A non-persistent aphid-transmitted Potyvirus differentially alters the vector and non-vector biology through host plant quality manipulation
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[1] R. Hallett,et al. Effects of cucumber mosaic virus‐infected chilli plants on non‐vector Bemisia tabaci (Hemiptera: Aleyrodidae) , 2019, Insect science.
[2] S. Eigenbrode,et al. Insect-Borne Plant Pathogens and Their Vectors: Ecology, Evolution, and Complex Interactions. , 2018, Annual review of entomology.
[3] M. Heil,et al. Fatal attraction of non‐vector impairs fitness of manipulating plant virus , 2018 .
[4] C. Gilligan,et al. Viral Manipulation of Plant Stress Responses and Host Interactions With Insects. , 2018, Advances in virus research.
[5] Quentin Chesnais,et al. Evolutionary Determinants of Host and Vector Manipulation by Plant Viruses. , 2018, Advances in virus research.
[6] A. Fereres,et al. Fasting alters aphid probing behaviour but does not universally increase the transmission rate of non-circulative viruses. , 2017, The Journal of general virology.
[7] Andrea L. Cheung,et al. A viral protease relocalizes in the presence of the vector to promote vector performance , 2017, Nature Communications.
[8] S. Legarrea,et al. Temporal Effects of a Begomovirus Infection and Host Plant Resistance on the Preference and Development of an Insect Vector, Bemisia tabaci, and Implications for Epidemics , 2015, PloS one.
[9] G. Jander,et al. Disruption of Ethylene Responses by Turnip mosaic virus Mediates Suppression of Plant Defense against the Green Peach Aphid Vector1[OPEN] , 2015, Plant Physiology.
[10] M. Mescher,et al. Biochemical and physiological mechanisms underlying effects of Cucumber mosaic virus on host-plant traits that mediate transmission by aphid vectors. , 2014, Plant, cell & environment.
[11] G. Jander,et al. The NIa-Pro protein of Turnip mosaic virus improves growth and reproduction of the aphid vector, Myzus persicae (green peach aphid). , 2014, The Plant journal : for cell and molecular biology.
[12] J. Santander,et al. Mechanisms of intrinsic resistance to antimicrobial peptides of Edwardsiella ictaluri and its influence on fish gut inflammation and virulence. , 2013, Microbiology.
[13] M. Mescher,et al. Outcomes of co-infection by two potyviruses: implications for the evolution of manipulative strategies , 2013, Proceedings of the Royal Society B: Biological Sciences.
[14] S. Eigenbrode,et al. Transmission mechanisms shape pathogen effects on host–vector interactions: evidence from plant viruses , 2012 .
[15] S. Eigenbrode,et al. Plant viruses alter insect behavior to enhance their spread , 2012, Scientific Reports.
[16] M. Li,et al. Begomovirus–whitefly mutualism is achieved through repression of plant defences by a virus pathogenicity factor , 2012, Molecular ecology.
[17] Mathew G. Lewsey,et al. Cucumber mosaic virus and its 2b RNA silencing suppressor modify plant-aphid interactions in tobacco , 2011, Scientific reports.
[18] S. Eigenbrode,et al. The influence of virus-induced changes in plants on aphid vectors: insights from luteovirus pathosystems. , 2011, Virus research.
[19] A. Ameline,et al. Divergent effects of PVY-infected potato plant on aphids , 2011, European Journal of Plant Pathology.
[20] A. V. van Bel,et al. Plant cues for aphid navigation in vascular tissues , 2010, Journal of Experimental Biology.
[21] M. Sabelis,et al. Vector and virus induce plant responses that benefit a non-vector herbivore , 2010 .
[22] M. Mescher,et al. Deceptive chemical signals induced by a plant virus attract insect vectors to inferior hosts , 2010, Proceedings of the National Academy of Sciences.
[23] Mollie E. Brooks,et al. Generalized linear mixed models: a practical guide for ecology and evolution. , 2009, Trends in ecology & evolution.
[24] C. Kalleshwaraswamy,et al. Transmission efficiency of Papaya ringspot virus by three aphid species. , 2008, Phytopathology.
[25] C. Gratton,et al. Antagonistic Effects of Soybean Viruses on Soybean Aphid Performance , 2007, Environmental entomology.
[26] R. Srinivasan,et al. Effect of Mixed Viral Infections (Potato Virus Y–Potato Leafroll Virus) on Biology and Preference of VectorsMyzus persicae andMacrosiphum euphorbiae (Hemiptera: Aphididae) , 2007, Journal of economic entomology.
[27] L. Chittka,et al. Visual ecology of aphids—a critical review on the role of colours in host finding , 2007, Arthropod-Plant Interactions.
[28] A. Fereres,et al. Protecting crops from non-persistently aphid-transmitted viruses: a review on the use of barrier plants as a management tool. , 2006, Virus research.
[29] B. Falk,et al. Virus-vector interactions mediating nonpersistent and semipersistent transmission of plant viruses. , 2006, Annual review of phytopathology.
[30] S. Eigenbrode,et al. Influence of Hairy Nightshade Solanum sarrachoides (Sendtner) and Potato leafroll virus (Luteoviridae: Polerovirus) on the Host Preference of Myzus persicae (Sulzer) (Homoptera: Aphididae) , 2006 .
[31] G. Powell,et al. Host plant selection by aphids: behavioral, evolutionary, and applied perspectives. , 2006, Annual review of entomology.
