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(PDF) Phytohormone Changes in Pepper from Aphid Stress
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[{"id":103564671,"identifier":"Attachment_103564671","shouldShowBulkDownload":false}]; window.loswp.shouldDetectTimezone = true; window.loswp.shouldShowBulkDownload = true; window.loswp.showSignupCaptcha = false window.loswp.willEdgeCache = false; window.loswp.work = {"work":{"id":103599389,"created_at":"2023-06-20T00:14:46.093-07:00","from_world_paper_id":236097446,"updated_at":"2025-01-31T12:08:34.827-08:00","_data":{"publisher":"Wiley","ai_title_tag":"Phytohormone Changes in Pepper from Aphid Stress","grobid_abstract":"The time course response of selected phytohormones has been evaluated in sweet pepper plants (Capsicum annuum L.) submitted to a high density (200 aphids/plant) of aphid (Myzus persicae Sulzer) infestation. Abscisic acid (ABA), salicylic acid (SA), indole-3-acetic acid (IAA), and jasmonates (JAs), including jasmonic acid (JA), jasmonoyl-L-isoleucine (JA-Ile), and cis-OPDA have been simultaneously identified and quantitated by UHPLC-MS/MS in pepper leaf tissue harvested at 3, 8 hours post-infestation (hpi), 1, 2, 4 and 7 days post-infestation (dpi). Infested plants showed a reduction in stem length at 7 dpi and in the number of leaves and leaf width from 4 dpi onwards. JA and JA-Ile significantly increased very early (from 3 hpi) while SA only accumulated at 7 dpi. Despite the high density of infestation, the aphid-induced accumulation of JAs was much lower than the burst typically induced by chewing herbivores. On the other side, ABA peaked in aphid-infested plants at 2 and 4 dpi, while IAA content did not change significantly at any time point. Growth inhibition may be partially explained by the high levels of JAs found in aphid-infested plants. The possibility that the obtained results support the hypothesis of the aphid manipulation of plant metabolism is discussed.","publication_date":"2020,,","publication_name":"Physiologia Plantarum","grobid_abstract_attachment_id":"103564671"},"document_type":"paper","pre_hit_view_count_baseline":null,"quality":"high","language":"en","title":"Phytohormone responses in pepper ( Capsicum annuum L.) leaves under a high density of aphid infestation","broadcastable":false,"draft":null,"has_indexable_attachment":true,"indexable":true}}["work"]; window.loswp.workCoauthors = [27556856]; window.loswp.locale = "en"; window.loswp.countryCode = "SG"; window.loswp.cwvAbTestBucket = ""; window.loswp.designVariant = "ds_vanilla"; window.loswp.fullPageMobileSutdModalVariant = "full_page_mobile_sutd_modal"; window.loswp.useOptimizedScribd4genScript = false; window.loginModal = {}; window.loginModal.appleClientId = 'edu.academia.applesignon'; window.userInChina = "false";</script><script defer="" src="https://accounts.google.com/gsi/client"></script><div class="ds-loswp-container"><div class="ds-work-card--grid-container"><div class="ds-work-card--container js-loswp-work-card"><div class="ds-work-card--cover"><div class="ds-work-cover--wrapper"><div class="ds-work-cover--container"><button class="ds-work-cover--clickable js-swp-download-button" data-signup-modal="{"location":"swp-splash-paper-cover","attachmentId":103564671,"attachmentType":"pdf"}"><img alt="First page of “Phytohormone responses in pepper ( Capsicum annuum L.) leaves under a high density of aphid infestation”" class="ds-work-cover--cover-thumbnail" src="https://0.academia-photos.com/attachment_thumbnails/103564671/mini_magick20230620-1-ay7t2a.png?1687245412" /><img alt="PDF Icon" class="ds-work-cover--file-icon" src="//a.academia-assets.com/images/single_work_splash/adobe_icon.svg" /><div class="ds-work-cover--hover-container"><span class="material-symbols-outlined" style="font-size: 20px" translate="no">download</span><p>Download Free PDF</p></div><div class="ds-work-cover--ribbon-container">Download Free PDF</div><div class="ds-work-cover--ribbon-triangle"></div></button></div></div></div><div class="ds-work-card--work-information"><h1 class="ds-work-card--work-title">Phytohormone responses in pepper ( Capsicum annuum L.) leaves under a high density of aphid infestation</h1><div class="ds-work-card--work-authors ds-work-card--detail"><a class="ds-work-card--author js-wsj-grid-card-author ds2-5-body-md ds2-5-body-link" data-author-id="27556856" href="https://alicante.academia.edu/JOSELUISCASASMARTINEZ"><img alt="Profile image of JOSE LUIS CASAS MARTINEZ" class="ds-work-card--author-avatar" src="https://0.academia-photos.com/27556856/7843473/8788393/s65_jose_luis.casas_martinez.jpg" />JOSE LUIS CASAS MARTINEZ</a></div><div class="ds-work-card--detail"><p class="ds-work-card--detail ds2-5-body-sm">2020, Physiologia Plantarum</p><div class="ds-work-card--work-metadata"><div class="ds-work-card--work-metadata__stat"><span class="material-symbols-outlined" style="font-size: 20px" translate="no">visibility</span><p class="ds2-5-body-sm" id="work-metadata-view-count">…</p></div><div class="ds-work-card--work-metadata__stat"><span class="material-symbols-outlined" style="font-size: 20px" translate="no">description</span><p class="ds2-5-body-sm">20 pages</p></div><div class="ds-work-card--work-metadata__stat"><span class="material-symbols-outlined" style="font-size: 20px" translate="no">link</span><p class="ds2-5-body-sm">1 file</p></div></div><script>(async () => { const workId = 103599389; 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Abscisic acid (ABA), salicylic acid (SA), indole-3-acetic acid (IAA), and jasmonates (JAs), including jasmonic acid (JA), jasmonoyl-L-isoleucine (JA-Ile), and cis-OPDA have been simultaneously identified and quantitated by UHPLC-MS/MS in pepper leaf tissue harvested at 3, 8 hours post-infestation (hpi), 1, 2, 4 and 7 days post-infestation (dpi). Infested plants showed a reduction in stem length at 7 dpi and in the number of leaves and leaf width from 4 dpi onwards. JA and JA-Ile significantly increased very early (from 3 hpi) while SA only accumulated at 7 dpi. Despite the high density of infestation, the aphid-induced accumulation of JAs was much lower than the burst typically induced by chewing herbivores. On the other side, ABA peaked in aphid-infested plants at 2 and 4 dpi, while IAA content did not change significantly at any time point. Growth inhibition may be partially explained by the high levels of JAs found in aphid-infested plants. The possibility that the obtained results support the hypothesis of the aphid manipulation of plant metabolism is discussed.