Acta Laser Biology Sinica, Volume. 29, Issue 2, 106(2020)
Application of Fluorescence Competitive Binding Technology in Detection of the Binding Ability of Insects Olfactory Related Proteins
[3] [3] BRITO N F, MOREIRA M F, MELO A C. A look inside odorant-binding proteins in insect chemoreception[J]. Journal of Insect Physiolog, 2016, 95(12): 51-65.
[4] [4] LEAL W S. Odorant reception in insects:roles of receptors binding proteins, and degrading enzymes[J]. Annual Review of Entomology, 2013, 58(1): 373-391.
[6] [6] LIU N Y, YANG F, YANG K, et al. Two subclasses of odorant-binding proteins in Spodoptera exigua display structural conservation and functional divergence[J]. Insect Molecular Biology, 2014, 24(2): 167-182.
[8] [8] CAMPANACCI V, KRIEGER J, BETTE S, et al. Revisiting the specificity of Mamestra brassicae and Antheraea polyphemus pheromone-binding proteins with a fluorescence binding assay[J]. Journal of Biological Chemistry, 2001, 276(23): 20078-20084.
[9] [9] WOJTASEK H, LEAL W S. Conformational change in the pheromone-binding protein from Bombyx mori induced by pH and by interaction with membranes[J]. Journal of Biological Chemistry, 1999, 274(43): 30950-30956.
[10] [10] SWANSON J A, TORTO B, KELLS S A, et al. Odorants that induce hygienic behavior in honeybees:identification of volatile compounds in chalkbrood-infected honeybee larvae[J]. Journal of Chemical Ecology, 2009, 35(9): 1108-1116.
[13] [13] VOGT R G, RIDDIFORD L M. Pheromone binding and inactivation by moth antennae[J]. Nature, 1981, 293(5828): 161-163.
[15] [15] PELOSI P, IOVINELLA I, FELICIOLI A, et al. Soluble proteins of chemical communication:an overview across arthropods[J]. Frontiers in Physiology, 2014, 5(8): 320-332.
[17] [17] FAN J, FRANCIS F, LIU Y, et al. An overview of odorant-binding protein functions in insect peripheral olfactory reception[J]. Genetics and Molecular Research, 2011, 10(4): 3056-3069.
[19] [19] ZHAO H X, ZENG X N, LIANG Q, et al. Study of the obp5 gene in Apis mellifera ligustica and Apis cerana cerana[J]. Genetics and Molecular Research, 2015, 14(2): 6482-6494.
[20] [20] SONG X M, ZHANG LY, FU X B, et al. Various bee pheromones binding affinity, exclusive chemosensillar localization, and key amino acid sites reveal the distinctive characteristics of odorant-binding protein 11 in the eastern honey bee, Apis cerana[J]. Frontiers in Physiology, 2018, 9(4): 422-436.
[24] [24] QUAN L F, QIU G S, ZHANG H J, et al. Sublethal concentration of beta-cypermethrin influences fecundity and mating behavior of Carposina sasakii (Lepidoptera:Carposinidae) adults[J]. Journal of Economic Entomology, 2016, 109(5): 2196-2204.
[25] [25] TIAN Z Q, QIU G S, LI Y Y, et al. Molecular characterization and functional analysis of pheromone binding proteins and general odorant binding proteins from Carposina sasakii Matsumura (Lepidoptera:Carposinidae)[J]. Pest Management Science, 2019, 75(1): 234-245.
[26] [26] SUN L, LI Y, ZHANG Z, et al. Expression patterns and ligand binding characterization of Plus-C odorant-binding protein 14 from Adelphocoris lineolatus (Goeze)[J]. Comparative Biochemistry and Physiology Part B:Biochemistry and Molecular Biology, 2019, 227(1): 75-82.
[27] [27] CHEN G L, PAN Y F, MA Y F, et al. Binding affinity characterization of an antennae-enriched chemosensory protein from the white-backed planthopper, Sogatella furcifera (Horváth), with host plant volatiles[J]. Pesticide Biochemistry and Physiology, 2018, 152(11): 1-7.
