Zinc and cadmium hyperaccumulation act as deterrents towards specialist herbivores and impede the performance of a generalist herbivore

Kazemi-Dinan A, Thomaschky S, Stein RJ, Krämer U, Müller C (2014)
New Phytologist 202(2): 628-639.

Zeitschriftenaufsatz | Veröffentlicht | Englisch
 
Download
Es wurden keine Dateien hochgeladen. Nur Publikationsnachweis!
Autor*in
Kazemi-Dinan, ArdeshirUniBi; Thomaschky, Sina; Stein, Ricardo J.; Krämer, Ute; Müller, CarolineUniBi
Erscheinungsjahr
2014
Zeitschriftentitel
New Phytologist
Band
202
Ausgabe
2
Seite(n)
628-639
ISSN
0028-646X
Page URI
https://pub.uni-bielefeld.de/record/2638202

Zitieren

Kazemi-Dinan A, Thomaschky S, Stein RJ, Krämer U, Müller C. Zinc and cadmium hyperaccumulation act as deterrents towards specialist herbivores and impede the performance of a generalist herbivore. New Phytologist. 2014;202(2):628-639.
Kazemi-Dinan, A., Thomaschky, S., Stein, R. J., Krämer, U., & Müller, C. (2014). Zinc and cadmium hyperaccumulation act as deterrents towards specialist herbivores and impede the performance of a generalist herbivore. New Phytologist, 202(2), 628-639. doi:10.1111/nph.12663
Kazemi-Dinan, Ardeshir, Thomaschky, Sina, Stein, Ricardo J., Krämer, Ute, and Müller, Caroline. 2014. “Zinc and cadmium hyperaccumulation act as deterrents towards specialist herbivores and impede the performance of a generalist herbivore”. New Phytologist 202 (2): 628-639.
Kazemi-Dinan, A., Thomaschky, S., Stein, R. J., Krämer, U., and Müller, C. (2014). Zinc and cadmium hyperaccumulation act as deterrents towards specialist herbivores and impede the performance of a generalist herbivore. New Phytologist 202, 628-639.
Kazemi-Dinan, A., et al., 2014. Zinc and cadmium hyperaccumulation act as deterrents towards specialist herbivores and impede the performance of a generalist herbivore. New Phytologist, 202(2), p 628-639.
A. Kazemi-Dinan, et al., “Zinc and cadmium hyperaccumulation act as deterrents towards specialist herbivores and impede the performance of a generalist herbivore”, New Phytologist, vol. 202, 2014, pp. 628-639.
Kazemi-Dinan, A., Thomaschky, S., Stein, R.J., Krämer, U., Müller, C.: Zinc and cadmium hyperaccumulation act as deterrents towards specialist herbivores and impede the performance of a generalist herbivore. New Phytologist. 202, 628-639 (2014).
Kazemi-Dinan, Ardeshir, Thomaschky, Sina, Stein, Ricardo J., Krämer, Ute, and Müller, Caroline. “Zinc and cadmium hyperaccumulation act as deterrents towards specialist herbivores and impede the performance of a generalist herbivore”. New Phytologist 202.2 (2014): 628-639.

25 Zitationen in Europe PMC

Daten bereitgestellt von Europe PubMed Central.

