serum complement activation as evident by significant (p<0.05) increase in C3b, C3d and C3a levels and a significant (p<0.05) decline in CH50 levels."( Immunomodulation of serum complement (C3) and macrophages by synthetic pyrethroid fenvalerate: in vitro study.
Das, N; Dutta, R, 2011
)
1.32
"Fenvalerate treatment inhibited progesterone secretion induced by human chorionic gonadotropin (hCG), cholera toxin (CT) or forskolin and decreased cAMP levels induced by hCG, but not by CT or forskolin, which suggested a repaired site on the upstream components of G protein or G protein per se by fenvalerate in the cAMP-mediated signal pathway."( Fenvalerate inhibits progesterone production through cAMP-dependent signal pathway.
Chen, JF; Hong, X; Qu, JH; Song, L; Sun, H; Wang, SL; Wang, XR; Wang, YB; Xu, XL, 2008
)
2.51
"In fenvalerate treated rats, there was supernormal excitability from 4 msec to 40 msec."( Effect of pyrethroid (allethrin and fenvalerate) on excitability changes following nerve impulse.
Hashimoto, K; Nozaki, S; Takahashi, M, 1995
)
1.08

Toxicity

Chlorpyrifos is the most toxic pesticide, followed by Fenvalerate/Nimbecidine. The relative toxic potency of aldrin fenvalerate, captan and diazinon was in a ratio of 6807:241:4:1 respectively.

