Cucumber Beetle Biology and Management in Organic Systems
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Taxonomic Changes in the Genus Diabrotica Chevrolat (Coleoptera: Chrysomelidae: Galerucinae): Results of a Synopsis of North and Central America Diabrotica Species
University of Nebraska - Lincoln DigitalCommons@University of Nebraska - Lincoln U.S. Department of Agriculture: Agricultural Publications from USDA-ARS / UNL Faculty Research Service, Lincoln, Nebraska 7-12-2013 Taxonomic changes in the genus Diabrotica Chevrolat (Coleoptera: Chrysomelidae: Galerucinae): results of a synopsis of North and Central America Diabrotica species A. Derunkov Alexander S. Konstantinov Follow this and additional works at: https://digitalcommons.unl.edu/usdaarsfacpub This Article is brought to you for free and open access by the U.S. Department of Agriculture: Agricultural Research Service, Lincoln, Nebraska at DigitalCommons@University of Nebraska - Lincoln. It has been accepted for inclusion in Publications from USDA-ARS / UNL Faculty by an authorized administrator of DigitalCommons@University of Nebraska - Lincoln. Zootaxa 3686 (3): 301–325 ISSN 1175-5326 (print edition) www.mapress.com/zootaxa/ Article ZOOTAXA Copyright © 2013 Magnolia Press ISSN 1175-5334 (online edition) http://dx.doi.org/10.11646/zootaxa.3686.3.1 http://zoobank.org/urn:lsid:zoobank.org:pub:ED1B4DF0-1550-4CF3-ADD8-10C32676A34C Taxonomic changes in the genus Diabrotica Chevrolat (Coleoptera: Chrysomelidae: Galerucinae): results of a synopsis of North and Central America Diabrotica species A. DERUNKOV1 & A. KONSTANTINOV2 1Department of Entomology, University of Maryland, College Park, MD, 20742, USA. E-mail: [email protected] 2Systematic Entomology Laboratory, USDA, ARS, c/o Smithsonian Institution, P.O. Box 37012, National Museum of Natural History, Washington, DC 20013-7012, USA. E-mail: [email protected] Abstract The following new synonyms in Diabrotica Chevrolat 1836 are proposed: D. flaviventris Jacoby 1887 and D. tibialis Ja- coby 1887 are synonyms of D. -
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This article was downloaded by: [USDA National Agricultural Library] On: 1 October 2008 Access details: Access Details: [subscription number 790740294] Publisher Taylor & Francis Informa Ltd Registered in England and Wales Registered Number: 1072954 Registered office: Mortimer House, 37-41 Mortimer Street, London W1T 3JH, UK Biocontrol Science and Technology Publication details, including instructions for authors and subscription information: http://www.informaworld.com/smpp/title~content=t713409232 A critical evaluation of host ranges of parasitoids of the subtribe Diabroticina (Coleoptera: Chrysomelidae: Galerucinae: Luperini) using field and laboratory host records Stefan Toepfer a; Guillermo Cabrera Walsh b; Astrid Eben c; Rebeca Alvarez-Zagoya d; Tim Haye a; Feng Zhang a; Ulrich Kuhlmann a a CABI Europe-Switzerland, Delémont, Switzerland b USDA ARS South American Biocontrol Laboratory, Hurlingham, Buenos Aires, Argentina c Departamento de Ecología Funcional, Instituto de Ecología, Xalapa, Veracruz, Mexico d Instituto Politécnico Nacional, CIIDR-IPN, Durango, Mexico Online Publication Date: 01 January 2008 To cite this Article Toepfer, Stefan, Cabrera Walsh, Guillermo, Eben, Astrid, Alvarez-Zagoya, Rebeca, Haye, Tim, Zhang, Feng and Kuhlmann, Ulrich(2008)'A critical evaluation of host ranges of parasitoids of the subtribe Diabroticina (Coleoptera: Chrysomelidae: Galerucinae: Luperini) using field and laboratory host records',Biocontrol Science and Technology,18:5,483 — 504 To link to this Article: DOI: 10.1080/09583150802001742 URL: http://dx.doi.org/10.1080/09583150802001742 PLEASE SCROLL DOWN FOR ARTICLE Full terms and conditions of use: http://www.informaworld.com/terms-and-conditions-of-access.pdf This article may be used for research, teaching and private study purposes. Any substantial or systematic reproduction, re-distribution, re-selling, loan or sub-licensing, systematic supply or distribution in any form to anyone is expressly forbidden. -
