Results 211 to 220 of about 88,696 (242)
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Thiosemicarbazones as Aedes aegypti larvicidal

European Journal of Medicinal Chemistry, 2015
A set of aryl- and phenoxymethyl-(thio)semicarbazones were synthetized, characterized and biologically evaluated against the larvae of Aedes aegypti (A. aegypti), the vector responsible for diseases like Dengue and Yellow Fever. (Q)SAR studies were useful for predicting the activities of the compounds not included to create the QSAR model as well as to
João Bosco P. da Silva   +17 more
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TRISOMY IN AEDES AEGYPTI

Canadian Journal of Genetics and Cytology, 1975
A trisomic (2n = 6 + 1) pupa of the yellow fever mosquito Aedes aegypti has been found. The trisomy involved chromosome 3 which is intermediate in size between 1 and 2. The extra chromosome formed a univalent or a trivalent during meiosis.
S, Ved Brat, K S, Rai
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Genetics of an esterase in Aedes aegypti

Biochemical Genetics, 1969
Zymograms of single individuals of Aedes aegypti were obtained by means of starch gel electrophoresis, using alpha-naphthyl acetate as substrate. Inbred lines gave consistently homogeneous patterns; earlier results from random-breeding laboratory strains had shown considerable variability. Six distinct bands were observed.
A M, Trebatoski, G B, Craig
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Insemination in Aedes aegypti and Aedes albopictus

Cold Spring Harbor Protocols, 2022
Aedes mosquitoes are the vectors of several arboviruses that cause human disease. A better understanding of their reproduction helps to improve their management and contributes insights into the fundamental biology of mosquitoes. During mating, inseminated mosquito females receive seminal fluids and sperm from males that they then store in the ...
Dhwani, Parsana   +2 more
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Measurement of Aedes aegypti Populations

Journal of Economic Entomology, 1967
The characteristics of the possible indices of the yellowfever mosquito, Aedes aegypti (L.), are examined. While all 4 indices give similar population values, the “premises index” (the percent of the inspected premises that are infested), is considered the best because it has less variation and varies linearly with the infestation.
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Mapping the spatial distribution of Aedes aegypti and Aedes albopictus

Acta Tropica, 2018
Mosquito-borne infectious diseases, such as Rift Valley fever, Dengue, Chikungunya and Zika, have caused mass human death with the transnational expansion fueled by economic globalization. Simulating the distribution of the disease vectors is of great importance in formulating public health planning and disease control strategies. In the present study,
Fangyu, Ding   +4 more
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On a model for Aedes Aegypti

AIP Conference Proceedings, 2012
We revisit some results on Aedes Aegypti due to ourself. In particular a new model is discussed from the point of view of symmetry methods.
I. L. Freire, M. Torrisi
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Aedes aegypti egg counting system

2011 Annual International Conference of the IEEE Engineering in Medicine and Biology Society, 2011
New monitoring methods of dengue vector and evaluation of public policies on dengue control are major concerns for several tropical countries. Drawback on monitoring methods base on oviposition surveys are the counting process of mosquito eggs, information store and analysis.
Marilú Gomes Netto Monte da Silva   +2 more
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Aedes aegypti ferritin.

European journal of biochemistry, 2003
Diseases transmitted by hematophagous (blood-feeding) insects are responsible for millions of human deaths worldwide. In hematophagous insects, the blood meal is important for regulating egg maturation. Although a high concentration of iron is toxic for most organisms, hematophagous insects seem unaffected by the iron load in a blood meal. One means by
Dawn L, Geiser   +4 more
openaire   +1 more source

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