ExcerptReferenceRelevance
" The relative toxic potency of aldrin fenvalerate, captan and diazinon was in a ratio of 6807:241:4:1 respectively."( Relative toxicity of aldrin, fenvalerate, captan and diazinon to the freshwater food-fish, Clarias batrachus.
Tripathi, G, 1992
)
0.85
" The acute oral LD50 to adult (19-wk-old) male and female birds was in excess of 4000 mg/kg."( Toxicity of fenvalerate to bobwhite quail (Colinus virginianus) including brain and liver residues associated with mortality.
Bradbury, SP; Coats, JR, 1982
)
0.64
" Direct water-borne exposure to endosulfan was the most toxic route of exposure and the presence of algae decreased toxicity of this pesticide."( Effect of algal food concentration on toxicity of two agricultural pesticides to Daphnia carinata.
Ahokas, JT; Barry, MJ; Holdway, DA; Logan, DC, 1995
)
0.29
") were tested as toxic standards."( Virulence of the entomopathogenic fungus Metarhizium flavoviride Gams and Rozsypal and toxicity of diflubenzuron, fenitrothion-esfenvalerate and profenofos-cypermethrin to nontarget arthropods in Mauritania.
Demba, SA; Peveling, R, 1997
)
0.5
" Irrespective of the dose, the pyrethroids examined stimulated erythropoiesis and synthesis of hemoglobin in male Swiss mice, while in female mice the administration of deltamethrin in the dose of 1/10 LD50 resulted in the suppression of erythropoiesis and hemoglobin synthesis."( Oral toxicity of deltamethrin and fenvalerate in Swiss mice.
Haratym-Maj, A; Latuszyńska, J; Obuchowska-Przebirowska, D; Tokarska-Rodak, M; Toś-Luty, S, 2001
)
0.59
"These results for the first time indicate the pulmonary toxic effects of a commonly used formulated Fen preparation by using rat model and nose only inhalation as the route of exposure."( Pulmonary toxicity of a formulated preparation of fenvalerate in rats subchronically exposed by nose only inhalation for 90 days.
Dutta, KK; Islam, F; Kumar, P; Maji, BK; Mani, U; Prasad, AK, 2001
)
0.56
" The quantitative residues confirm the toxic action."( Toxicity and residue studies of fenvalerate to some selected freshwater fishes.
Susan, TA; Tilak, KS; Veeraiah, K; Yacobu, K, 2001
)
0.59
" Runoff from the esfenvalerate-sprayed orchard section was less toxic to waterflea than runoff from the diazinon-sprayed section."( Toxicity of storm-water runoff after dormant spray application in a french prune orchard, Glenn County, California, USA: temporal patterns and the effect of ground covers.
Deanovic, LA; Henderson, JD; Kimball, TS; Krueger, W; Oliver, MN; Wallender, WW; Werner, I; Wilson, BW; Zalom, FG, 2004
)
0.65
" Avermectin was extremely harmful to O sokolowskii but slightly toxic to C plutellae, while chlorfluazuron was more toxic to C plutellae than to O sokolowskii."( Evaluation of selective toxicity of five pesticides against Plutella xylostella (Lep: Plutellidae) and their side-effects against Cotesia plutellae (Hym: Braconidae) and Oomyzus sokolowskii (Hym: Eulophidae).
Guo, SJ; Lin, WC; Liu, SS; Shi, ZH, 2004
)
0.32
" magna, significant differences were observed: the 24h EC(50) of alphaS-2S-FV was 51 times more toxic than the alphaR-2R-FV, and the 48 h LC(50) results showed that the alphaS-2S-FV was 99 times more toxic than alphaR-2R-FV."( Enantioselectivity in aquatic toxicity of synthetic pyrethroid insecticide fenvalerate.
Chen, L; Chu, H; Liu, W; Lu, X; Ma, Y; Xu, C, 2009
)
0.58
"Exposure to fenvalerate was demonstrated to be toxic to the male reproductive system."( Expression of calmodulin in germ cells is associated with fenvalerate-induced male reproductive toxicity.
Dixon, D; Gao, R; Gao, X; Huan, F; Lu, L; Wang, C; Wang, J; Wang, Q; Xiao, H, 2012
)
1
" The results of this study underline the need for more advanced mixture toxicity prediction models that consider degradation kinetics and changes in toxic effects over time."( The toxicity of a ternary biocide mixture to two consecutive earthworm (Eisenia fetida) Generations.
Hartnik, T; Jakob, L; Schnug, L, 2013
)
0.39
" Among the tested chemicals, carbofuran was the most toxic to both the earthworm species."( Comparative toxicity of carbaryl, carbofuran, cypermethrin and fenvalerate in Metaphire posthuma and Eisenia fetida -a possible mechanism.
Gupta, SK; Murthy, RC; Saxena, PN, 2014
)
0.64
"In this study, the long-term toxic effects of pyrethroids on the earthworm Eisenia fetida were evaluated."( Long-term toxic effects of deltamethrin and fenvalerante in soil.
Kai, J; Li, L; Song, X; Song, Y; Zhang, W, 2015
)
0.42
" Most urban samples would be expected to be highly toxic to benthic organisms due to the residue of SPs based on a calculation of toxic units (TUs) using toxicity data of the amphipod Hyalella azteca."( Occurrence, compositional distribution, and toxicity assessment of pyrethroid insecticides in sediments from the fluvial systems of Chaohu Lake, Eastern China.
Bai, YS; Chen, TH; Peng, SC; Wang, JZ; Wu, Y; Xie, YW; Zhang, S; Zhang, XW, 2016
)
0.43
" The results showed that FV was less toxic than ESFV, but more accumulated in earthworms."( Comparative toxicity and bioaccumulation of fenvalerate and esfenvalerate to earthworm Eisenia fetida.
Liu, J; Xiong, K; Ye, X, 2016
)
0.7
" It has been noticed that chlorpyrifos is the most toxic pesticide, followed by Fenvalerate/Nimbecidine (Azadirachtin, AZT)."( Oxidative Stress-induced Toxicity and DNA Stability in Some Agri-field Based Livestock/Insect by Widely used Pesticides.
Dalapati, S; Dutta, SM; Maiti, S; Manna, B, 2020
)
0.79
" Pesticides may have toxic effects on higher vertebrates and may sustain in the soil after being metabolized into their different derivatives."( Oxidative Stress-induced Toxicity and DNA Stability in Some Agri-field Based Livestock/Insect by Widely used Pesticides.
Dalapati, S; Dutta, SM; Maiti, S; Manna, B, 2020
)
0.56
"Fenvalerate is a broadly used type II pyrethroid with a potential toxic effect in fish."( Environmentally relevant concentrations of fenvalerate induces immunotoxicity and reduces pathogen resistance in Chinese rare minnow (Gobiocypris rarus).
Hong, X; Yan, S; Zha, J; Zhang, L, 2022
)
2.43
" These adverse outcomes were alleviated by CUR, indicating that CUR mitigated FEN-induced neurotoxicity by inhibiting oxidative stress."( Curcumin protects against fenvalerate-induced neurotoxicity in zebrafish (Danio rerio) larvae through inhibition of oxidative stress.
Huang, M; Liu, C; Wang, J; Yang, F; Zhu, J; Zhu, R; Zou, L, 2023
)
1.21
" Pyrethroids, namely, Cypermethrin, Deltamethrin, Beta-cyfluthrin, Esfenvalerate, Fenvalerate, and Bifenthrin, have set out various types of degenerative and toxic impacts that include oxidative stress, hepatotoxicity, immunotoxicity involving thymic and splenic toxicity, neurotoxicity, nephrotoxicity, foetal toxicity, alterations in serum calcium and phosphate levels, cerebral and bone marrow degeneration, degeneration of the reproductive system, histological alteration, and DNA damage."( Pyrethroids toxicity in vertebrates and invertebrates and amelioration by bioactive compounds: A review.
Dutta, J; Jasrotia, S; Kumar, A; Kyzas, GZ, 2023
)
1.14