Diabrotica Barberi
EPPO Datasheet: Diabrotica barberi Last updated: 2020-11-26 IDENTITY Preferred name: Diabrotica barberi Authority: Smith & Lawrence Taxonomic position: Animalia: Arthropoda: Hexapoda: Insecta: Coleoptera: Chrysomelidae Other scientific names: Diabrotica longicornis barberi Smith & Lawrence Common names: northern corn rootworm view more common names online... EPPO Categorization: A1 list view more categorizations online... more photos... EU Categorization: A1 Quarantine pest (Annex II A) EPPO Code: DIABLO Notes on taxonomy and nomenclature The subfamily Galerucinae (Coleoptera; Chrysomelidae) includes the economically important genus Diabrotica which comprises over 400 described species (including 107 valid species in North and Central America), and is one of the most speciose leaf beetle genera in the New World. Many Diabrotica species feed on flowers, leaves and roots of a wide variety of herbaceous plants, including agricultural crops, vegetables, fruits and ornamentals and are vectors of plant diseases (Derunkov et al., 2013) such as Squash mosaic virus (Krysan & Miller, 1986) or Fusarium spp. (Chiang, 1973). A key to separate Diabrotica from related genera is presented by Derunkov et al. (2015) but despite their bright colours and various patterns, Diabrotica species are notoriously difficult to identify at the species level. Diabrotica barberi Smith & Lawrence (the northern corn rootworm) was originally described as Galleruca longicornis by Say in 1824 and was subsequently transferred to the genus Diabrotica Chevrolat, 1843, considered only as a subspecies of Diabrotica longicornis (Say). However, based on laboratory and ?eld studies, Krysan et al. (1983) elevated the taxon to species level. They concluded that even when the two species occur in the same geographic areas, adults are found in different habitats and they show a clear sexual isolation that supports the decision to elevate D. -
Organic Options for Striped Cucumber Beetle Management in Cucumbers Katie Brandt Grand Valley State University
Grand Valley State University ScholarWorks@GVSU Masters Theses Graduate Research and Creative Practice 6-2012 Organic Options for Striped Cucumber Beetle Management in Cucumbers Katie Brandt Grand Valley State University Follow this and additional works at: http://scholarworks.gvsu.edu/theses Recommended Citation Brandt, Katie, "Organic Options for Striped Cucumber Beetle Management in Cucumbers" (2012). Masters Theses. 29. http://scholarworks.gvsu.edu/theses/29 This Thesis is brought to you for free and open access by the Graduate Research and Creative Practice at ScholarWorks@GVSU. It has been accepted for inclusion in Masters Theses by an authorized administrator of ScholarWorks@GVSU. For more information, please contact [email protected]. ORGANIC OPTIONS FOR STRIPED CUCUMBER BEETLE MANAGEMENT IN CUCUMBERS Katie Brandt A thesis Submitted to the Graduate Faculty of GRAND VALLEY STATE UNIVERSITY In Partial Fulfillment of the Requirements For the Degree of Master of Science Biology June 2012 2 ACKNOWLEDGEMENTS Many thanks to my advisors, who helped me plan this research and understand the interactions of beetles, plants and disease in this system. Jim Dunn helped immensely with the experimental design and prevented me from giving up when my replication block was destroyed in a flood. Mathieu Ngouajio generously shared his expertise with organic vegetables, field trials and striped cucumber beetles. Mel Northup lent the HOBO weather stations, visited the farm to instruct me to set them up and later transferred the data into an Excel spreadsheet. Sango Otieno and the students at the Statistical Consulting Center at GVSU were very helpful with data analysis. Numerous farmworkers and volunteers also helped in the labor-intensive process of gathering data for this research. -