[28] [28] TANG B, TAI S, DAI W, et al. Expression and functional analysis of two odorant-binding proteins from Bradysia odoriphaga (Diptera:Sciaridae)[J]. Journal of Agricultural and Food Chemistry, 2019, 67(13): 3565-3574.
[35] [35] WANNER K W, WILLIS L G, THEILMANN D A, et al. Analysis of the insect OS-D-like gene family[J]. Journal of Chemical Ecology, 2004, 30(5): 889-911.
[36] [36] HE Y Q, FENG B, GUO Q S, et al. Age influences the olfactory profiles of the migratory oriental armyworm Mythimna separate at the molecular level[J]. BMC Genomics, 2017, 18(1): 32.
[38] [38] PELOSI P, IOVINELLA I, ZHU J, et al. Beyond chemoreception:diverse tasks of soluble olfactory proteins in insects[J]. Biological Reviews of the Cambridge Philosophical Society, 2017, 93(1): 184-200.
[39] [39] GIFFORD C, GILPIN D, O’BRIEN C. Identification and expression pattern of the chemosensory protein gene family in the silkworm, Bombyx mori[J]. Insect Biochemistry and Molecular Biology, 2007, 37(3): 266-277.
[40] [40] ZHANG Z K, LEI Z R. Identification, expression profiling and fluorescence-based binding assays of a chemosensory protein gene from the western flower thrips, Frankliniella occidentalis[J]. PLoS One, 2015, 10(1): e0117726.
[41] [41] ZHAO H, ZHAO W, GAO P, et al. Sequence and expression characterization of an OBP1 gene in the Asian honeybee, Apis cerana cerana (Hymenoptera:Apidae)[J]. Applied Entomology and Zoology, 2014, 49(1): 189-196.
[42] [42] LI H, TAN J, SONG X, et al. Sublethal doses of neonicotinoid imidacloprid can interact with honey bee chemosensory protein 1 (CSP1) and inhibit its function[J]. Biochemical and Biophysical Research Communications, 2017, 486(2): 391-397.
[43] [43] HE P, LI Z Q, ZHANG Y F, et al. Identification of odorant-binding and chemosensory protein genes and the ligand affinity of two of the encoded proteins suggest a complex olfactory perception system in Periplaneta americana[J]. Insect Molecular Biology, 2017, 26(6): 687-701.
[44] [44] YANEELA Y, WARIS M I, MUHAMMAD T U Q, et al. Functional analysis of the chemosensory protein MsepCSP8 from the oriental armyworm Mythimna separata[J]. Frontiers in Physiology, 2018, 9(7): 872-886.
[45] [45] ZHANG G F, MENG X Q, MIN L, et al. Rapid diagnosis of the invasive species, Frankliniella occidentalis (Pergande):a species-specific COI marker[J]. Journal of Applied Entomology, 2012, 136(6): 410-420.
[47] [47] SUN H Y,GUAN L, FENG H L, et al. Functional characterization of chemosensory proteins in the scarab beetle, Holotrichia oblita Faldermann (Coleoptera:Scarabaeida)[J]. PLoS One, 2014, 9(9): e107059.
[49] [49] KHUHRO S A, YAN Q, LIAO H, et al. Expression profile and functional characterization suggesting the involvement of three chemosensory proteins in perception of host plant volatiles in Chilo suppressalis (Lepidoptera:Pyralidae)[J]. Journal of Insect Science, 2018, 18(5): 1-8.
Get Citation
Copy Citation Text
PENG Zhu, HUANG Li, ZHAO Huiting. Application of Fluorescence Competitive Binding Technology in Detection of the Binding Ability of Insects Olfactory Related Proteins[J]. Acta Laser Biology Sinica, 2020, 29(2): 106
Category:
Received: Sep. 10, 2019
Accepted: --
Published Online: Jan. 27, 2021
The Author Email: Huiting ZHAO (zhaohting@126.com)