</p><div class="ds-work-card--button-container"><button class="ds2-5-button js-swp-download-button" data-signup-modal="{"location":"continue-reading-button--work-card","attachmentId":103564671,"attachmentType":"pdf","workUrl":"https://www.academia.edu/103599389/Phytohormone_responses_in_pepper_Capsicum_annuum_L_leaves_under_a_high_density_of_aphid_infestation"}">See full PDF</button><button class="ds2-5-button ds2-5-button--secondary js-swp-download-button" data-signup-modal="{"location":"download-pdf-button--work-card","attachmentId":103564671,"attachmentType":"pdf","workUrl":"https://www.academia.edu/103599389/Phytohormone_responses_in_pepper_Capsicum_annuum_L_leaves_under_a_high_density_of_aphid_infestation"}"><span class="material-symbols-outlined" style="font-size: 20px" translate="no">download</span>Download PDF</button></div><div class="ds-signup-banner-trigger-container"><div class="ds-signup-banner-trigger ds-signup-banner-trigger-control"></div></div><div class="ds-signup-banner ds-signup-banner-control"><div id="ds-signup-banner-close-button"><button class="ds2-5-button ds2-5-button--secondary ds2-5-button--inverse"><span class="material-symbols-outlined" style="font-size: 20px" translate="no">close</span></button></div><div class="ds-signup-banner-ctas"><img src="//a.academia-assets.com/images/academia-logo-capital-white.svg" /><h4 class="ds2-5-heading-serif-sm">Sign up for access to the world's latest research</h4><button class="ds2-5-button ds2-5-button--inverse ds2-5-button--full-width js-swp-download-button" data-signup-modal="{"location":"signup-banner"}">Sign up for free<span class="material-symbols-outlined" style="font-size: 20px" translate="no">arrow_forward</span></button></div><div class="ds-signup-banner-divider"></div><div class="ds-signup-banner-reasons"><div class="ds-signup-banner-reasons-item"><span class="material-symbols-outlined" style="font-size: 24px" translate="no">check</span><span>Get notified about relevant papers</span></div><div class="ds-signup-banner-reasons-item"><span class="material-symbols-outlined" style="font-size: 24px" translate="no">check</span><span>Save papers to use in your research</span></div><div class="ds-signup-banner-reasons-item"><span class="material-symbols-outlined" style="font-size: 24px" translate="no">check</span><span>Join the discussion with peers</span></div><div class="ds-signup-banner-reasons-item"><span class="material-symbols-outlined" style="font-size: 24px" translate="no">check</span><span>Track your impact</span></div></div></div><script>(() => { // Set up signup banner show/hide behavior: // 1. 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There was some induction of hormones in the compatible interaction between A. pisum clone N116 and M. truncatula cultivar DZA315, whereas JA, SA and medicarpin exhibited more significant increases in foliage concentration during the incompatible interaction between A. pisum clone PS01 and M. truncatula cultivar Jemalong A17. Foliar concentration of JA, SA and medicarpin exhibited a positive relationship with aphid density after 3-day feeding, whereas ABA was not affected by the presence of aphids. When aphids were restricted to a single leaf using plastic tubes, JA, SA and medicarpin displayed strong local induction, whereas there were no significant systemic increases in uninfested leaves. Medicarpin and SA appeared to increase with duration of aphid feeding, whereas JA showed a more transient increase in concentration 24 h after challenge commenced. Results suggest that increases in JA, SA and medicarpin are associated with M. truncatula resistance to particular clones of A. pisum. The variation in concentration of the defence-related compounds recorded with regard to aphid density, duration of challenge, genotypes of plant and aphids, and between locally challenged and distant leaves reinforces the need for consideration of these experimental factors when generalizing about the plant defence processes that occur during aphid-plant interactions.</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"Aphid induction of phytohormones in Medicago truncatula is dependent upon time post-infestation, aphid density and the genotypes of both plant and insect","attachmentId":95206140,"attachmentType":"pdf","work_url":"https://www.academia.edu/92107509/Aphid_induction_of_phytohormones_in_Medicago_truncatula_is_dependent_upon_time_post_infestation_aphid_density_and_the_genotypes_of_both_plant_and_insect","alternativeTracking":true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link ds2-5-text-link--inline js-wsj-grid-card-view-pdf" href="https://www.academia.edu/92107509/Aphid_induction_of_phytohormones_in_Medicago_truncatula_is_dependent_upon_time_post_infestation_aphid_density_and_the_genotypes_of_both_plant_and_insect"><span class="ds2-5-text-link__content">View PDF</span><span class="material-symbols-outlined" style="font-size: 18px" translate="no">chevron_right</span></a></div></div><div class="ds-related-work--container js-wsj-grid-card" data-collection-position="1" data-entity-id="56904864" data-sort-order="default"><a class="ds-related-work--title js-wsj-grid-card-title ds2-5-body-md ds2-5-body-link" href="https://www.academia.edu/56904864/Aphid_host_plant_interaction">Aphid-host plant interaction</a><div class="ds-related-work--metadata"><a class="js-wsj-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="47572451" href="https://independent.academia.edu/FayezSemida">Fayez Semida</a></div><p class="ds-related-work--metadata ds2-5-body-xs">Open Journal of Animal Sciences, 2013</p><p class="ds-related-work--abstract ds2-5-body-sm">Black bean aphid, Aphis fabae (Homoptera; Aphididae) is a serious pest causing crop loss. Plant-aphid interaction is a dynamic system subjected to continual variation and changes. Host plants induce various biochemical and physical defense mechanisms due to aphid feeding. Aphids can overcome plant defenses by enzymatic adaptations and sequestering secondary metabolites produced by the plant within their bodies as a defense against their enemies. Many strategies were developed and evolved by aphids in order to overcome plant defense barriers which allowed them to feed, grow and reproduce on their host plants. This study aimed to aid in better understanding of the effect of altering host plant on specialist and generalist aphid fitness.The influence of plant defense on population development of Aphis fabae was also investigated. Analyses for insect enzymes were also demonstrated in addition to further biochemical studies on host plant defences. Generalists showed different ecological and enzymatic adaptations towards host plants than specialist Aphis fabae. The results were fully discussed in details.