Root herbivores, pathogenic fungi, and competition between Centaurea maculosa and Festuca idahoensis
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[1] C. Huffaker,et al. Biological control of puncture vine: With imported weevils , 1961 .
[2] R. Kelsey,et al. Phytotoxic properties of cnicin, a sesquiterpene lactone fromcentaurea maculosa (spotted knapweed) , 2005, Journal of Chemical Ecology.
[3] R. Sheley,et al. Distribution, Biology, and Management of Diffuse Knapweed (Centaurea diffusa) and Spotted Knapweed (Centaurea maculosa) , 1998, Weed Technology.
[4] P. Lesica,et al. Competitive effects of Centaurea maculosa on the population dynamics of Arabis fecunda1 , 1996 .
[5] Michael J. Crawley,et al. Natural Enemies: The Population Biology of Predators, Parasites and Diseases , 1992 .
[6] E. Berlow,et al. Strong effects of weak interactions in ecological communities , 1999, Nature.
[7] R. Callaway,et al. Compensatory growth and competitive ability of an invasive weed are enhanced by soil fungi and native neighbours , 2001 .
[8] A. Muir,et al. ALLELOPATHIC POTENTIAL OF DIFFUSE KNAPWEED (Centaurea diffusa) EXTRACTS , 1983 .
[9] A. Fitter,et al. The magnitude and control of carbon transfer between plants linked by a common mycorrhizal network , 1999 .
[10] S. Louda,et al. Herbivore influences on plant performance and competitive interactions. , 1990 .
[11] J. P. Grime,et al. Floristic diversity in a model system using experimental microcosms , 1987, Nature.
[12] T. Miller,et al. Direct and Indirect Species Interactions in an Early Old-Field Plant Community , 1994, The American Naturalist.
[13] Peter Kareiva,et al. Special Feature: Higher Order Interactions as a Foil to Reductionist Ecology , 1994 .
[14] P. F. Kable,et al. Epidemic Spread of a Rust imported for Biological Control , 1973, Nature.
[15] H. Müller. Growth pattern of diploid and tetraploid spotted knapweed, Centaurea maculosa Lam. (Compositae), and effects of the root‐mining moth Agapeta zoegana (L.) (Lep.: Cochylidae) , 1989 .
[16] Richard D. Goeden,et al. CHAPTER 34 – Biological Control of Weeds in Terrestrial and Aquatic Environments , 1999 .
[17] E. Simms,et al. Natural enemies: The population biology of predators, parasites and diseases , 1993 .
[18] L. Kok,et al. Successful Biocontrol of Musk Thistle by an Introduced Weevil, Rhinocyllus conicus , 1975 .
[19] P. M. Rice,et al. Plant community diversity after herbicide control of spotted knapweed , 1992 .
[20] D. Schroeder,et al. AGAPETA ZOEGANA (L.) (LEPIDOPTERA: COCHYLIDAE), A SUITABLE PROSPECT FOR BIOLOGICAL CONTROL OF SPOTTED AND DIFFUSE KNAPWEED, CENTAUREA MACULOSA MONNET DE LA MARCK AND CENTAUREA DIFFUSA MONNET DE LA MARCK (COMPOSITAE) IN NORTH AMERICA , 1988, The Canadian Entomologist.
[21] P. Vitousek,et al. Soil nutrient availability , 2000 .
[22] T. Mitchell-Olds,et al. COST OF DEFENSE IN THE CONTEXT OF PLANT COMPETITION: BRASSICA RAPA MAY GROW AND DEFEND , 2002 .
[23] M. Julien,et al. Biological Control of Weeds: A World Catalogue of Agents and Their Target Weeds , 1992 .
[24] R. Callaway,et al. Biological-control herbivores may increase competitive ability of the noxious weed Centaurea maculosa , 1999 .
[25] R. Charudattan. Integrated Control of Waterhyacinth (Eichhornia crassipes) with a Pathogen, Insects, and Herbicides , 1986, Weed Science.
[26] P. Harris. INVITATION PAPER (C.P. ALEXANDER FUND): CLASSICAL BIOCONTROL OF WEEDS: ITS DEFINITION, SELECTION OF EFFECTIVE AGENTS, AND ADMINISTRATIVE–POLITICAL PROBLEMS , 1991, The Canadian Entomologist.