Pharmacokinetics

ExcerptReferenceRelevance
"To address concerns around age-related sensitivity to pyrethroids, a life-stage physiologically based pharmacokinetic (PBPK) model, supported by in vitro to in vivo extrapolation (IVIVE) was developed."( Development and Application of a Life-Stage Physiologically Based Pharmacokinetic (PBPK) Model to the Assessment of Internal Dose of Pyrethroids in Humans.
Clewell, HJ; Creek, MR; Efremenko, AY; Hinderliter, P; Hines, RN; Lake, BG; Mallick, P; Moreau, M; Osimitz, TG; Pendse, SN; Song, G; Yoon, M, 2020
)
0.56

Compound-Compound Interactions

ExcerptReferenceRelevance
" Aerosol treatments with insect growth regulators alone and in combination with conventional contact insecticides may be a feasible alternative to expensive and highly toxic fumigants such as methyl bromide for control of the Indianmeal moth (Plodia interpunctella (Hübner))."( Economic feasibility of methoprene applied as a surface treatment and as an aerosol alone and in combination with two other insecticides.
Arthur, FH; Fontenot, EA; Langemeier, MR; Nechols, JR, 2013
)
0.39
"Ultrasound-assisted solvent extraction (UASE) combined with dispersive liquid-liquid microextraction based on the solidification of floating organic drop (DLLME-SFO) has been developed for extraction and determination of fenvalerate from tomato samples."( Determination of fenvalerate in tomato by ultrasound-assisted solvent extraction combined with dispersive liquid-liquid microextraction.
Ahmadi-Jouibari, T; Fattahi, N; Pirsaheb, M; Shamsipur, M, 2014
)
0.93

Bioavailability

ExcerptReferenceRelevance
" This study highlights the ecotoxicological importance and bioavailability of field-relevant levels of particle-associated hydrophobic chemicals transiently introduced into surface waters during runoff events."( Acute and chronic effects of particle-associated fenvalerate on stream macroinvertebrates: a runoff simulation study using outdoor microcosms.
Liess, M; Schulz, R, 2001
)
0.57
" More knowledge on the identification of potential synergists, their true bioavailability and the concentrations and time span within which they can cause synergy needs further study, before an overall evaluation of the occurrence and severity of synergy under field conditions can take place."( Synergy between prochloraz and esfenvalerate in Daphnia magna from acute and subchronic exposures in the laboratory and microcosms.
Bjergager, MB; Cedergreen, N; Hanson, ML; Solomon, KR, 2012
)
0.66

Dosage Studied

Dose-response and activities of detoxication enzymes of the fenvalerate-resistant strain (R-fenvalerate) and a susceptible strain (S) were determined. N-nitrosodiethylamine significantly inhibited intrathecal fen valerate-induced nociceptive behavior with a rightward shift of the dose-response curve.

