|
党英侨, 王小艺, 张彦龙, 等. 白蜡窄吉丁成虫对短时高温的生理响应. 林业科学, 2023, 59 (2): 112- 120.
|
|
Dang Y Q, Wang X Y, Zhang Y L, et al. Physiological responses of Agrilus planipennis adults to short-time high-temperature conditions. Scientia Silvae Sinicae, 2023, 59 (2): 112- 120.
|
|
商 暾, 杨茂发, 于晓飞, 等. 草地贪夜蛾CYP4G15和CYP4L4的时空表达及其对高低温胁迫的响应. 应用昆虫学报, 2021, 58 (3): 664- 671.
|
|
Shang T, Yang M F, Yu X F, et al. Spatiotemporal expression of CYP4G15 and CYP4L4 and their response to high and low temperature stress in Spodoptera frugiperda. Chinese Journal of Applied Entomology, 2021, 58 (3): 664- 671.
|
|
石 琦. 2016. 华山松大小蠹热激蛋白基因克隆与定量表达. 杨凌: 西北农林科技大学.
|
|
Shi Q. 2016. Cloning and expression of heat shock protein genes (Hsps) from Chinese white pine beetle (Dendroctonus armandi). Yangling: Northwest A&F University. [in Chinese]
|
|
王晓琪, 孙丽丽, 殷晶晶, 等. RNA干扰分析神经肽F基因及其受体对美国白蛾取食、生长发育和生殖的影响. 林业科学, 2022, 58 (12): 52- 61.
|
|
Wang X Q, Sun L L, Yin J J, et al. Effects of neuropeptide F and its receptor on feeding, growth and reproductive of Hyphantria cunea (Lepidoptera: Arctiidae) with RNAi technique. Scientia Silvae Sinicae, 2022, 58 (12): 52- 61.
|
|
王 娟, 陈 辉. 华山松大小蠹冷休克结合蛋白的鉴定与表达. 林业科学, 2018, 54 (4): 58- 66.
|
|
Wang J. Chen H. Identification and expression of cold shock domain-containing protein gene in Dendroctonus armandi. Scientia Silvae Sinicae, 2018, 54 (4): 58- 66.
|
|
Brandon M C, Pennington J E, Isoe J, et al. TOR signaling is required for amino acid stimulation of early trypsin protein synthesis in the midgut of Aedes aegypti mosquitoes. Insect Biochemistry and Molecular Biology, 2008, 38 (10): 916- 922..
doi: 10.1016/j.ibmb.2008.07.003
|
|
Chen H, Tang M. Spatial and temporal dynamics of bark beetles in Chinese white pine in Qinling Mountains of Shaanxi Province, China. Environmental Entomology, 2007, 36 (5): 1124- 1130.
doi: 10.1093/ee/36.5.1124
|
|
Colombani J, Raisin S, Pantalacci S, et al. A nutrient sensor mechanism controls Drosophila growth. Cell, 2003, 114 (6): 739- 749.
doi: 10.1016/S0092-8674(03)00713-X
|
|
Dai L L, Ma M Y, Wang C Y, et al. Cytochrome P450s from the Chinese white pine beetle, Dendroctonus armandi (Curculionidae: Scolytinae): Expression profiles of different stages and responses to host allelochemicals. Insect Biochemistry and Molecular Biology, 2015, 65, 35- 46.
doi: 10.1016/j.ibmb.2015.08.004
|
|
Dai L L, Wang C Y, Zhang X Y, et al. Two CYP4 genes of the Chinese white pine beetle, Dendroctonus armandi (Curculionidae: Scolytinae), and their transcript levels under different development stages and treatments. Insect Molecular Biology, 2014, 23 (5): 598- 610.
doi: 10.1111/imb.12108
|
|
Fu D Y, Dai L L, Gao H M, et al. Identification, expression patterns and RNA interference of aquaporins in Dendroctonus armandi (Coleoptera: Scolytinae) larvae during overwintering. Frontiers in Physiology, 2019, 10, 967.
doi: 10.3389/fphys.2019.00967
|
|
Fu D Y, Dai L L, Ning H, et al. Effects of cold stress on metabolic regulation in the overwintering larvae of the Chinese white pine beetle, Dendroctonus armandi. Entomologia Experimentalis et Applicata, 2020, 168 (11): 836- 850.