[27] W. Carson,et al. Overcompensation by plants: Herbivore optimization or red herring? , 2005, Evolutionary Ecology.
[28] T. Whitham,et al. Overcompensation in Response to Mammalian Herbivory: The Advantage of Being Eaten , 1987, The American Naturalist.
[29] H. Müller-Schärer,et al. Influence of cnicin, a sesquiterpene lactone ofCentaurea maculosa (Asteraceae), on specialist and generalist insect herbivores , 1994, Journal of Chemical Ecology.
[30] H. Müller-Schärer,et al. Physiological and growth responses of Centaurea maculosa (Asteraceae) to root herbivory under varying levels of interspecific plant competition and soil nitrogen availability , 1992, Oecologia.
[31] J. Wootton. Putting the Pieces Together: Testing the Independence of Interactions among Organisms , 1994 .
[32] T. Wurtz. Domestic geese: biological weed control in an agricultural setting. , 1995 .
[33] J. Lacey,et al. Effects of defoliation, shading and competition on spotted knapweed and bluebunch wheatgrass. , 1992 .
[34] Lauren D. Quinn,et al. Phosphorus uptake, not carbon transfer, explains arbuscular mycorrhizal enhancement of Centaurea maculosa in the presence of native grassland species , 2002 .
[35] W. Morris,et al. A General Test for Interaction Modification , 1994 .
[36] H. Müller-Schärer. THE IMPACT OF ROOT HERBIVORY AS A FUNCTION OF PLANT DENSITY AND COMPETITION: SURVIVAL, GROWTH AND FECUNDITY OF CENTAUREA MACULOSA IN FIELD PLOTS , 1991 .
[37] J. Lacey,et al. Effects of defoliation and competition on total non-structural carbohydrates of spotted knapweed. , 1994 .
[38] J. Lacey,et al. Economic evaluation of spotted knapweed [Centaurea maculosa] control using picloram. , 1991 .
[39] K. Clay. The impact of parasitic and mutualistic fungi on competitive interactions among plants. , 1990 .
[40] R. Callaway,et al. MYCORRHIZAE INDIRECTLY ENHANCE COMPETITIVE EFFECTS OF AN INVASIVE FORB ON A NATIVE BUNCHGRASS , 1999 .
[41] R. Sheley,et al. “Acceptable” Levels of Spotted Knapweed (Centaurea maculosa) Control , 1997, Weed Technology.
[42] B. Maxwell,et al. Effect of Sclerotinia sclerotiorum on the Interference between Bluebunch Wheatgrass (Agropyron spicatum) and Spotted Knapweed (Centaurea maculosa) , 1996, Weed Technology.
[43] Lincoln Smith,et al. Effects of the Interaction of the Biocontrol Agent Agapeta zoegana L. (Lepidoptera: Cochylidae) and Grass Competition on Spotted Knapweed , 2000 .
[44] J. Trumble,et al. Plant compensation for arthropod herbivory , 1993 .
[45] J. Lovett,et al. Allelopathy and Self-Defense in Barley , 1994 .
[46] D. Schroeder,et al. The biological control of Centaurea spp. In North America: Do insects solve the problem† , 1993 .
[47] G. A. Nielsen,et al. Predicting weed migration from soil and climate maps. [Centaurea maculosa Lam] , 1985 .
[48] G. P. Cheplick,et al. Effects of insect herbivory and fungal endophyte infection on competitive interactions among grasses. , 1993 .
[49] Chung-Shih Tang,et al. Plant Stress and Allelopathy , 1994 .
[50] F. Wäckers,et al. Linking above- and belowground multitrophic interactions of plants, herbivores, pathogens, and their antagonists , 2001 .
[51] Robin W. Tyser,et al. Spotted Knapweed in Natural Area Fescue Grasslands: An Ecological Assessment , 1988 .
[52] J. Weiner,et al. How important are environmental maternal effects in plants? A study with Centaurea maculosa , 1997 .
[53] E. Aschehoug,et al. Invasive plants versus their new and old neighbors: a mechanism for exotic invasion. , 2000, Science.