Impact of the dual defence system of Plantago lanceolata (Plantaginaceae) on performance, nutrient utilisation and feeding choice behaviour of Amata mogadorensis larvae (Lepidoptera, Erebidae)

Pankoke H, Gehring R, Müller C (2015)
Journal of Insect Physiology 82: 99-108.

Zeitschriftenaufsatz | Veröffentlicht | Englisch
 
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Autor*in
Erscheinungsjahr
2015
Zeitschriftentitel
Journal of Insect Physiology
Band
82
Seite(n)
99-108
ISSN
00221910
eISSN
1879-1611
Page URI
https://pub.uni-bielefeld.de/record/2785973

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Pankoke H, Gehring R, Müller C. Impact of the dual defence system of Plantago lanceolata (Plantaginaceae) on performance, nutrient utilisation and feeding choice behaviour of Amata mogadorensis larvae (Lepidoptera, Erebidae). Journal of Insect Physiology. 2015;82:99-108.
Pankoke, H., Gehring, R., & Müller, C. (2015). Impact of the dual defence system of Plantago lanceolata (Plantaginaceae) on performance, nutrient utilisation and feeding choice behaviour of Amata mogadorensis larvae (Lepidoptera, Erebidae). Journal of Insect Physiology, 82, 99-108. doi:10.1016/j.jinsphys.2015.08.006
Pankoke, Helga, Gehring, René, and Müller, Caroline. 2015. “Impact of the dual defence system of Plantago lanceolata (Plantaginaceae) on performance, nutrient utilisation and feeding choice behaviour of Amata mogadorensis larvae (Lepidoptera, Erebidae)”. Journal of Insect Physiology 82: 99-108.
Pankoke, H., Gehring, R., and Müller, C. (2015). Impact of the dual defence system of Plantago lanceolata (Plantaginaceae) on performance, nutrient utilisation and feeding choice behaviour of Amata mogadorensis larvae (Lepidoptera, Erebidae). Journal of Insect Physiology 82, 99-108.
Pankoke, H., Gehring, R., & Müller, C., 2015. Impact of the dual defence system of Plantago lanceolata (Plantaginaceae) on performance, nutrient utilisation and feeding choice behaviour of Amata mogadorensis larvae (Lepidoptera, Erebidae). Journal of Insect Physiology, 82, p 99-108.
H. Pankoke, R. Gehring, and C. Müller, “Impact of the dual defence system of Plantago lanceolata (Plantaginaceae) on performance, nutrient utilisation and feeding choice behaviour of Amata mogadorensis larvae (Lepidoptera, Erebidae)”, Journal of Insect Physiology, vol. 82, 2015, pp. 99-108.
Pankoke, H., Gehring, R., Müller, C.: Impact of the dual defence system of Plantago lanceolata (Plantaginaceae) on performance, nutrient utilisation and feeding choice behaviour of Amata mogadorensis larvae (Lepidoptera, Erebidae). Journal of Insect Physiology. 82, 99-108 (2015).
Pankoke, Helga, Gehring, René, and Müller, Caroline. “Impact of the dual defence system of Plantago lanceolata (Plantaginaceae) on performance, nutrient utilisation and feeding choice behaviour of Amata mogadorensis larvae (Lepidoptera, Erebidae)”. Journal of Insect Physiology 82 (2015): 99-108.

71 References

Daten bereitgestellt von Europe PubMed Central.

Genetic variation in defensive chemistry in Plantago lanceolata (Plantaginaceae) and its effect on the specialist herbivore Junonia coenia (Nymphalidae)
Adler, Oecologia 101(), 1995
Population and leaf-level variation of iridoid glycosides in the invasive weed Verbascum thapsus L. (common mullein): implications for herbivory by generalist insects
Alba, Chemoecology 23(), 2013
Tannins in plant-herbivore interactions.
Barbehenn RV, Peter Constabel C., Phytochemistry 72(13), 2011
PMID: 21354580
Insect herbivore nutrient regulation.
Behmer ST., Annu. Rev. Entomol. 54(), 2009
PMID: 18764740
Controlling the false discovery rate: a practical and powerful approach to multiple testing
Benjamini, J. R. Stat. Soc. Ser. B (Methodological) 57(), 1995
On the adaptive control of the false discovery rate in multiple testing with independent statistics
Benjamini, J. Educ. Behav. Stat. 25(), 2000
A simple instant diet for rearing Arctiidae and other moths
Bergomaz, J. Lepidopterists’ Soc. 40(), 1986
Plant chemical defense against herbivores and pathogens: generalized defense or trade-offs?
Biere A, Marak HB, van Damme JM., Oecologia 140(3), 2004
PMID: 15146326
Iridoid glycosides
Bowers, 1991
Chemical defenses in Wooley bears: sequestration and efficacy against predators and parasitoids
Bowers, 2009
Response of generalist and specialist insects to qualitative allelochemical variation.
Deane Bowers M, Puttick GM., J. Chem. Ecol. 14(1), 1988
PMID: 24277012
Effects of genotype, habitat, and seasonal variation on iridoid glycoside content of Plantago lanceolata (Plantaginaceae) and the implications for insect herbivores
Bowers, Oecologia 91(), 1992
β-Glucosidases.
Ketudat Cairns JR, Esen A., Cell. Mol. Life Sci. 67(20), 2010
PMID: 20490603
The effects of plant quality on caterpillar growth and defence against natural enemies
Coley, Oikos 115(), 2006
The biosynthesis of iridoid glycosides from 8-epi-deoxyloganic acid
Damtoft, Biochem. Soc. Trans. 11(), 1983
The iridoid glycoside, catalpol, as a deterrent to the predator Camponotus floridanus (Formicidae)
de, Chemoecology 5–6(), 1994
Coping with toxic plant compounds--the insect's perspective on iridoid glycosides and cardenolides.
Dobler S, Petschenka G, Pankoke H., Phytochemistry 72(13), 2011
PMID: 21620425
Community-wide convergent evolution in insect adaptation to toxic cardenolides by substitutions in the Na,K-ATPase.
Dobler S, Dalla S, Wagschal V, Agrawal AA., Proc. Natl. Acad. Sci. U.S.A. 109(32), 2012
PMID: 22826239