doi: 10.1111/eea.12991
|
|
Fu D Y, Sun Y Y, Gao H M, et al. Identification and functional characterization of antifreeze protein and its mutants in Dendroctonus armandi (Coleoptera: Curculionidae: Scolytinae) larvae under cold stress. Environmental Entomology, 2022, 51 (1): 167- 181.
doi: 10.1093/ee/nvab134
|
|
Hietakangas V, Cohen S M. Regulation of tissue growth through nutrient sensing. Annual Review of Genetics, 2009, 43, 389- 410.
doi: 10.1146/annurev-genet-102108-134815
|
|
Kunte A S, Matthews K A, Rawson R B. Fatty acid auxotrophy in Drosophila larvae lacking SREBP. Cell Metabolism, 2006, 3 (6): 439- 448.
doi: 10.1016/j.cmet.2006.04.011
|
|
Laplante M, Sabatini D M. mTOR signaling in growth control and disease. Cell, 2012, 149 (2): 274- 293.
doi: 10.1016/j.cell.2012.03.017
|
|
Li Z Q, Jiang J H, Chen Y Z, et al. PDP1 regulates energy metabolism through the IIS-TOR pathway in the red flour beetle, Tribolium castaneum. Archives of Insect Biochemistry and Physiology, 2014, 85 (3): 127- 136.
doi: 10.1002/arch.21146
|
|
Livak K J, Schmittgen T D. Analysis of relative gene expression data using real-time quantitative PCR and the 2–ΔΔCt method. Methods, 2001, 25 (4): 402- 408.
doi: 10.1006/meth.2001.1262
|
|
Ma G, Ma C S. Effect of acclimation on heat-escape temperatures of two aphid species: Implications for estimating behavioral response of insects to climate warming. Journal of Insect Physiology, 2012, 58 (3): 303- 309.
doi: 10.1016/j.jinsphys.2011.09.003
|
|
Ma R Y, Hao S G, Kong W N, et al. Cold hardiness as a factor for assessing the potential distribution of the Japanese pine sawyer Monochamus alternatus (Coleoptera: Cerambycidae) in China. Annals of Forest Science, 2006, 63 (5): 449- 456.
doi: 10.1051/forest:2006025
|
|
Miki T, Shinohara T, Chafino S, et al. Photoperiod and temperature separately regulate nymphal development through JH and insulin/TOR signaling pathways in an insect. Proceedings of the National Academy of Sciences of the United States of America, 2020, 117 (10): 5525- 5531.
|
|
Oldham S, Montagne J, Radimerski T, et al. Genetic and biochemical characterization of dTOR, the Drosophila homolog of the target of rapamycin. Genes and Development, 2000, 14 (21): 2689- 2694.
doi: 10.1101/gad.845700
|
|
Rachmanto D, Wagiman F X, Indarti S. Optimalization of temperature to control Araecerus fasciculatus de geer (Coleoptera: Anthribidae) on nutmeg. Jurnal Perlindungan Tanaman Indonesia, 2018, 22 (1): 33- 42.
doi: 10.22146/jpti.26014
|
|
Scott C R, Schuldiner O, Neufeld P T. Role and regulation of starvation-induced autophagy in the Drosophila fat body. Developmental Cell, 2004, 7 (2): 167- 178.
doi: 10.1016/j.devcel.2004.07.009
|
|
Willot Q, Loos B, Terblanche J S, et al. Exploring the connection between autophagy and heat-stress tolerance in Drosophila melanogaster. Proceedings of the Royal Society B: Biological Sciences, 2023, 290 (2006): 20231305.
doi: 10.1098/rspb.2023.1305
|
|
Yang Y X, Xu S X, Xu J X, et al. Adaptive evolution of mitochondrial energy metabolism genes associated with increased energy demand in flying insects. PLoS One, 2014, 9 (6): e99120.
doi: 10.1371/journal.pone.0099120
|
|
Zhang H B, Stallock J P, Ng J C, et al. Regulation of cellular growth by the Drosophila target of rapamycin dTOR. Genes and Development, 2000, 14 (21): 2712- 2724.
doi: 10.1101/gad.835000
|
|
Zhang J, Liu S N, Li Y, et al. Nutrient status alters developmental fates via a switch in mitochondrial homeodynamics. Nature Communications, 2025, 16 (1): 1258.
doi: 10.1038/s41467-025-56528-z
|