| 1 |
Ahn, S.J., Badenes-Perez, F.R., Reichelt, M., Svatos, A., Schneider, B., Gershenzon, J., Heckel, D.G., 2011. Metabolic detoxification of capsaicin by UDP glycosyltransferase in three Helicoverpa species. Arch. Insect Biochem. Physiol. 78, 104-118. |
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| 2 |
Ahn, S.J., Vogel, H., Heckel, D.G., 2012. Comparative analysis of the UDP-glycosyltransferase multigene family in insects. Insect Biochem. Mol. Biol. 42, 133-147. |
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| 3 |
Andersen, S.O., 2010. Insect cuticular sclerotization. Insect Biochem. Mol. Biol. 40, 166-178. |
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| 4 |
Regulation of metallothionein gene expression by oxidative stress and metal ions.  |
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| 5 |
Aucoin, R.R., Philogene, B.J.R., Arnason, J.T., 1991. Antioxidant enzymes as biochemical defenses against phototoxin-induced oxidative stress in three species of herbivorous Lepidoptera. Arch. Insect Biochem. Physiol. 16, 139-152. |
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| 6 |
Small heat shock proteins and α-crystallins: dynamic proteins with flexible functions.  |
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| 7 |
Changes in Composition of Phospholipid and Triacylglycerol Fatty Acids Prepared from Prediapausing and Diapausing Individuals of Dolycoris baccarum and Piezodorus lituratus (Heteroptera: Pentatomidae)  |
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| 8 |
Bouhin, H., Charles, J.-P., Quennedey, B., Courrent, A., Delachambre, J., 1992. Characterization of a cDNA clone encoding a glycine-rich cuticular protein of Tenebrio molitor: developmental expression and effect of a juvenile hormone analogue. Insect Mol. Biol. 1, 53-62. |
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| 9 |
Cai, Z., Chen, J., Cheng, J., Lin, T., 2017. Overexpression of three heat shock proteins protects Monochamus alternatus (Coleoptera: Cerambycidae) from thermal stress. J. Insect Sci. 17, 1-11 |
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| 10 |
Cha, W.H., Lee, D.-W., 2016. Identification of rapid cold hardeningrelated genes in the tobacco budworm, Helicoverpa assulta. J. Asia-Pacific Entomol. 19, 1061-1066. |
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| 11 |
Chung, H., Carroll, S.B., 2015. Wax, sex and the origin of species: Dual roles of insect cuticular hydrocarbons in adaptation and mating. Bioessays 37, 822-830. |
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| 12 |
Clark, M.S., Worland, M.R., 2008. How insects survive the cold: molecular mechanisms. J. Comp. Physiol. B 178, 917-933. |
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| 13 |
Temporal expression of heat shock genes during cold stress and recovery from chill coma in adult Drosophila melanogaster.  |
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| 14 |
Human longevity and aging: possible role of reactive oxygen species.  |
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| 15 |
Cold shock damage is due to lipid phase transitions in cell membranes: a demonstration using sperm as a model.  |
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| 16 |
Free radicals in the physiological control of cell function.  |
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| 17 |
Antifreeze and ice nucleator proteins in terrestrial arthropods.  |
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| 18 |
Identification of a Potent Antidiuretic Factor Acting on Beetle Malpighian Tubules  |
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| 19 |
Insect glutathione S-transferase: a review of comparative genomic studies and response to xenobiotics  |
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| 20 |
Insect P450 enzymes.  |
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| 21 |
Oxidants, oxidative stress and the biology of ageing.  |
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| 22 |
Real-time cell analysis and heat shock protein gene expression in the TcA Tribolium castaneum cell line in response to environmental stress conditions.  |
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| 23 |
Heat- and cold-shock responses and temperature adaptations in subtropical and temperate species of Drosophila  |
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| 24 |
Genetic pathways that regulate ageing in model organisms.  |
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| 25 |
Halliwell, B., 2007. Biochemistry of oxidative stress. Inflammation 35, 1147-1150. |
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| 26 |
Han, M.-W., Lee, J.-H., 1998. Survival and development of overwintering pupae of the oriental tobacco budworm, Helicoverpa assulta, from different locality. Korean J. Appl. Entomol. 37, 127-135. |
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| 27 |
The molecular basis of insecticide resistance in mosquitoes  |
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| 28 |
Insect Cuticle Sclerotization  |
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| 29 |
Eicosanoid-mediated immunity in insects  |
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| 30 |
Rapid Cold-Hardening of a Subtropical Species, Maruca vitrata (Lepidoptera: Crambidae), Accompanies Hypertrehalosemia by Upregulating Trehalose-6-Phosphate Synthase.  |
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| 31 |