ExcerptRelevanceReference
" Although the approach did not always predict the exact magnitude or breadth of response found in the littoral enclosures, response levels for each of the selected treatment concentrations were adequate to describe the dose-response relationship of the littoral ecosystem for the two pesticides."( Use of microcosm and fish toxicity data to select mesocosm treatment concentrations.
Jarvinen, AW; Stay, FS, 1995
)
0.29
"Male Sprague-Dawley rats dosed with N-nitrosodiethylamine (NDEA) 24 h after two-thirds partial hepatectomy were treated with the pyrethroid insecticides fenvalerate, flucythrinate or cypermethrin in the diet for 20 weeks."( Enhancement of altered hepatic foci in rat liver and inhibition of intercellular communication in vitro by the pyrethroid insecticides fenvalerate, flucythrinate and cypermethrin.
Flodström, S; Hemming, H; Wärngård, L, 1993
)
0.69
" In addition, both sumithrin and fenvalerate were able to induce cell proliferation of MCF-7 cells in a dose-response fashion."( Estrogenic potential of certain pyrethroid compounds in the MCF-7 human breast carcinoma cell line.
Garey, J; Go, V; Pogo, BG; Wolff, MS, 1999
)
0.58
"The function of the neuromuscular transmission in rats dosed with phoxim (P), methomyl (M), fenvalerate (F), and mixtures of P+M and P+F was studied by using both the stimulation single fiber electromyography (SSFEMG) and repetitive nerve stimulations (RNS) to determine the single muscle fiber action potential and compound muscle action potential (CMAP) respectively."( Repetitive nerve stimulation and stimulation single fiber electromyography studies in rats intoxicated with single or mixed insecticides.
He, F; Li, T; Yang, D, 2001
)
0.53
" Dose-response and activities of detoxication enzymes of the fenvalerate-resistant strain (R-fenvalerate), the imidacloprid-resistant strain (R-imidacloprid), and a susceptible strain (S) were determined."( Resistance of aphis gossypii (Homoptera: Aphididae) to fenvalerate and imidacloprid and activities of detoxification enzymes on cotton and cucumber.
Jiang, XY; Liu, TX; Wang, KY; Yi, MQ; Yu, CH, 2002
)
0.8
"01) in the bone marrow cells, which showed a significant dose-response correlation (r=0."( Fenvalerate-induced chromosome aberrations and sister chromatid exchanges in the bone marrow cells of mice in vivo.
Giri, A; Giri, S; Prasad, SB; Sharma, GD, 2002
)
1.76
"), a selective protein kinase C inhibitor, significantly inhibited intrathecal fenvalerate-induced nociceptive behavior with a rightward shift of the dose-response curve for fenvalerate-induced nociceptive behavior to the level those observed in non-diabetic mice."( Modification of the fenvalerate-induced nociceptive response in mice by diabetes.
Iguchi, E; Kamei, J; Morita, K; Sasaki, M; Tanaka, S; Zushida, K, 2002
)
0.87
"/3rd instar larva) of the pyrethroids deltamethrin and fenvalerate in dose-response bioassays."( High frequency of CYP337B3 gene associated with control failures of Helicoverpa armigera with pyrethroid insecticides in Brazil.
Amado, D; Corrêa, AS; de Sousa, DR; Durigan, MR; Leite, NA; Omoto, C; Pereira, RM, 2017
)
0.7
[information is derived through text-mining from research data collected from National Library of Medicine (NLM), extracted Dec-2023]

Roles (2)

RoleDescription
pyrethroid ester insecticidenull
pyrethroid ester acaricidenull
[role information is derived from Chemical Entities of Biological Interest (ChEBI), Hastings J, Owen G, Dekker A, Ennis M, Kale N, Muthukrishnan V, Turner S, Swainston N, Mendes P, Steinbeck C. (2016). ChEBI in 2016: Improved services and an expanding collection of metabolites. Nucleic Acids Res]

Drug Classes (3)

ClassDescription
carboxylic esterAn ester of a carboxylic acid, R(1)C(=O)OR(2), where R(1) = H or organyl and R(2) = organyl.
aromatic etherAny ether in which the oxygen is attached to at least one aryl substituent.
monochlorobenzenesAny member of the class of chlorobenzenes containing a mono- or poly-substituted benzene ring in which only one substituent is chlorine.
[compound class information is derived from Chemical Entities of Biological Interest (ChEBI), Hastings J, Owen G, Dekker A, Ennis M, Kale N, Muthukrishnan V, Turner S, Swainston N, Mendes P, Steinbeck C. (2016). ChEBI in 2016: Improved services and an expanding collection of metabolites. Nucleic Acids Res]

Protein Targets (6)