Trace element transfer from two contaminated soil series to Medicago sativa and one of its herbivores, Spodoptera exigua.
Myriam G, Lilian M, Marie F, Michel M, Bastien C., Int J Phytoremediation 20(7), 2018
PMID: 28949765
Plant iron acquisition strategy exploited by an insect herbivore.
Hu L, Mateo P, Ye M, Zhang X, Berset JD, Handrick V, Radisch D, Grabe V, Köllner TG, Gershenzon J, Robert CAM, Erb M., Science 361(6403), 2018
PMID: 30115808
Effect of Cadmium Accumulation on the Performance of Plants and of Herbivores That Cope Differently With Organic Defenses.
Godinho DP, Serrano HC, Da Silva AB, Branquinho C, Magalhães S., Front Plant Sci 9(), 2018
PMID: 30546373
Relationships between soil and leaf mineral composition are element-specific, environment-dependent and geographically structured in the emerging model Arabidopsis halleri.
Stein RJ, Höreth S, de Melo JR, Syllwasschy L, Lee G, Garbin ML, Clemens S, Krämer U., New Phytol 213(3), 2017
PMID: 27735064
Genome assembly and annotation of Arabidopsis halleri, a model for heavy metal hyperaccumulation and evolutionary ecology.
Briskine RV, Paape T, Shimizu-Inatsugi R, Nishiyama T, Akama S, Sese J, Shimizu KK., Mol Ecol Resour 17(5), 2017
PMID: 27671113
Assessment of biotransfer and bioaccumulation of cadmium, lead and zinc from fly ash amended soil in mustard-aphid-beetle food chain.
Dar MI, Green ID, Naikoo MI, Khan FA, Ansari AA, Lone MI., Sci Total Environ 584-585(), 2017
PMID: 28153402
Vacuolar compartmentalization as indispensable component of heavy metal detoxification in plants.
Sharma SS, Dietz KJ, Mimura T., Plant Cell Environ 39(5), 2016
PMID: 26729300
Local adaptation is associated with zinc tolerance in Pseudomonas endophytes of the metal-hyperaccumulator plant Noccaea caerulescens.
Fones HN, McCurrach H, Mithani A, Smith JA, Preston GM., Proc Biol Sci 283(1830), 2016
PMID: 27170725
The Footprint of Polygenic Adaptation on Stress-Responsive Cis-Regulatory Divergence in the Arabidopsis Genus.
He F, Arce AL, Schmitz G, Koornneef M, Novikova P, Beyer A, de Meaux J., Mol Biol Evol 33(8), 2016
PMID: 27189540
Conserved but Attenuated Parental Gene Expression in Allopolyploids: Constitutive Zinc Hyperaccumulation in the Allotetraploid Arabidopsis kamchatica.
Paape T, Hatakeyama M, Shimizu-Inatsugi R, Cereghetti T, Onda Y, Kenta T, Sese J, Shimizu KK., Mol Biol Evol 33(11), 2016
PMID: 27413047
Transcriptome Profiling Analysis of Wolf Spider Pardosa pseudoannulata (Araneae: Lycosidae) after Cadmium Exposure.
Li CC, Wang Y, Li GY, Yun YL, Dai YJ, Chen J, Peng Y., Int J Mol Sci 17(12), 2016
PMID: 27918488
The use of metabolomics in the study of metals in biological systems.
Jones OA, Dias DA, Callahan DL, Kouremenos KA, Beale DJ, Roessner U., Metallomics 7(1), 2015
PMID: 25047028
Is there a trade-off between glucosinolate-based organic and inorganic defences in a metal hyperaccumulator in the field?
Kazemi-Dinan A, Sauer J, Stein RJ, Krämer U, Müller C., Oecologia 178(2), 2015
PMID: 25582869
Wounding of Arabidopsis halleri leaves enhances cadmium accumulation that acts as a defense against herbivory.
Plaza S, Weber J, Pajonk S, Thomas J, Talke IN, Schellenberg M, Pradervand S, Burla B, Geisler M, Martinoia E, Krämer U., Biometals 28(3), 2015
PMID: 25753945
Transcriptome Profiling of Louisiana iris Root and Identification of Genes Involved in Lead-Stress Response.
Tian S, Gu C, Liu L, Zhu X, Zhao Y, Huang S., Int J Mol Sci 16(12), 2015
PMID: 26602925
Nutrient metal elements in plants.
DalCorso G, Manara A, Piasentin S, Furini A., Metallomics 6(10), 2014
PMID: 25144607

67 References

Daten bereitgestellt von Europe PubMed Central.