</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"Aphid-host plant interaction","attachmentId":72061543,"attachmentType":"pdf","work_url":"https://www.academia.edu/56904864/Aphid_host_plant_interaction","alternativeTracking":true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link ds2-5-text-link--inline js-wsj-grid-card-view-pdf" href="https://www.academia.edu/56904864/Aphid_host_plant_interaction"><span class="ds2-5-text-link__content">View PDF</span><span class="material-symbols-outlined" style="font-size: 18px" translate="no">chevron_right</span></a></div></div><div class="ds-related-work--container js-wsj-grid-card" data-collection-position="2" data-entity-id="66187194" data-sort-order="default"><a class="ds-related-work--title js-wsj-grid-card-title ds2-5-body-md ds2-5-body-link" href="https://www.academia.edu/66187194/Understanding_the_Plant_Aphid_Interaction_A_Review">Understanding the Plant Aphid Interaction: A Review</a><div class="ds-related-work--metadata"><a class="js-wsj-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="52009226" href="https://independent.academia.edu/WaghmareKranti">Waghmare Kranti</a></div><p class="ds-related-work--metadata ds2-5-body-xs">European Journal of Biology and Biotechnology</p><p class="ds-related-work--abstract ds2-5-body-sm">The interaction between plant-aphid is phenomenal and complex. Aphids possess efficient mouthparts which feed on plant sap intensively. Adaptation to host plants and successful feeding is achieved through the strategic ability of aphids to reproduce sexually and asexually (parthenogenesis). Aphid infestation damages the plant in diverse ways and induces plant defense. Though plant elicit direct and indirect defense to resist aphid feeding, the effectiveness of plant resistance depends largely on the aphid infestation rate and quality of the host plant. To control aphid infestation and plant damage, dependency on insecticides is undesirable due to insecticidal resistance of aphids and environmental pollution. The approach towards the development of the genetically engineered crops which are aphid resistant can be the considerable potential to aphid control..</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"Understanding the Plant Aphid Interaction: A Review","attachmentId":77477708,"attachmentType":"pdf","work_url":"https://www.academia.edu/66187194/Understanding_the_Plant_Aphid_Interaction_A_Review","alternativeTracking":true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link ds2-5-text-link--inline js-wsj-grid-card-view-pdf" href="https://www.academia.edu/66187194/Understanding_the_Plant_Aphid_Interaction_A_Review"><span class="ds2-5-text-link__content">View PDF</span><span class="material-symbols-outlined" style="font-size: 18px" translate="no">chevron_right</span></a></div></div><div class="ds-related-work--container js-wsj-grid-card" data-collection-position="3" data-entity-id="89403017" data-sort-order="default"><a class="ds-related-work--title js-wsj-grid-card-title ds2-5-body-md ds2-5-body-link" href="https://www.academia.edu/89403017/Changes_in_hydroxamic_acid_levels_of_wheat_plants_induced_by_aphid_feeding">Changes in hydroxamic acid levels of wheat plants induced by aphid feeding</a><div class="ds-related-work--metadata"><a class="js-wsj-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="230714276" href="https://independent.academia.edu/SylviaCopaja">Sylvia Copaja</a></div><p class="ds-related-work--metadata ds2-5-body-xs">Phytochemistry, 1989</p><p class="ds-related-work--abstract ds2-5-body-sm">Seedlings of four wheat cultivars were infested with Metopolophium dirhodum nymphs. After aphids had fed for 40 hr on the plants, the levels of the defense metabolite 2,4-dihydroxy-7-methoxy-1,4-benzoxazin-3-one had changed. The changes depended on the cultivar and the portion of the leaf examined. The increase was greater in cultivars Naofen (45.0% at the tip of the leaf, 96.2% at the base where aphids were feeding) and Quilafen (14.7 and 35.8% respectively). The increase was not significant in cultivars Huenufen and Sonka. A simple and sensitive high performance liquid chromatographic method is described for the quantitation of the above benzoxazinone and its demethoxylated analogue using small amounts of plant tissue.</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"Changes in hydroxamic acid levels of wheat plants induced by aphid feeding","attachmentId":93213458,"attachmentType":"pdf","work_url":"https://www.academia.edu/89403017/Changes_in_hydroxamic_acid_levels_of_wheat_plants_induced_by_aphid_feeding","alternativeTracking":true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link ds2-5-text-link--inline js-wsj-grid-card-view-pdf" href="https://www.academia.edu/89403017/Changes_in_hydroxamic_acid_levels_of_wheat_plants_induced_by_aphid_feeding"><span class="ds2-5-text-link__content">View PDF</span><span class="material-symbols-outlined" style="font-size: 18px" translate="no">chevron_right</span></a></div></div><div class="ds-related-work--container js-wsj-grid-card" data-collection-position="4" data-entity-id="16579520" data-sort-order="default"><a class="ds-related-work--title js-wsj-grid-card-title ds2-5-body-md ds2-5-body-link" href="https://www.academia.edu/16579520/Compatible_plant_aphid_interactions_How_aphids_manipulate_plant_responses">Compatible plant-aphid interactions: How aphids manipulate plant responses</a><div class="ds-related-work--metadata"><a class="js-wsj-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="35984669" href="https://independent.academia.edu/AartVanBel">Aart Van Bel</a><span>, </span><a class="js-wsj-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="35892077" href="https://independent.academia.edu/JeanlouisBonnemain">Jean-louis Bonnemain</a><span>, </span><a