[32] T. Perring,et al. Plant virus-induced changes in aphid population development and temporal fluctuations in plant nutrients , 1994, Journal of Chemical Ecology.
[33] S. Eigenbrode,et al. Volatile Cues Influence the Response of Rhopalosiphum padi (Homoptera: Aphididae) to Barley Yellow Dwarf Virus–Infected Transgenic and Untransformed Wheat , 2004 .
[34] T. Perring,et al. Alatae production and population increase of aphid vectors on virus-infected host plants , 1992, Oecologia.
[35] Oliver Fiehn,et al. Metabolic networks of Cucurbita maxima phloem. , 2003, Phytochemistry.
[36] Angela E. Douglas,et al. The Nutritional Physiology of Aphids , 2003 .
[37] S. Ghabrial,et al. Effect of Aphid Behavior on Efficiency of Transmission of Soybean mosaic virus by the Soybean-Colonizing Aphid, Aphis glycines. , 2002, Plant disease.
[38] A. Karley,et al. Amino acid composition and nutritional quality of potato leaf phloem sap for aphids. , 2002, The Journal of experimental biology.
[39] S. Eigenbrode,et al. Volatiles from potato plants infected with potato leafroll virus attract and arrest the virus vector, Myzus persicae (Homoptera: Aphididae) , 2002, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[40] A. Douglas,et al. Living on a high sugar diet: the fate of sucrose ingested by a phloem-feeding insect, the pea aphid Acyrthosiphon pisum. , 2000, Journal of insect physiology.
[41] J. Blackmer,et al. Changes in amino acids in Cucumis melo in relation to life‐history traits and flight propensity of Bemisia tabaci , 1999 .
[42] Rahbe,et al. Fate of dietary sucrose and neosynthesis of amino acids in the pea aphid, acyrthosiphon pisum, reared on different diets , 1999, The Journal of experimental biology.
[43] A. Fereres,et al. Aphid Attraction and Preference for Soybean and Pepper Plants Infected with Potyviridae , 1999 .
[44] N. Moran,et al. How nutritionally imbalanced is phloem sap for aphids? , 1999 .
[45] P. Berger,et al. Differential Settling by Myzus persicae (Homoptera: Aphididae) on Various Virus Infected Host Plants , 1998 .
[46] R. W. Eckel,et al. Relative Attractiveness of Tobacco Etch Virus-Infected and Healthy Flue-Cured Tobacco Plants to Aphids (Homoptera: Aphididae) , 1996 .
[47] J. Sandström,et al. Amino acid composition of phloem sap and the relation to intraspecific variation in pea aphid (Acyrthosiphon pisum) performance , 1994 .
[48] S. J. Simpson,et al. Nutrient regulation in the pea aphid Acyrthosiphon pisum: application of a novel geometric framework to sugar and amino acid consumption , 1994 .
[49] D.M. Taylor,et al. Advances in Disease Vector Research , 1994, Advances in Disease Vector Research.
[50] P. Berger,et al. Rates of growth and increase of Myzus persicae on virus‐infected potatoes according to type of virus‐vector relationship , 1993 .
[51] K. F. Harris. Advances in Disease Vector Research , 2011, Advances in Disease Vector Research.
[52] Christine Woodcock,et al. The Chemical Ecology of Aphids , 1992 .
[53] R. Harrington,et al. Factors influencing aphid population dynamics and behavior and the consequences for virus spread , 1991 .
[54] A. Fereres,et al. Probing and feeding behavior of Sitobion avenae (F.) (Horn., Aphididae) on three wheat cultivars infected with barley yellow dwarf virus , 1990 .
[55] D. N. Byrne,et al. Carbohydrate and amino acid composition of phloem sap and honeydew produced by Bemisia tabaci , 1990 .
[56] S. Delrot,et al. Resistance of different lucerne cultivars to the pea aphid Acyrthosiphon pisum: influence of phloem composition on aphid fecundity , 1988 .
[57] O. Ajayi. The effect of barley yellow dwarf virus on the amino acid composition of spring wheat , 1986 .
[58] D. Gonsalves,et al. Comparative studies on host range and serology of papaya ringspot virus and watermelon mosaic virus 1 , 1984 .
[59] A. Dewar,et al. The effect of barley yellow dwarf virus on field populations of the cereal aphids, Sitobion avenae and Metopolophium dirhodum , 1983 .
[60] P. White,et al. Simple Estimation of Intrinsic Increase Rates for Aphids and Tetranychid Mites , 1977 .
[61] H. Emden,et al. THE PERFORMANCE OF BREVICORYNE BRASSICAE AND MYZUS PERSICAE IN RELATION TO PLANT AGE AND LEAF AMINO ACIDS , 1971 .
[62] T. Mittler,et al. Utilization of different sugars by the aphid Myzus persicae , 1970 .
[63] A. Retnakaran,et al. Amino acid requirements and sulfur amino acid metabolism in the pea aphid, Acyrthosiphon pisum (Harris) , 1968 .
[64] T. Mittler,et al. EFFECT OF AMINO ACID AND SUGAR CONCENTRATIONS ON THE FOOD UPTAKE OF THE APHID MYZUS PERSICAE , 1967 .
[65] J. L. Auclair,et al. Aphid Feeding and Nutrition , 1963 .
[66] J. Maltais,et al. Free amino acid and amide composition of pea leaf juice, pea aphid haemolymph, and honeydew, following the rearing of aphids on single pea leaves treated with amino compounds , 1962 .