Biological and Behavioral Effects of Heavy Metals in Drosophila melanogaster Adults and Larvae
Bahadorani S, Hilliker AJ., Journal of insect behavior. 22(5), 2009
PMID: IND44230812
Metal hyperaccumulation in plants: mechanisms of defence against insect herbivores
Behmer, Functional Ecology 19(), 2005
A simple instant diet for rearing arctiidae and other moth
Bergomaz, Journal of the Lepidoptera Society 40(), 1986

Bernays, 1978

Boyd, 1998
The defense hypothesis of elemental hyperaccumulation: status, challenges and new directions
Boyd, Plant and Soil 293(), 2007

Boyd, 1992
Nickel hyperaccumulated by Thlaspi montanum var. montanum is acutely toxic to an insect herbivore
Boyd, Oikos 70(), 1994
Aphids are unaffected by the elemental defence of the nickel hyperaccumulator Streptanthus polygaloides (Brassicaceae)
Boyd, Chemoecology 9(), 1999
Nickel hyperaccumulation defends Streptanthus polygaloides (Brassicaceae) against pathogens
Boyd, American Journal of Botany 81(), 1994
Detection of nickeliferous rocks by analysis of herbarium specimens of indicator plants
Brooks, Journal of Geochemical Exploration 7(), 1977
Strategies of heavy metal uptake by three plant species growing near a metal smelter.
Dahmani-Muller H, van Oort F, Gelie B, Balabane M., Environ. Pollut. 109(2), 2000
PMID: 15092894
Hyperaccumulators of metal and metalloid trace elements: facts and fiction
Ent, Plant and Soil 362(), 2013

Finney, 1964
The ecology of Heliothis virescens species in relation to agroecosystems
Fitt, Annual Review of Entomology 34(), 1989
Selenium hyperaccumulator plants Stanleya pinnata and Astragalus bisulcatus are colonized by Se-resistant, Se-excluding wasp and beetle seed herbivores.
Freeman JL, Marcus MA, Fakra SC, Devonshire J, McGrath SP, Quinn CF, Pilon-Smits EA., PLoS ONE 7(12), 2012
PMID: 23226523
Selenium-tolerant diamondback moth disarms hyperaccumulator plant defense.
Freeman JL, Quinn CF, Marcus MA, Fakra S, Pilon-Smits EA., Curr. Biol. 16(22), 2006
PMID: 17113382
Seedling mortality of metal hyperaccumulator plants resulting from damping off by Pythium spp.
Ghaderian YSM, Lyon AJE, Baker AJM., New Phytol. 146(2), 2000
PMID: IND22059242
Effects of different dietary levels of cadmium. lead, copper and zinc on the vitality of the forest pest insect Lymantria dispar L. (Lymantriidae, Lepid)
Gintenreiter, Archives of Environmental Contamination and Toxicology 25(), 1993
Effects of nickel hyperaccumulation in Alyssum pintodasilvae on model arthropods representatives of two trophic levels
Goncalves, Plant and Soil 293(), 2007
Root herbivores and detritivores shape above-ground multitrophic assemblage through plant-mediated effects
Gonzáles-Megías, Journal of Animal Ecology 79(), 2010
The taste of heavy metals: gene regulation by MTF-1
Günther, Biochimica Et Biophysica Acta-Molecular Cell Research 1823(), 2012
Biology and biochemistry of glucosinolates.
Halkier BA, Gershenzon J., Annu Rev Plant Biol 57(), 2006
PMID: 16669764
Evolution of metal hyperaccumulation required cis-regulatory changes and triplication of HMA4.
Hanikenne M, Talke IN, Haydon MJ, Lanz C, Nolte A, Motte P, Kroymann J, Weigel D, Kramer U., Nature 453(7193), 2008
PMID: 18425111
Selenium accumulation protects Brassica juncea from invertebrate herbivory and fungal infection.
Hanson B, Garifullina GF, Lindblom SD, Wangeline A, Ackley A, Kramer K, Norton AP, Lawrence CB, Pilon-Smits EAH., New Phytol. 159(2), 2003
PMID: IND23344028