Insect heat shock proteins during stress and diapause.  |
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| 32 |
Metallothionein protection of cadmium toxicity  |
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| 33 |
Molecular mechanisms of metabolic resistance to synthetic and natural xenobiotics.  |
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| 34 |
Superoxide dismutase activities in the midgut of Helicoverpa armigera larvae: identification and biochemical properties of a manganese superoxide dismutase  |
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| 35 |
Mitsumasu, K., Azuma, M., Niimi, T., Yamashita, O., Yaginuma, T., 2005. Membrane penetrating trehalase from silkworm Bombyx mori. Molecular cloning and localization in larval midgut. Insect Mol. Biol. 14, 501-508. |
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| 36 |
Sequestration and metabolism of host-plant flavonoids by the Pale Grass Blue, Pseudozizeeria maha (Lepidoptera : Lycaenidae)  |
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| 37 |
Biotechnology in Turkey: an overview.  |
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| 38 |
Physiological responses of insects to heat  |
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| 39 |
Rapid Cold Hardening of Thrips palmi (Thysanoptera: Thripidae)  |
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| 40 |
RNA interference of glycerol biosynthesis suppresses rapid cold hardening of the beet armyworm, Spodoptera exigua.  |
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| 41 |
Ranson, H., Hemingway, J., 2005. Glutathione transferases, in: Gilbert, L.I., Iatrou, K., Gill, S.S. (Eds.), Comprehensive molecular insect sciencepharmacology. Elsevier, Oxford, UK, pp. 383-389. |
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| 42 |
Robertson, H.M., Martos, R., Sears, C.R., Todres, E.Z., Walden, K.K.O., Nardi, J.B., 1999. Diversity of odourant binding proteins revealed by an expressed sequence tag project on male Manduca sexta moth antennae. Insect Mol. Biol. 8, 501-518. |
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| 43 |
The role of metallothionein in oxidative stress.  |
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| 44 |
Impact of global warming on insect behavior - A review  |
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| 45 |
Sang, W., Ma, W.H., Qiu, L., Zhu, Z.H., Lei, C.L., 2012. The involvement of heat shock protein and cytochrome P450 genes in response to UV-A exposure in the beetle Tribolium castaneum. J. Insect Physiol. 58, 830-836. |
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| 46 |
Clinical significance of metallothioneins in cell therapy and nanomedicine  |
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| 47 |
Insect trehalase: physiological significance and potential applications.  |
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| 48 |
Stanley, D.W., Kim, Y., 2014. Eicosanoid signaling in insects: from discovery to plant protection. Crit. Rev. Plant Sci. 33, 20-63. |
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| 49 |
The Role of Inducible Hsp70, and Other Heat Shock Proteins, in Adaptive Complex of Cold Tolerance of the Fruit Fly (Drosophila melanogaster).  |
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| 50 |
Sugumaran, M., 2010. Chemistry of cuticular sclerotization. Adv. Insect Physiol. 39, 151-209. |
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| 51 |
Takiguchi, M., Niimi, T., Su, Z.H., Yaginuma, T., 1992. Trehalase from male accessory gland of an insect, Tenebrio molitor. cDNA sequencing and developmental profile of the gene expression. Biochem. J. 288, 19-22. |
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| 52 |
An Efficient Antioxidant System in a Long-Lived Termite Queen  |
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| 53 |
Thompson, S.N., 2003. Trehalose-the insect 'blood' sugar. Adv. Insect Physiol. 31, 205-285. |
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| 54 |
If it's Tanned it Must be Dry: A Critique  |
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| 55 |
Preferential expression of biotransformation enzymes in the olfactory organs of Drosophila melanogaster, the antennae.  |
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| 56 |
Antioxidant defense systems of two lipidopteran insect cell lines  |
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| 57 |
Antioxidant enzymes in the honey bee, Apis mellifera  |
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| 58 |
Sequestration of Host-Plant-Derived Flavanoids by Lycaenid Butterfly Polyommatus icarus  |
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| 59 |
A simple method to estimate the potential increase in the number of generations under global warming in temperate zones  |
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| 60 |
Yang, C.Y., Jeon, H.Y., Cho, M.R., Kim, D.S., Yiem, M.S., 2004. Seasonal occurrence of oriental tobacco budworm (Lepidoptera: Noctuidae) male and chemical control at red pepper fields. Korean J. Appl. Entomol. 43, 49-54. |
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| 61 |
Ice Nucleation and Antinucleation in Nature  |
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| 62 |
Environmental stresses induce the expression of putative glycine‐rich insect cuticular protein genes in adult Leptinotarsa decemlineata (Say)  |
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