class="js-wsj-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="36068464" href="https://inra.academia.edu/SylvieDinant">Sylvie Dinant</a></div><p class="ds-related-work--metadata ds2-5-body-xs">Comptes Rendus Biologies, 2010</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"Compatible plant-aphid interactions: How aphids manipulate plant responses","attachmentId":42431343,"attachmentType":"pdf","work_url":"https://www.academia.edu/16579520/Compatible_plant_aphid_interactions_How_aphids_manipulate_plant_responses","alternativeTracking":true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link ds2-5-text-link--inline js-wsj-grid-card-view-pdf" href="https://www.academia.edu/16579520/Compatible_plant_aphid_interactions_How_aphids_manipulate_plant_responses"><span class="ds2-5-text-link__content">View PDF</span><span class="material-symbols-outlined" style="font-size: 18px" translate="no">chevron_right</span></a></div></div><div class="ds-related-work--container js-wsj-grid-card" data-collection-position="5" data-entity-id="22253645" data-sort-order="default"><a class="ds-related-work--title js-wsj-grid-card-title ds2-5-body-md ds2-5-body-link" href="https://www.academia.edu/22253645/Impact_of_chemical_elicitor_applications_on_greenhouse_tomato_plants_and_population_growth_of_the_green_peach_aphid_Myzus_persicae">Impact of chemical elicitor applications on greenhouse tomato plants and population growth of the green peach aphid, Myzus persicae</a><div class="ds-related-work--metadata"><a class="js-wsj-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="43631434" href="https://independent.academia.edu/HooverKelli">Kelli Hoover</a></div><p class="ds-related-work--metadata ds2-5-body-xs">Entomologia Experimentalis et Applicata, 2006</p><p class="ds-related-work--abstract ds2-5-body-sm">Recent advances in the understanding of plant signaling pathways have opened the way for using elicitor-induced plant resistance as a tactic for protecting plants against arthropod pests. Four common elicitors of induced responses in tomato, Lycopersicon esculentum Mill. (Solanaceae), were evaluated with regard to phytotoxicity, induction of plant defensive proteins, and effects on population growth and fecundity of a common pest, the green peach aphid, Myzus persicae (Sulzer) (Homoptera: Aphididae). Ethephon and methyl jasmonate (MJ) treatments caused varying degrees of phytotoxicity. Ethephon caused pronounced changes in plant growth form and severe, dose-dependent negative impacts on plant growth and flowering. Effects with MJ were milder, but still caused temporary inhibition of development, leading to smaller plants and delayed flowering. The commercial elicitors benzothiadiazole (BTH) and harpin did not cause detectable phytotoxicity. The highest doses of ethephon and MJ significantly increased leaf peroxidase (POD) levels but only MJ treatments significantly increased polyphenol oxidase (PPO) levels. BTH and harpin had no detectable effects on POD and PPO. Populations of green peach aphids grew significantly more slowly on plants treated with BTH or MJ than on control plants or plants treated with harpin or ethephon. Slowed aphid population growth on BTH-treated plants was due to significant reductions in aphid fecundity, although this was independent of changes in time to onset of reproduction or time to death. Aphid fecundity was also reduced on MJtreated plants relative to controls, but this difference was not statistically significant, suggesting that other mechanisms are involved in slowing aphid population growth on MJ-treated plants. Growth of aphid populations on plants treated with a MJ-BTH mixture was reduced almost as much as with treatments of MJ alone, suggesting that antagonism between JA-dependant and SA-dependent plant signaling pathways is only mild with regard to induced defenses against aphids.</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"Impact of chemical elicitor applications on greenhouse tomato plants and population growth of the green peach aphid, Myzus persicae","attachmentId":42903735,"attachmentType":"pdf","work_url":"https://www.academia.edu/22253645/Impact_of_chemical_elicitor_applications_on_greenhouse_tomato_plants_and_population_growth_of_the_green_peach_aphid_Myzus_persicae","alternativeTracking":true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link ds2-5-text-link--inline js-wsj-grid-card-view-pdf" href="https://www.academia.edu/22253645/Impact_of_chemical_elicitor_applications_on_greenhouse_tomato_plants_and_population_growth_of_the_green_peach_aphid_Myzus_persicae"><span class="ds2-5-text-link__content">View PDF</span><span class="material-symbols-outlined" style="font-size: 18px" translate="no">chevron_right</span></a></div></div><div class="ds-related-work--container js-wsj-grid-card" data-collection-position="6" data-entity-id="68993872" data-sort-order="default"><a class="ds-related-work--title js-wsj-grid-card-title ds2-5-body-md ds2-5-body-link" href="https://www.academia.edu/68993872/Effects_of_some_leaf_emitted_volatile_compounds_on_aphid_population_increase">Effects of some leaf-emitted volatile compounds on aphid population increase</a><div class="ds-related-work--metadata"><a class="js-wsj-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="59269098" href="https://independent.academia.edu/HildebrandD">David Hildebrand</a></div><p class="ds-related-work--metadata ds2-5-body-xs">Journal of Chemical Ecology, 1993</p><p class="ds-related-work--abstract ds2-5-body-sm">A role of some volatile compounds produced by plant tissues may be as defensive molecules against various pests, including arthropods. Volatile six-carbon compounds derived in plant tissue from polyunsaturated fatty acids via lipoxygenase/hydroperoxide lyase reduced tobacco aphid fecundity at certain concentrations when added to headspace vapor to which aphids were exposed. Both C6 aldehydes and alcohols were effective, with the alcohols having greater activity. (Z)-3-Hexenyl acetate at levels in the headspace similar to those of the alcohols and aldehydes did not reduce aphid fecundity. A 6-hr exposure period to the C 6 aldehydes and alcohols was needed for maximum effect on the aphids feeding on tobacco leaves. Analysis of the direct versus indirect effects of these compounds indicates that the volatile aldehydes had both direct effects on aphid fecundity and indirect effects due to induced changes in the leaves upon which the aphids were feeding, while only indirect effects were observed for the alcohols. Tomato leaves have the capacity to produce volatile compounds at levels that impact aphid population increase, with the volatiles produced from crushed leaves having a much larger effect. The C6 aldehydes and alcohols may be components of the fecundity reduction seen with tomato volatiles; however, volatile terpenes showed no effect. These results can be of significance for the genetic alteration of plants for improved aphid resistance.