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                                                                                                果蠅高通量呼吸代謝測量技術

                                                                                                發布時間: 2021-07-27  點擊次數: 1845次

                                                                                                易科泰生態技術公司提供高通量果蠅呼吸代謝測量全面解決方案:

                                                                                                1.高分辨率、高通量果蠅能量代謝測量,8通道、16通道直至64通道供選配

                                                                                                2.高通量、高靈敏度果蠅采食行為在線監測技術方案

                                                                                                3.可分辨“品嘗"行為和“采食"行為及食性選擇行為

                                                                                                4.應用于生物醫學、健康醫學、神經科學、遺傳性、進化生態學、發育生物學等實驗研究

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                                                                                                部分參考文獻:

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                                                                                                Mallard, F., Nolte, V., Tobler, R. et al. A simple genetic basis of adaptation to a novel thermal environment results in complex metabolic rewiring in Drosophila. Genome Biol 19, 119 (2018). 

                                                                                                Matoo O B, Julick C R, Montooth K L. Genetic Variation for Ontogenetic Shifts in Metabolism Underlies Physiological Homeostasis in Drosophila[J]. Genetics, 2019, 212(2).

                                                                                                May C E, Vaziri A, Lin Y Q, et al. High dietary sugar reshapes sweet taste to promote feeding behavior in Drosophila melanogaster[J]. Cell reports, 2019, 27(6): 1675-1685. e7.

                                                                                                Mishra P, Yang S E, Montgomery A B, et al. The fly liquid-food electroshock assay (FLEA) suggests opposite roles for neuropeptide F in avoidance of bitterness and shock[J]. BMC Biology, 2021, 19(1).

                                                                                                Mothersill C, Vo N, Lemon J, et al. The Phenotypic and Transcriptomic Response of the Caenorhabditis elegans Nematode to Background and Below-Background Radiation Levels[J]. Frontiers in Public Health, 2020, 8:581796.

                                                                                                Neville K E, Bosse T L, Klekos M, et al. A novel ex vivo method for measuring whole brain metabolism in model systems[J]. Journal of Neuroscience Methods, 2018, 296:32-43.

                                                                                                Rajpurohit S, V Vrkoslav, Hanus R, et al. Post-eclosion temperature effects on insect cuticular hydrocarbon profiles[J]. Ecology and Evolution, 2020.

                                                                                                Schilder R J, Raynor M. Molecular plasticity and functional enhancements of leg muscles in response to hypergravity in the fruit fly Drosophila melanogaster[J]. Journal of Experimental Biology, 2017, 220(19):3508-3518.

                                                                                                Suh, G., Wong, A., Hergarden, A. et al. A single population of olfactory sensory neurons mediates an innate avoidance behaviour in Drosophila. Nature 431, 854–859 (2004). 

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