Hopkin, 1989
Selective herbivory on low-zinc phenotypes of the hyperaccumulator Thlaspi caerulescens (Brassicaceae)
Jhee, Chemoecology 9(), 1999
Does the response of insect herbivores to cadmium depend on their feeding strategy?
Konopka JK, Hanyu K, Macfie SM, McNeil JN., J. Chem. Ecol. 39(4), 2013
PMID: 23525953
Effect of dietary copper on larval development of Diaprepes abbreviatus (Coleoptera: Curculionidae)
Lapointe SL, Weathersbee AAIII, Doostdar H, Mayer RT., Fla. Entomol. 87(1), 2004
PMID: IND43674101
Metal-induced oxidative stress and signal transduction
Leonard, Free Radical Biology and Medicine 37(), 2004
Toxicological effects and storage of cadmium and mercury in an insect Locusta migratoria (Orthoptera)
Martoja, Journal of Invertebrate Pathology 42(), 1983
Effects of Bacillus thuringiensis nuclear-polyhedrosis virus mixtures on Trichoplusia ni larvae
McVay, Journal of Invertebrate Pathology 29(), 1977
Phytophagous insects associated with the Ni-hyperaccumulating plant Berkheya coddii (Asteraceae) in Mpumalanga, South Africa
Mesjasz-Przybylowicz, South African Journal of Science 97(), 2001
Interactions between glucosinolate- and myrosinase-containing plants and the sawfly Athalia rosae
Müller, Phytochemistry Reviews 8(), 2009
Palatability of Thlaspi caerulescens for snails: influence of zinc and glucosinolates.
Noret N, Meerts P, Tolra R, Poschenrieder C, Barcelo J, Escarre J., New Phytol. 165(3), 2005
PMID: 15720687
Do metal-rich plants deter herbivores? A field test of the defence hypothesis.
Noret N, Meerts P, Vanhaelen M, Dos Santos A, Escarre J., Oecologia 152(1), 2007
PMID: 17216212
Winter body mass and over-ocean flocking as components of danger management by Pacific dunlins.
Ydenberg RC, Dekker D, Kaiser G, Shepherd PC, Ogden LE, Rickards K, Lank DB., BMC Ecol. 10(), 2010
PMID: 20092617

Reeves, 2000

Reininghaus, 2004
Untersuchungen über die Rübenblattwespe Athalia colibri Christ (A. spinarum F.)
Riggert, Zeitschrift für Angewandte Entomologie 26(), 1939

Schoonhoven, 1998

Schowalter, 2011
Oxidative mechanisms in the toxicity of metal ions
Stohs, Free Radical Biology and Medicine 18(), 1995
Wild host plants of Helicoverpa zea and Heliothis virescens (Lepidoptera: Noctuidae) in eastern Tennessee
Sudbrink, Environmental Entomology 24(), 1995
Distinctive effects of cadmium on glucosinolate profiles in Cd hyperaccumulator Thlaspi praecox and non-hyperaccumulator Thlaspi arvense
Tolrà, Plant and Soil 288(), 2006
Influence of zinc hyperaccumulation on glucosinolates in Thlaspi caerulescens.
Tolra RP, Poschenrieder C, Alonso R, Barcelo D, Barcelo J., New Phytol. 151(3), 2001
PMID: IND23236723
Effect of selenium-treated alfalfa on development, survival, feeding, and oviposition preferences of Spodoptera exigua (Lepidoptera: Noctuidae)
Vickerman, Environmental Entomology 31(), 2002
Insect herbivore counteradaptations to the plant glucosinolate-myrosinase system.
Winde I, Wittstock U., Phytochemistry 72(13), 2011
PMID: 21316065
Accumulation of cadmium and its effects on growth, development and hemolymph biochemical compositions in Boettcherisca peregrina larvae (Diptera: Sarcophagidae)
Wu, Insect Science 13(), 2006
Export

Markieren/ Markierung löschen
Markierte Publikationen

Open Data PUB

Web of Science

Dieser Datensatz im Web of Science®
Quellen

PMID: 24383491
PubMed | Europe PMC

Suchen in

Google Scholar