</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"Effects of some leaf-emitted volatile compounds on aphid population increase","attachmentId":79264703,"attachmentType":"pdf","work_url":"https://www.academia.edu/68993872/Effects_of_some_leaf_emitted_volatile_compounds_on_aphid_population_increase","alternativeTracking":true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link ds2-5-text-link--inline js-wsj-grid-card-view-pdf" href="https://www.academia.edu/68993872/Effects_of_some_leaf_emitted_volatile_compounds_on_aphid_population_increase"><span class="ds2-5-text-link__content">View PDF</span><span class="material-symbols-outlined" style="font-size: 18px" translate="no">chevron_right</span></a></div></div><div class="ds-related-work--container js-wsj-grid-card" data-collection-position="7" data-entity-id="34676625" data-sort-order="default"><a class="ds-related-work--title js-wsj-grid-card-title ds2-5-body-md ds2-5-body-link" href="https://www.academia.edu/34676625/Phytohormonal_signaling_in_plant_responses_to_aphid_feeding">Phytohormonal signaling in plant responses to aphid feeding</a><div class="ds-related-work--metadata"><a class="js-wsj-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="68683649" href="https://independent.academia.edu/VanMai14">Van Mai</a></div><p class="ds-related-work--metadata ds2-5-body-xs">Acta Physiologiae Plantarum, 2011</p><p class="ds-related-work--abstract ds2-5-body-sm">Aphid feeding induces various defense signaling mechanisms in plants. The recognition of feeding activities by plants occurs through the use of transmembrane pattern recognition receptors (PRRS) or, acting largely inside the cell, polymorphic nucleotide-binding leucine-rich-repeat (NB-LRR) protein products, encoded by most R genes. Activation may induce defensive reactions which are the result of highly coordinated sequential changes at the cellular level comprising, among other changes, the synthesis of signaling molecules. The ensuing plant responses are followed by the transmission of defense response signal cascades. Signals are mediated by bioactive endogenous molecules, i.e. phytohormones, such as jasmonic acid (JA), salicylic acid (SA), ethylene (ET), abscisic acid (ABA), gibberellic acid (GA) and free radicals such as hydrogen peroxide (H 2 O 2 ) and nitric oxide (NO) which independently provide direct chemical resistance. Plant-induced defenses are also regulated by a network of inter-connecting signaling pathways, in which JA, SA, and ET play dominant roles. Both synergistic and inhibitory aspects of the cross-talk among these pathways have been reported. This paper presents molecular mechanisms of plant response to aphid feeding, the precise activation of various endogenous bioactive molecules signaling in the response of many plant species and their participation in the regulation of numerous defense genes, which lead to a specific metabolic effect. Selected important points in signal transduction pathways were also discussed in studies on plant response to aphid feeding.</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"Phytohormonal signaling in plant responses to aphid feeding","attachmentId":54535969,"attachmentType":"pdf","work_url":"https://www.academia.edu/34676625/Phytohormonal_signaling_in_plant_responses_to_aphid_feeding","alternativeTracking":true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link ds2-5-text-link--inline js-wsj-grid-card-view-pdf" href="https://www.academia.edu/34676625/Phytohormonal_signaling_in_plant_responses_to_aphid_feeding"><span class="ds2-5-text-link__content">View PDF</span><span class="material-symbols-outlined" style="font-size: 18px" translate="no">chevron_right</span></a></div></div><div class="ds-related-work--container js-wsj-grid-card" data-collection-position="8" data-entity-id="81958297" data-sort-order="default"><a class="ds-related-work--title js-wsj-grid-card-title ds2-5-body-md ds2-5-body-link" href="https://www.academia.edu/81958297/Plant_response_to_feeding_aphids_promotes_aphid_dispersal">Plant response to feeding aphids promotes aphid dispersal</a><div class="ds-related-work--metadata"><a class="js-wsj-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="78484030" href="https://independent.academia.edu/ElenaManco">Elena Manco</a></div><p class="ds-related-work--metadata ds2-5-body-xs">Entomologia Experimentalis et Applicata, 2018</p><p class="ds-related-work--abstract ds2-5-body-sm">Plant responses against biotic stress agents are affected by a number of environmental conditions, including the presence of other pests and pathogens. Moreover, the impact of infestation on subsequent plant colonization by conspecifics can vary, reflecting the high diversity in the co-evolutionary processes shaping host-plant interactions. Here, we address this issue by studying how aphid-plant interplay can influence the subsequent colonization of zucchini plants (Cucurbita pepo L., Cucurbitaceae) by conspecific Aphis gossypii Glover (Hemiptera: Aphididae, Aphidini). Previous infestation does not impact development time, longevity, and fertility of aphids. However, a previous infestation affects the distribution of the newly produced nymphs on the plantthey actively disperse on the plant, rather than starting their feeding activity where they were originally deposited, as observed in controls. Interestingly, this altered dispersal behaviour is reproduced by saliva application, suggesting the occurrence of an elicitor triggering a plant response affecting the strategy of hostplant colonization by A. gossypii. The hypothesis that salicylic acid (SA) induction can trigger the observed behavioural response in a secondary infestation, was confirmed by exposure to methyl salicylate, a volatile product of the SA pathway. This evidence was further corroborated by analysis of gene expression profiles. Aphid infestation showed a transcriptional up-regulation of genes underlying the biosynthesis of SA and of genes modulating the SA-mediated defence response. Collectively, the experimental data consistently indicate regulation of aphid behaviour, mediated by plant metabolic changes following aphid infestation.