Effect of Light Availability on the Interaction between Maritime Pine and the Pine Weevil: Light Drives Insect Feeding Behavior But Also the Defensive Capabilities of the Host
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[1] I. Baldwin,et al. Herbivory-induced jasmonates constrain plant sugar accumulation and growth by antagonizing gibberellin signaling and not by promoting secondary metabolite production. , 2017, The New phytologist.
[2] A. Borg-Karlson,et al. Induced defenses change the chemical composition of pine seedlings and influence meal properties of the pine weevil Hylobius abietis. , 2016, Phytochemistry.
[3] R. Zas,et al. Carbon starvation by light deprivation does not constrain the ability of young pines to produce induced chemical defences in response to a bark-chewing herbivore , 2016 .
[4] N. Björklund,et al. Effects of jasmonate-induced resistance in conifer plants on the feeding behaviour of a bark-chewing insect, Hylobius abietis , 2016, Journal of Pest Science.
[5] Wolfram Weckwerth,et al. Exploring natural variation of Pinus pinaster Aiton using metabolomics: Is it possible to identify the region of origin of a pine from its metabolites? , 2016, Molecular ecology.
[6] R. Kobe,et al. Drought and shade deplete nonstructural carbohydrate reserves in seedlings of five temperate tree species , 2015, Ecology and evolution.
[7] D. Rigo,et al. Assessing the potential distribution of insect pests: case studies on large pine weevil (Hylobius abietis L) and horse‐chestnut leaf miner (Cameraria ohridella) under present and future climate conditions in European forests , 2015 .
[8] M. Vasconcelos,et al. Intraspecific variation of anatomical and chemical defensive traits in Maritime pine (Pinus pinaster) as factors in susceptibility to the pinewood nematode (Bursaphelenchus xylophilus) , 2015, Trees.
[9] M. Mottet,et al. High genetic variation and moderate to high values for genetic parameters of Picea abies resistance to Pissodes strobi , 2015, Tree Genetics & Genomes.
[10] T. Bruce. Interplay between insects and plants: dynamic and complex interactions that have coevolved over millions of years but act in milliseconds. , 2015, Journal of experimental botany.
[11] J. Majada,et al. Adaptive Potential of Maritime Pine (Pinus pinaster) Populations to the Emerging Pitch Canker Pathogen, Fusarium circinatum , 2014, PloS one.
[12] N. Björklund,et al. Diel behaviour and time budget of the adult pine weevil Hylobius abietis , 2014 .
[13] C. Ballaré. Light regulation of plant defense. , 2014, Annual review of plant biology.
[14] N. Björklund,et al. Exploiting jasmonate-induced responses for field protection of conifer seedlings against a major forest pest, Hylobius abietis , 2014 .
[15] J. Oleksyn,et al. Season and light affect constitutive defenses of understory shrub species against folivorous insects , 2013 .
[16] A. Borg-Karlson,et al. Inducibility of chemical defences by two chewing insect herbivores in pine trees is specific to targeted plant tissue, particular herbivore and defensive trait. , 2013, Phytochemistry.
[17] D. Neale,et al. Adaptive evolution of Mediterranean pines. , 2013, Molecular phylogenetics and evolution.
[18] J. Schultz,et al. Flexible resource allocation during plant defense responses , 2013, Front. Plant Sci..
[19] J. Hua. Modulation of plant immunity by light, circadian rhythm, and temperature. , 2013, Current opinion in plant biology.
[20] R. Pierik,et al. Canopy light cues affect emission of constitutive and methyl jasmonate-induced volatile organic compounds in Arabidopsis thaliana , 2013, The New phytologist.
[21] R. Pierik,et al. Perception of low red:far-red ratio compromises both salicylic acid- and jasmonic acid-dependent pathogen defences in Arabidopsis. , 2013, The Plant journal : for cell and molecular biology.
[22] X. Moreira,et al. Additive genetic variation in resistance traits of an exotic pine species: little evidence for constraints on evolution of resistance against native herbivores , 2012, Heredity.
[23] J. Pannell,et al. Genetic differentiation for size at first reproduction through male versus female functions in the widespread Mediterranean tree Pinus pinaster. , 2012, Annals of botany.
[24] C. Ballaré,et al. Canopy Light and Plant Health1 , 2012, Plant Physiology.
[25] W. Boland,et al. Plant defense against herbivores: chemical aspects. , 2012, Annual review of plant biology.
[26] J. Peñuelas,et al. Effects of phosphorus availability and genetic variation of leaf terpene content and emission rate in Pinus pinaster seedlings susceptible and resistant to the pine weevil, Hylobius abietis. , 2012, Plant biology.
[27] C. Ballaré,et al. Low Red/Far-Red Ratios Reduce Arabidopsis Resistance to Botrytis cinerea and Jasmonate Responses via a COI1-JAZ10-Dependent, Salicylic Acid-Independent Mechanism1[C][W][OA] , 2012, Plant Physiology.
[28] Michael F. Covington,et al. Arabidopsis synchronizes jasmonate-mediated defense with insect circadian behavior , 2012, Proceedings of the National Academy of Sciences.