Potency Measurements

ProteinTaxonomyMeasurementAverage (µ)Min (ref.)Avg (ref.)Max (ref.)Bioassay(s)
pregnane X receptorRattus norvegicus (Norway rat)Potency15.84890.025127.9203501.1870AID651751
retinoid X nuclear receptor alphaHomo sapiens (human)Potency33.55210.000817.505159.3239AID588544; AID588546
pregnane X nuclear receptorHomo sapiens (human)Potency7.94330.005428.02631,258.9301AID720659
thyroid hormone receptor beta isoform aHomo sapiens (human)Potency0.00140.010039.53711,122.0200AID588547
nuclear factor NF-kappa-B p105 subunit isoform 1Homo sapiens (human)Potency39.81074.466824.832944.6684AID651749
nuclear factor erythroid 2-related factor 2 isoform 1Homo sapiens (human)Potency68.58960.000627.21521,122.0200AID651741
[prepared from compound, protein, and bioassay information from National Library of Medicine (NLM), extracted Dec-2023]

Bioassays (48)

Assay IDTitleYearJournalArticle
AID1112604Potency index, ratio of LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with TE buffer to LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA plus dsCyt-b5-42012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112610Potency index, ratio of LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with TE buffer to LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA plus dsCPR-403-2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112636Insecticidal activity against fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with TE buffer assessed as compound level per larva causing mortality after 12 hr2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112624Insecticidal activity against fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with TE buffer assessed as compound level per larva causing mortality after 36 hr2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112632Insecticidal activity against fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA plus dsCPR-403-1 dsRNA and dsCyt-b5-4 dsRNA assessed as compound level per larva causing mortality after 12 hr2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112631Insecticidal activity against fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae without dsRNA injection assessed as compound level per larva causing mortality after 24 hr2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112608Potency index, ratio of LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with TE buffer to LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA plus dsCyt-b5-42012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112598Insecticidal activity against fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA assessed as insect mortality at 4 to 16 ug/larva after 48 hr (fenvalerate alone control = 29.1 to 50.0%)2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112602Potency index, ratio of LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with TE buffer to LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA after 48 hr2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID390723Inhibition of HSL in Wistar rat isolated fat cells at 1 uM by spectrophotometric assay2008Journal of medicinal chemistry, Oct-23, Volume: 51, Issue:20
Combining ligand-based pharmacophore modeling, quantitative structure-activity relationship analysis and in silico screening for the discovery of new potent hormone sensitive lipase inhibitors.
AID1112618Insecticidal activity against fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with TE buffer assessed as compound level per larva causing mortality after 48 hr2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112625Insecticidal activity against fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae without dsRNA injection assessed as compound level per larva causing mortality after 36 hr2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112639Insecticidal activity against fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae assessed as compound level per larva causing mortality after 48 hr2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112606Potency index, ratio of LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with TE buffer to LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA after 36 hr2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112640Insecticidal activity against fenvalerate-susceptible Helicoverpa armigera third-instar larvae assessed as compound level per larva causing mortality after 48 hr2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112638Resistance index, ratio of LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae to LD50 for fenvalerate-susceptible Helicoverpa armigera third-instar larvae2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112607Potency index, ratio of LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with TE buffer to LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA plus dsCPR-403-2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112609Potency index, ratio of LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with TE buffer to LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA plus dsCPR-403-2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112615Insecticidal activity against fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA plus dsCyt-b5-4 dsRNA assessed as compound level per larva causing mortality after 48 hr2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112637Insecticidal activity against fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae without dsRNA injection assessed as compound level per larva causing mortality after 12 hr2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112611Potency index, ratio of LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with TE buffer to LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA plus dsCyt-b5-42012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112630Insecticidal activity against fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with TE buffer assessed as compound level per larva causing mortality after 24 hr2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112603Potency index, ratio of LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with TE buffer to LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA plus dsCPR-403-2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112628Insecticidal activity against fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA plus dsCPR-403-1 dsRNA assessed as compound level per larva causing mortality after 24 hr2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112597Insecticidal activity against fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA plus dsCPR-403-1 dsRNA assessed as insect mortality at 4 to 16 ug/larva after 48 hr (fenvalerate alone control = 29.1 to 52012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112614Insecticidal