Fox, 2011
Strictosidine activation in Apocynaceae: towards a "nuclear time bomb"?
Guirimand G, Courdavault V, Lanoue A, Mahroug S, Guihur A, Blanc N, Giglioli-Guivarc'h N, St-Pierre B, Burlat V., BMC Plant Biol. 10(), 2010
PMID: 20723215
Insect detoxification and sequestration strategies
Heckel, 2014
Effects of plant phenology, nutrients and herbivory on growth and defensive chemistry of plantain, Plantago lanceolata
Jarzomski, Oikos 88(), 2000
Mechanism of covalent adduct formation of aucubin to proteins.
Kim DH, Kim BR, Kim JY, Jeong YC., Toxicol. Lett. 114(1-3), 2000
PMID: 10713483
Leaf variation in iridoid glycoside content of Plantago lanceolata (Plantaginaceae) and oviposition of the buckeye, Junonia coenia (Nymphalidae)
Klockars, Chemoecology 4(), 1993
Glycine protects against strong protein-denaturing activity of oleuropein, a phenolic compound in privet leaves
Konno, J. Chem. Ecol. 24(), 1998
Enzymatic activation of oleuropein: a protein crosslinker used as a chemical defense in the privet tree.
Konno K, Hirayama C, Yasui H, Nakamura M., Proc. Natl. Acad. Sci. U.S.A. 96(16), 1999
PMID: 10430912
GABA, β-alanine and glycine in the digestive juice of privet-specialist insects: convergent adaptive traits against plant iridoids.
Konno K, Hirayama C, Yasui H, Okada S, Sugimura M, Yukuhiro F, Tamura Y, Hattori M, Shinbo H, Nakamura M., J. Chem. Ecol. 36(9), 2010
PMID: 20809148
A defence-related Olea europaea β-glucosidase hydrolyses and activates oleuropein into a potent protein cross-linking agent.
Koudounas K, Banilas G, Michaelidis C, Demoliou C, Rigas S, Hatzopoulos P., J. Exp. Bot. 66(7), 2015
PMID: 25697790
Direct and correlated responses to selection on iridoid glycosides in Plantago lanceolata L.
Marak, J. Evol. Biol. 13(), 2000
Adaptive patterns in alkaloid physiology
McKey, Am. Nat. 108(), 1974
The distribution of secondary compounds within plants
McKey, 1979
Explaining intraspecific diversity in plant secondary metabolites in an ecological context.
Moore BD, Andrew RL, Kulheim C, Foley WJ., New Phytol. 201(3), 2013
PMID: 24117919
beta-Glucosidases as detonators of plant chemical defense.
Morant AV, Jorgensen K, Jorgensen C, Paquette SM, Sanchez-Perez R, Moller BL, Bak S., Phytochemistry 69(9), 2008
PMID: 18472115
Die paläarktischen Amata-Arten (Lepidoptera, Ctenuchidae)
Obraztsov, Veröffentlichungen der Zoologischen Staatssammlung München 10(), 1966
The effects of mineral nitrogen limitation, competition, arbuscular mycorrhiza, and their respective interactions, on morphological and chemical plant traits of Plantago lanceolata
Pankoke, Phytochemistry (), 2015
Evidence for a deterrent effect of cardenolides on Nephila spiders
Petschenka, Basic Appl. Ecol. 12(), 2011

AUTHOR UNKNOWN, 0
Differential performance of a specialist and two generalist herbivores and their parasitoids on Plantago lanceolata.
Reudler JH, Biere A, Harvey JA, van Nouhuys S., J. Chem. Ecol. 37(7), 2011
PMID: 21691810
Evolution of plant chemical defence against herbivores
Rhoades, 1979
Cyanide and cyanogenic glycosides
Seigler, 1991
Out of the quagmire of plant defence hypotheses
Stamp, Quaterly R. Biol. 78(), 2003
Iridoid patterns of genus Plantago L. and their systematic significance
Taskova, Zeitschrift für Naturforschung C 57(), 2002
Modes of action of alkaloids
Wink, 1998
Introduction
Wink, 2010
Molecular modes of action of defensive secondary metabolites
Wink, 2010
Fate of plant-derived secondary metabolites in three moth species (Syntomis mogadorensis, Syntomeida epilais, and Creatonotos transiens)
Wink, J. Comp. Physiol. B 160(), 1990
Cyanogenic glucosides and plant-insect interactions.
Zagrobelny M, Bak S, Rasmussen AV, Jorgensen B, Naumann CM, Lindberg Moller B., Phytochemistry 65(3), 2004
PMID: 14751300
Cyanogenesis in plants and arthropods.
Zagrobelny M, Bak S, Moller BL., Phytochemistry 69(7), 2008
PMID: 18353406
A protocol for data exploration to avoid common statistical problems
Zuur, Methods Ecol. Evol. 1(), 2010
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