[29] G. Noctor,et al. Photosynthesis, photorespiration, and light signalling in defence responses. , 2012, Journal of experimental botany.
[30] C. Hellqvist,et al. Regeneration of European boreal forests: Effectiveness of measures against seedling mortality caused by the pine weevil Hylobius abietis , 2011 .
[31] X. Moreira,et al. Tolerance and induced resistance in a native and an exotic pine species: relevant traits for invasion ecology , 2011 .
[32] J. Manners,et al. The interplay between light and jasmonate signalling during defence and development. , 2011, Journal of experimental botany.
[33] W. J. Calder,et al. Conifer expansion reduces the competitive ability and herbivore defense of aspen by modifying light environment and soil chemistry. , 2011, Tree physiology.
[34] R. Karban. The ecology and evolution of induced resistance against herbivores , 2011 .
[35] X. Moreira,et al. Resistance and response of Pinus pinaster seedlings to Hylobius abietis after induction with methyl jasmonate , 2011, Plant Ecology.
[36] C. Kost,et al. Regulation of extrafloral nectar secretion by jasmonates in lima bean is light dependent , 2010, Proceedings of the National Academy of Sciences.
[37] M. Heil,et al. Costs and benefits of induced resistance to herbivores and pathogens in plants , 2010 .
[38] X. Moreira,et al. Defensive responses of Pinus pinaster seedlings to exogenous application of methyl jasmonate: concentration effect and systemic response. , 2009 .
[39] C. Ballaré. Illuminated behaviour: phytochrome as a key regulator of light foraging and plant anti-herbivore defence. , 2009, Plant, cell & environment.
[40] C. Ballaré,et al. Ecological modulation of plant defense via phytochrome control of jasmonate sensitivity , 2009, Proceedings of the National Academy of Sciences.
[41] J. Zeier,et al. Light Regulation and Daytime Dependency of Inducible Plant Defenses in Arabidopsis: Phytochrome Signaling Controls Systemic Acquired Resistance Rather Than Local Defense1 , 2008, Plant Physiology.
[42] John C. Murphy,et al. Evaluation of genetic variation of attack and resistance in lodgepole pine in the early stages of a mountain pine beetle outbreak , 2008, Tree Genetics & Genomes.
[43] X. Moreira,et al. Effect of fertilization and genetic variation on susceptibility of Pinus radiata seedlings to Hylobius abietis damage , 2008 .
[44] E. Dreyer,et al. Do trees use reserve or newly assimilated carbon for their defense reactions? A 13C labeling approach with young Scots pines inoculated with a bark-beetle-associated fungus (Ophiostoma brunneo ciliatum) , 2007, Annals of Forest Science.
[45] N. Paul,et al. Seduced by the dark side: integrating molecular and ecological perspectives on the influence of light on plant defence against pests and pathogens. , 2006, The New phytologist.
[46] J. Takabayashi,et al. Plant Volatiles, Rather than Light, Determine the Nocturnal Behavior of a Caterpillar , 2006, PLoS biology.
[47] M. Cortijo,et al. Differentiation among five Spanish Pinus pinaster provenances based on its oleoresin terpenic composition , 2005 .
[48] J. Schultz,et al. Carbohydrate translocation determines the phenolic content of Populus foliage: a test of the sink-source model of plant defense. , 2004, The New phytologist.
[49] M. Pszczolkowski,et al. Circadian dynamics of locomotor activity and deltamethrin susceptibility in the pine weevil,Hylobius abietis , 1999, Phytoparasitica.
[50] J. Denis,et al. Performance of Pinus pinaster provenances in Spain: interpretation of the genotype by environment interaction , 1997 .
[51] R. Croteau,et al. Induced oleoresin biosynthesis in grand fir as a defense against bark beetles. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[52] John H. Loughrin,et al. Diurnal cycle of emission of induced volatile terpenoids by herbivore-injured cotton plant. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[53] R. Croteau,et al. Oleoresinosis in Grand Fir (Abies grandis) Saplings and Mature Trees (Modulation of this Wound Response by Light and Water Stresses) , 1993, Plant physiology.
[54] C. Bernard-Dagan,et al. Effects of light on terpene hydrocarbon synthesis in Pinus pinaster , 1980 .
[55] J. Hansen,et al. Percolation of starch and soluble carbohydrates from plant tissue for quantitative determination with anthrone. , 1975, Analytical biochemistry.
[56] Lara Vanakker,et al. Delivering Sitka spruce with resistance against white pine weevil in British Columbia, Canada , 2013 .
[57] U. Schurr,et al. De novo biosynthesis of defense root exudates in response to Fusarium attack in barley. , 2010, New Phytologist.
[58] A. Agrawal,et al. Phenotypic plasticity to light competition and herbivory in Chenopodium album (Chenopodiaceae). , 2005, American journal of botany.
[59] Junji Takabayashi,et al. Effects of Light on the Tritrophic Interaction Between Kidney Bean Plants, Two-Spotted Spider Mites and Predatory Mites, Amblyseius Womersleyi (Acari: Phytoseiidae) , 2004, Experimental & Applied Acarology.
[60] L. Dill,et al. The scent of death: Chemosensory assessment of predation risk by prey animals , 1998 .