activity against fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA plus dsCPR-403-1 dsRNA and dsCyt-b5-4 dsRNA assessed as compound level per larva causing mortality after 48 hr2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112601Potency index, ratio of LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with TE buffer to LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA plus dsCPR-403-2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112617Insecticidal activity against fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA assessed as compound level per larva causing mortality after 48 hr2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112622Insecticidal activity against fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA plus dsCPR-403-1 dsRNA assessed as compound level per larva causing mortality after 36 hr2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112620Insecticidal activity against fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA plus dsCPR-403-1 dsRNA and dsCyt-b5-4 dsRNA assessed as compound level per larva causing mortality after 36 hr2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112627Insecticidal activity against fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA plus dsCyt-b5-4 dsRNA assessed as compound level per larva causing mortality after 24 hr2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112616Insecticidal activity against fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA plus dsCPR-403-1 dsRNA assessed as compound level per larva causing mortality after 48 hr2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112634Insecticidal activity against fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA plus dsCPR-403-1 dsRNA assessed as compound level per larva causing mortality after 12 hr2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112626Insecticidal activity against fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA plus dsCPR-403-1 dsRNA and dsCyt-b5-4 dsRNA assessed as compound level per larva causing mortality after 24 hr2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112633Insecticidal activity against fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA plus dsCyt-b5-4 dsRNA assessed as compound level per larva causing mortality after 12 hr2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112613Potency index, ratio of LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with TE buffer to LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA after 12 hr2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112612Potency index, ratio of LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with TE buffer to LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA plus dsCPR-403-2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112623Insecticidal activity against fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA assessed as compound level per larva causing mortality after 36 hr2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112629Insecticidal activity against fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA assessed as compound level per larva causing mortality after 24 hr2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112641Insecticidal activity against fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA plus dsCPR-403-1 dsRNA and dsCyt-b5-4 dsRNA assessed as insect mortality at 4 to 16 ug/larva after 48 hr (fenvalerate alon2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112599Potency index, ratio of LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with TE buffer to LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA plus dsCPR-403-2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112635Insecticidal activity against fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA assessed as compound level per larva causing mortality after 12 hr2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112642Insecticidal activity against fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA plus dsCyt-b5-4 dsRNA assessed as insect mortality at 4 to 16 ug/larva after 48 hr (fenvalerate alone control = 29.1 to 502012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112605Potency index, ratio of LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with TE buffer to LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA plus dsCPR-403-2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112619Insecticidal activity against fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae without dsRNA injection assessed as compound level per larva causing mortality after 48 hr2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112621Insecticidal activity against fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA plus dsCyt-b5-4 dsRNA assessed as compound level per larva causing mortality after 36 hr2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112643Potency index, ratio of LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with TE buffer to LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA after 24 hr2012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
AID1112600Potency index, ratio of LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with TE buffer to LD50 for fenvalerate-resistant Helicoverpa armigera HDFR third-instar larvae injected with dsCYP6B7-313-1 dsRNA plus dsCyt-b5-42012Pest management science, Nov, Volume: 68, Issue:11
Knockdown of several components of cytochrome P450 enzyme systems by RNA interference enhances the susceptibility of Helicoverpa armigera to fenvalerate.
[information is prepared from bioassay data collected from National Library of Medicine (NLM), extracted Dec-2023]

Research

Studies (540)

TimeframeStudies, This Drug (%)All Drugs %
pre-1990107 (19.81)18.7374
1990's100 (18.52)18.2507
2000's156 (28.89)29.6817
2010's147 (27.22)24.3611
2020's30 (5.56)2.80
[information is prepared from research data collected from National Library of Medicine (NLM), extracted Dec-2023]

Market Indicators

Research Demand Index: 42.87

According to the monthly volume, diversity, and competition of internet searches for this compound, as well the volume and growth of publications, there is estimated to be strong demand-to-supply ratio for research on this compound.

MetricThis Compound (vs All)
Research Demand Index42.87 (24.57)
Research Supply Index6.34 (2.92)
Research Growth Index4.61 (4.65)
Search Engine Demand Index83.81 (26.88)
Search Engine Supply Index2.49 (0.95)

This Compound (42.87)

All Compounds (24.57)

Study Types

Publication TypeThis drug (%)All Drugs (%)
Trials2 (0.36%)5.53%
Reviews7 (1.24%)6.00%
Case Studies4 (0.71%)4.05%
Observational0 (0.00%)0.25%
Other550 (97.69%)84.16%
[information is prepared from research data collected from National Library of Medicine (NLM), extracted Dec-2023]