</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"Plant response to feeding aphids promotes aphid dispersal","attachmentId":87820591,"attachmentType":"pdf","work_url":"https://www.academia.edu/81958297/Plant_response_to_feeding_aphids_promotes_aphid_dispersal","alternativeTracking":true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link ds2-5-text-link--inline js-wsj-grid-card-view-pdf" href="https://www.academia.edu/81958297/Plant_response_to_feeding_aphids_promotes_aphid_dispersal"><span class="ds2-5-text-link__content">View PDF</span><span class="material-symbols-outlined" style="font-size: 18px" translate="no">chevron_right</span></a></div></div><div class="ds-related-work--container js-wsj-grid-card" data-collection-position="9" data-entity-id="52108543" data-sort-order="default"><a class="ds-related-work--title js-wsj-grid-card-title ds2-5-body-md ds2-5-body-link" href="https://www.academia.edu/52108543/Host_locating_response_by_the_aphid_parasitoid_Aphidius_ervi_to_tomato_plant_volatiles">Host-locating response by the aphid parasitoid Aphidius ervi to tomato plant volatiles</a><div class="ds-related-work--metadata"><a class="js-wsj-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="37150881" href="https://independent.academia.edu/MariaDigilio">Maria Digilio</a></div><p class="ds-related-work--metadata ds2-5-body-xs">Journal of Plant Interactions, 2007</p><p class="ds-related-work--abstract ds2-5-body-sm">The blend of volatile compounds emitted by tomato plants (Solanum lycopersicum) infested with the potato aphid (Macrosiphum euphorbiae) has been studied comparatively with undamaged plants and aphids themselves. Aphid-infested plants were significantly more attractive towards Aphidius ervi than undamaged plants and aphids themselves. Oriented response towards host-damaged plant, from which aphids were removed just before running the bioassay, did not differ from that recorded for infested plants. Collection of the volatiles and analysis by gas chromatography revealed only quantitative differences between uninfested and aphid-infested plants. Nine compounds, a-pinene, (Z)-3-hexen-1-ol, a-phellandrene, limonene, (E)-b-ocimene, p-cymene, methyl salicylate, (E)-b-caryophyllene and an unknown compound, were emitted at higher levels from aphid-infested plants than from undamaged control plants, whilst no differences were noted for hexanal, 6-methyl-5-hepten-2-one, and humulene (0a-caryophyllene). Synthetic standards of these compounds were tested in wind tunnel bioassays and all elicited a significant increase in oriented flight and landings on the target by the aphid parasitoid Aphidius ervi. (E)-b-caryophyllene resulted the most attractive towards female wasps. These results corroborate the hypothesis that the volatiles produced by the plant in response to aphid attack derive from both jasmonic and salicylic acid pathways, and are exploited by A. ervi as olfactory cues to locate its hosts.</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"Host-locating response by the aphid parasitoid Aphidius ervi to tomato plant volatiles","attachmentId":69524933,"attachmentType":"pdf","work_url":"https://www.academia.edu/52108543/Host_locating_response_by_the_aphid_parasitoid_Aphidius_ervi_to_tomato_plant_volatiles","alternativeTracking":true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link ds2-5-text-link--inline js-wsj-grid-card-view-pdf" href="https://www.academia.edu/52108543/Host_locating_response_by_the_aphid_parasitoid_Aphidius_ervi_to_tomato_plant_volatiles"><span class="ds2-5-text-link__content">View PDF</span><span class="material-symbols-outlined" style="font-size: 18px" translate="no">chevron_right</span></a></div></div></div></div><div class="ds-sticky-ctas--wrapper js-loswp-sticky-ctas hidden"><div class="ds-sticky-ctas--grid-container"><div class="ds-sticky-ctas--container"><button class="ds2-5-button js-swp-download-button" data-signup-modal="{"location":"continue-reading-button--sticky-ctas","attachmentId":103564671,"attachmentType":"pdf","workUrl":null}">See full PDF</button><button class="ds2-5-button ds2-5-button--secondary js-swp-download-button" data-signup-modal="{"location":"download-pdf-button--sticky-ctas","attachmentId":103564671,"attachmentType":"pdf","workUrl":null}"><span class="material-symbols-outlined" style="font-size: 20px" translate="no">download</span>Download PDF</button></div></div></div><div class="ds-below-fold--grid-container"><div class="ds-work--container js-loswp-embedded-document"><div class="attachment_preview" data-attachment="Attachment_103564671" style="display: none"><div class="js-scribd-document-container"><div class="scribd--document-loading js-scribd-document-loader" style="display: block;"><img alt="Loading..." src="//a.academia-assets.com/images/loaders/paper-load.gif" /><p>Loading Preview</p></div></div><div style="text-align: center;"><div class="scribd--no-preview-alert js-preview-unavailable"><p>Sorry, preview is currently unavailable. You can download the paper by clicking the button above.