Crossref Citations
This article has been cited by the following publications. This list is generated based on data provided by
Crossref.
Krüger, Paul
1933.
Vergleichender Fermentstoffwechsel der niederen Tiere.
Ergebnisse der Physiologie und Experimentellen Pharmakologie,
Vol. 35,
Issue. 1,
p.
538.
Krüger, Paul
1933.
Vergleichender Fermentstoffwechsel der niederen Tiere.
Ergebnisse der Physiologie und Experimentellen Pharmakologie,
Vol. 35,
Issue. 1,
p.
538.
Steinhaus, Edward A.
1940.
THE MICROBIOLOGY OF INSECTS.
Bacteriological Reviews,
Vol. 4,
Issue. 1,
p.
17.
House, H.L.
1958.
Nutritional requirements of insects associated with animal parasitism.
Experimental Parasitology,
Vol. 7,
Issue. 6,
p.
555.
1963.
The Physiology of Mosquitoes.
p.
317.
Thiery, I
Nicolas, L
Rippka, R
and
Tandeau de Marsac, N
1991.
Selection of cyanobacteria isolated from mosquito breeding sites as a potential food source for mosquito larvae.
Applied and Environmental Microbiology,
Vol. 57,
Issue. 5,
p.
1354.
Sangthongpitag, K.
Delaney, S. F.
and
Rogers, P. L.
1996.
Evaluation of four fresh-water unicellular cyanobacteria as potential hosts for mosquitocidal toxins.
Biotechnology Letters,
Vol. 18,
Issue. 2,
p.
175.
Marten, Gerald G.
2007.
LARVICIDAL ALGAE.
Journal of the American Mosquito Control Association,
Vol. 23,
Issue. sp2,
p.
177.
Hall-Mendelin, Sonja
Allcock, Richard
Kresoje, Nina
van den Hurk, Andrew F.
Warrilow, David
and
Coffey, Lark L.
2013.
Detection of Arboviruses and Other Micro-Organisms in Experimentally Infected Mosquitoes Using Massively Parallel Sequencing.
PLoS ONE,
Vol. 8,
Issue. 2,
p.
e58026.
Díaz-Nieto, Leonardo M.
D´Alessio, Cecilia
Perotti, M. Alejandra
Berón, Corina M.
and
Terenius, Olle
2016.
Culex pipiens Development Is Greatly Influenced by Native Bacteria and Exogenous Yeast.
PLOS ONE,
Vol. 11,
Issue. 4,
p.
e0153133.
Weger-Lucarelli, James
Auerswald, Heidi
Vignuzzi, Marco
Dussart, Phillipe
Karlsson, Erik A.
and
Messer, William B.
2018.
Taking a bite out of nutrition and arbovirus infection.
PLOS Neglected Tropical Diseases,
Vol. 12,
Issue. 3,
p.
e0006247.
Steinwascher, Kurt
and
Moreira, Luciano Andrade
2018.
Competition among Aedes aegypti larvae.
PLOS ONE,
Vol. 13,
Issue. 11,
p.
e0202455.
Amarasinghe, L. D.
and
Ranasinghe, H. A. K.
2019.
Diversity and Species Composition of Microbiota Associated with Mosquito Breeding Habitats: A Study from Kurunegala District in Sri Lanka.
BioMed Research International,
Vol. 2019,
Issue. ,
p.
1.
Sontowski, Rebekka
and
van Dam, Nicole M.
2020.
Functional Variation in Dipteran Gut Bacterial Communities in Relation to Their Diet, Life Cycle Stage and Habitat.
Insects,
Vol. 11,
Issue. 8,
p.
543.
Ranasinghe, H. A. K.
and
Amarasinghe, L. D.
2020.
Naturally Occurring Microbiota Associated with Mosquito Breeding Habitats and Potential Parasitic Species against Mosquito Larvae: A Study from Gampaha District, Sri Lanka.
BioMed Research International,
Vol. 2020,
Issue. ,
p.
1.
Wang, Haiyang
Wang, Yang
Cheng, Peng
Wang, Huaiwei
Wang, Haifang
Liu, Hongmei
Zhang, Chongxing
and
Gong, Maoqing
2021.
The Larval Density of Mosquitos (Diptera: Culicidae) in Jiaxiang County, Shandong Province, China: Influence of Bacterial Diversity, Richness, and Physicochemical Factors.
Frontiers in Ecology and Evolution,
Vol. 9,
Issue. ,
Sy, Nathan D.
Cao, Meixian
Hall, Matthew
Kaur, Parminder
Shi, Qingyang
Xiong, Yaxin
and
Gan, Jay
2024.
Distribution of pyrethroid insecticides in urban storm drain structures: Catch basins, open channels, and outfalls.
Environmental Pollution,
Vol. 340,
Issue. ,
p.
122733.