</p></div></div></div></div><div class="ds-sidebar--container js-work-sidebar"><div class="ds-related-content--container"><h2 class="ds-related-content--heading">Related papers</h2><div class="ds-related-work--container js-related-work-sidebar-card" data-collection-position="0" data-entity-id="55941091" data-sort-order="default"><a class="ds-related-work--title js-related-work-grid-card-title ds2-5-body-md ds2-5-body-link" href="https://www.academia.edu/55941091/Changes_in_the_free_amino_acid_composition_of_Capsicum_annuum_pepper_leaves_in_response_to_Myzus_persicae_green_peach_aphid_infestation_A_comparison_with_water_stress">Changes in the free amino acid composition of Capsicum annuum (pepper) leaves in response to Myzus persicae (green peach aphid) infestation. A comparison with water stress</a><div class="ds-related-work--metadata"><a class="js-related-work-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="29251257" href="https://alicante.academia.edu/VictoriaFlorencioOrtiz">Victoria Florencio Ortiz</a></div><p class="ds-related-work--metadata ds2-5-body-xs">PloS one, 2018</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"Changes in the free amino acid composition of Capsicum annuum (pepper) leaves in response to Myzus persicae (green peach aphid) infestation. A comparison with water stress","attachmentId":71571990,"attachmentType":"pdf","work_url":"https://www.academia.edu/55941091/Changes_in_the_free_amino_acid_composition_of_Capsicum_annuum_pepper_leaves_in_response_to_Myzus_persicae_green_peach_aphid_infestation_A_comparison_with_water_stress","alternativeTracking":true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link ds2-5-text-link--inline js-related-work-grid-card-view-pdf" href="https://www.academia.edu/55941091/Changes_in_the_free_amino_acid_composition_of_Capsicum_annuum_pepper_leaves_in_response_to_Myzus_persicae_green_peach_aphid_infestation_A_comparison_with_water_stress"><span class="ds2-5-text-link__content">View PDF</span><span class="material-symbols-outlined" style="font-size: 18px" translate="no">chevron_right</span></a></div></div><div class="ds-related-work--container 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class="ds-related-work--title js-related-work-grid-card-title ds2-5-body-md ds2-5-body-link" href="https://www.academia.edu/89447582/Effects_of_Chemical_Organic_and_Bio_Fertilizers_on_Some_Secondary_Metabolites_in_the_Leaves_of_Bell_Pepper_Capsicum_annuum_and_Their_Impact_on_Life_Table_Parameters_ofMyzus_persicae_Hemiptera_Aphididae_">Effects of Chemical, Organic and Bio-Fertilizers on Some Secondary Metabolites in the Leaves of Bell Pepper (Capsicum annuum) and Their Impact on Life Table Parameters ofMyzus persicae(Hemiptera: Aphididae)</a><div class="ds-related-work--metadata"><a class="js-related-work-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="116434798" href="https://independent.academia.edu/MehdiHassanpour2">Mehdi Hassanpour</a></div><p class="ds-related-work--metadata ds2-5-body-xs">Journal of Economic Entomology, 2016</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"Effects of Chemical, Organic and Bio-Fertilizers on Some Secondary Metabolites in the Leaves of Bell Pepper (Capsicum annuum) and Their Impact on Life Table Parameters ofMyzus persicae(Hemiptera: Aphididae)","attachmentId":93252151,"attachmentType":"pdf","work_url":"https://www.academia.edu/89447582/Effects_of_Chemical_Organic_and_Bio_Fertilizers_on_Some_Secondary_Metabolites_in_the_Leaves_of_Bell_Pepper_Capsicum_annuum_and_Their_Impact_on_Life_Table_Parameters_ofMyzus_persicae_Hemiptera_Aphididae_","alternativeTracking":true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link ds2-5-text-link--inline js-related-work-grid-card-view-pdf" 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ds2-5-body-sm ds2-5-body-link" data-author-id="215619911" href="https://independent.academia.edu/RimaMekdaschiStuder">Rima Mekdaschi Studer</a></div><p class="ds-related-work--metadata ds2-5-body-xs">1994</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"Interactions between green apple aphids (Aphis pomi De Geer) and apple plants (Malus domestica Borkh.)","attachmentId":108084211,"attachmentType":"pdf","work_url":"https://www.academia.edu/110190757/Interactions_between_green_apple_aphids_Aphis_pomi_De_Geer_and_apple_plants_Malus_domestica_Borkh_","alternativeTracking":true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link ds2-5-text-link--inline js-related-work-grid-card-view-pdf" href="https://www.academia.edu/110190757/Interactions_between_green_apple_aphids_Aphis_pomi_De_Geer_and_apple_plants_Malus_domestica_Borkh_"><span class="ds2-5-text-link__content">View PDF</span><span class="material-symbols-outlined" style="font-size: 18px" translate="no">chevron_right</span></a></div></div><div class="ds-related-work--container js-related-work-sidebar-card" data-collection-position="4" data-entity-id="48256329" data-sort-order="default"><a class="ds-related-work--title js-related-work-grid-card-title ds2-5-body-md ds2-5-body-link" href="https://www.academia.edu/48256329/Soybean_Aphid_Infestation_Induces_Changes_in_Fatty_Acid_Metabolism_in_Soybean">Soybean Aphid Infestation Induces Changes in Fatty Acid Metabolism in Soybean</a><div class="ds-related-work--metadata"><a class="js-related-work-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="36833350" href="https://independent.academia.edu/CharlesKanobe">Charles Kanobe</a></div><p class="ds-related-work--metadata ds2-5-body-xs">PLOS ONE, 2015</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"Soybean Aphid Infestation Induces Changes in Fatty Acid Metabolism in Soybean","attachmentId":66964009,"attachmentType":"pdf","work_url":"https://www.academia.edu/48256329/Soybean_Aphid_Infestation_Induces_Changes_in_Fatty_Acid_Metabolism_in_Soybean","alternativeTracking":true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link ds2-5-text-link--inline js-related-work-grid-card-view-pdf" href="https://www.academia.edu/48256329/Soybean_Aphid_Infestation_Induces_Changes_in_Fatty_Acid_Metabolism_in_Soybean"><span class="ds2-5-text-link__content">View PDF</span><span 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href="https://ulg.academia.edu/Fran%C3%A7oisVerheggen">François Verheggen</a></div><p class="ds-related-work--metadata ds2-5-body-xs">Arthropod-Plant Interactions, 2011</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"Aphid-host plant interactions: does aphid honeydew exactly reflect the host plant amino acid composition?","attachmentId":45379521,"attachmentType":"pdf","work_url":"https://www.academia.edu/13405576/Aphid_host_plant_interactions_does_aphid_honeydew_exactly_reflect_the_host_plant_amino_acid_composition","alternativeTracking":true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link ds2-5-text-link--inline js-related-work-grid-card-view-pdf" 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International Interdisciplinary Research Journal, 2022</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"Aphid seasonality and host plant relationship: A Review","attachmentId":84300176,"attachmentType":"pdf","work_url":"https://www.academia.edu/76668960/Aphid_seasonality_and_host_plant_relationship_A_Review","alternativeTracking":true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link ds2-5-text-link--inline js-related-work-grid-card-view-pdf" href="https://www.academia.edu/76668960/Aphid_seasonality_and_host_plant_relationship_A_Review"><span class="ds2-5-text-link__content">View PDF</span><span class="material-symbols-outlined" style="font-size: 18px" translate="no">chevron_right</span></a></div></div><div class="ds-related-work--container js-related-work-sidebar-card" data-collection-position="7" data-entity-id="25950481" data-sort-order="default"><a class="ds-related-work--title js-related-work-grid-card-title ds2-5-body-md ds2-5-body-link" href="https://www.academia.edu/25950481/Sugar_organic_acid_phenolic_acid_and_plant_growth_regulator_content_of_extracts_of_honeydew_of_the_aphid_Myzus_persicae_and_of_its_host_plant_Raphanus_sativus">Sugar, organic acid, phenolic acid and plant growth regulator content of extracts of honeydew of the aphid Myzus persicae and of its host plant, Raphanus sativus</a><div class="ds-related-work--metadata"><a class="js-related-work-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="49671247" href="https://independent.academia.edu/AHussain6">A. Hussain</a></div><p class="ds-related-work--metadata ds2-5-body-xs">Annals of Applied Biology, 1974</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"Sugar, organic acid, phenolic acid and plant growth regulator content of extracts of honeydew of the aphid Myzus persicae and of its host plant, Raphanus sativus","attachmentId":46304999,"attachmentType":"pdf","work_url":"https://www.academia.edu/25950481/Sugar_organic_acid_phenolic_acid_and_plant_growth_regulator_content_of_extracts_of_honeydew_of_the_aphid_Myzus_persicae_and_of_its_host_plant_Raphanus_sativus","alternativeTracking":true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link ds2-5-text-link--inline js-related-work-grid-card-view-pdf" href="https://www.academia.edu/25950481/Sugar_organic_acid_phenolic_acid_and_plant_growth_regulator_content_of_extracts_of_honeydew_of_the_aphid_Myzus_persicae_and_of_its_host_plant_Raphanus_sativus"><span class="ds2-5-text-link__content">View PDF</span><span class="material-symbols-outlined" style="font-size: 18px" translate="no">chevron_right</span></a></div></div><div class="ds-related-work--container js-related-work-sidebar-card" data-collection-position="8" data-entity-id="14691608" data-sort-order="default"><a class="ds-related-work--title js-related-work-grid-card-title ds2-5-body-md ds2-5-body-link" href="https://www.academia.edu/14691608/Can_aphid_induced_plant_signals_be_transmitted_aerially_and_through_the_rhizosphere">Can aphid-induced plant signals be transmitted aerially and through the rhizosphere?</a><div class="ds-related-work--metadata"><a class="js-related-work-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="34182398" href="https://independent.academia.edu/JanPettersson">Jan Pettersson</a><span>, </span><a class="js-related-work-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="33641558" href="https://independent.academia.edu/EmilioGuerrieri">Emilio Guerrieri</a></div><p class="ds-related-work--metadata ds2-5-body-xs">Biochemical Systematics and Ecology, 2001</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"Can aphid-induced plant signals be transmitted aerially and through the rhizosphere?","attachmentId":43973003,"attachmentType":"pdf","work_url":"https://www.academia.edu/14691608/Can_aphid_induced_plant_signals_be_transmitted_aerially_and_through_the_rhizosphere","alternativeTracking":true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link ds2-5-text-link--inline js-related-work-grid-card-view-pdf" href="https://www.academia.edu/14691608/Can_aphid_induced_plant_signals_be_transmitted_aerially_and_through_the_rhizosphere"><span class="ds2-5-text-link__content">View PDF</span><span class="material-symbols-outlined" style="font-size: 18px" translate="no">chevron_right</span></a></div></div><div class="ds-related-work--container js-related-work-sidebar-card" data-collection-position="9" data-entity-id="30359209" data-sort-order="default"><a class="ds-related-work--title js-related-work-grid-card-title ds2-5-body-md ds2-5-body-link" href="https://www.academia.edu/30359209/Metabolic_changes_in_barley_seedlings_at_different_aphid_infestation_levels">Metabolic changes in barley seedlings at different aphid infestation levels</a><div class="ds-related-work--metadata"><a class="js-related-work-grid-card-author ds2-5-body-sm ds2-5-body-link" data-author-id="10889042" href="https://independent.academia.edu/LuisJCorcuera">Luis J. Corcuera</a></div><p class="ds-related-work--metadata ds2-5-body-xs">Phytochemistry, 1994</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"Metabolic changes in barley seedlings at different aphid infestation levels","attachmentId":50812054,"attachmentType":"pdf","work_url":"https://www.academia.edu/30359209/Metabolic_changes_in_barley_seedlings_at_different_aphid_infestation_levels","alternativeTracking":true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link ds2-5-text-link--inline js-related-work-grid-card-view-pdf" href="https://www.academia.edu/30359209/Metabolic_changes_in_barley_seedlings_at_different_aphid_infestation_levels"><span class="ds2-5-text-link__content">View PDF</span><span 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ds2-5-body-xs">Journal of Plant Interactions, 2012</p><div class="ds-related-work--ctas"><button class="ds2-5-text-link ds2-5-text-link--inline js-swp-download-button" data-signup-modal="{"location":"wsj-grid-card-download-pdf-modal","work_title":"Interactions between tomato volatile organic compounds and aphid behaviour","attachmentId":39449566,"attachmentType":"pdf","work_url":"https://www.academia.edu/17331734/Interactions_between_tomato_volatile_organic_compounds_and_aphid_behaviour","alternativeTracking":true}"><span class="material-symbols-outlined" style="font-size: 18px" translate="no">download</span><span class="ds2-5-text-link__content">Download free PDF</span></button><a class="ds2-5-text-link ds2-5-text-link--inline js-related-work-grid-card-view-pdf" href="https://www.academia.edu/17331734/Interactions_between_tomato_volatile_organic_compounds_and_aphid_behaviour"><span class="ds2-5-text-link__content">View PDF</span><span class="material-symbols-outlined" 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