Diabrotica Speciosa Primary Pest of Soybean Arthropods Cucurbit Beetle Beetle
Diabrotica speciosa Primary Pest of Soybean Arthropods Cucurbit beetle Beetle Diabrotica speciosa Scientific name Diabrotica speciosa Germar Synonyms: Diabrotica amabilis, Diabrotica hexaspilota, Diabrotica simoni, Diabrotica simulans, Diabrotica vigens, and Galeruca speciosa Common names Cucurbit beetle, chrysanthemum beetle, San Antonio beetle, and South American corn rootworm Type of pest Beetle Taxonomic position Class: Insecta, Order: Coleoptera, Family: Chrysomelidae Reason for Inclusion in Manual CAPS Target: AHP Prioritized Pest List - 2010 Pest Description Diabrotica speciosa was first described by Germar in 1824, as Galeruca speciosa. Two subspecies have been described, D. speciosa vigens (Bolivia, Peru and Ecuador), and D. speciosa amabilis (Bolivia, Colombia, Venezuela and Panama). These two subspecies differ mainly in the coloring of the head and elytra (Araujo Marques, 1941; Bechyne and Bechyne, 1962). Eggs: Eggs are ovoid, about 0.74 x 0.36 mm, clear white to pale yellow. They exhibit fine reticulation that under the microscope appears like a pattern of polygonal ridges that enclose a variable number of pits (12 to 30) (Krysan, 1986). Eggs are laid in the soil near the base of a host plant in clusters, lightly agglutinated by a colorless secretion. The mandibles and anal plate of the developing larvae can be seen in mature eggs. Larvae: Defago (1991) published a detailed description of the third instar of D. speciosa. First instars are about 1.2 mm long, and mature third instars are about 8.5 mm long. They are subcylindrical; chalky white; head capsule dirty yellow to light brown, epicraneal and frontal sutures lighter, with long light-brown setae; mandibles reddish dark brown; antennae and palpi pale yellow. -
WESTERN SPOTTED CUCUMBER BEETLE Coleoptera: Chrysomelidae Diabrotica Undecimpunctata Undecimpunctata ______DESCRIPTION
Modified from Ralph E. Berry. 1998©. Insects and Mites of Economic Importance in the Northwest. 2nd Ed. 221 p. WESTERN SPOTTED CUCUMBER BEETLE Coleoptera: Chrysomelidae Diabrotica undecimpunctata undecimpunctata ___________________________________________________________________________ DESCRIPTION Adults are 6 mm long, yellowish-green with distinct black spots on the wing covers. This species is a subspecies of the southern corn rootworm, D. undicimpunctata howardi, which is a serious pest of corn in the central United States. Mature larvae of the western spotted cucumber beetle are 14 to 17 mm long. They are white, except the head and last abdominal segment, which are brown. ECONOMIC IMPORTANCE Larvae of this pest feed on roots of potatoes, corn, Adult snap beans, immature cole crops, and some other vegetables. On potatoes, feeding injury resembles damage caused by flea beetle larvae. Adults feed on corn silk, pollen, bean leaves, blossoms and developing pods, and pollen of cucurbits. This damage causes inadequate pollination resulting in reduced yields, poor seed set, and considerable wastage in beans at processing plants. Processors dock growers and downgrade quality if the damage from cucumber beetle adults exceeds the equivalent of 1.5 scars ("beetle bites") per 100 pods. Larva DISTRIBUTION AND LIFE HISTORY This species occurs throughout western Oregon and W. SPOTTED CUCUMBER BEETLE Washington. This insect overwinters as a fertilized ADULTS female. Adults are active during mild periods in the EGGS EGGS winter, but do not begin laying eggs until early LARVAE LARVAE spring. Eggs are deposited in the soil around the PUPAE PUPAE bases of host plants. Eggs hatch in seven to 10 days ADULTS ADULTS and larvae feed on roots for about three weeks before J F M A M J J A S O N D pupating in the soil. -
2. Banded Cucumber Beetle (Diabrotica Balteata Leconte)
EXOTIC PEST FACT SHEET 2 Banded Cucumber Beetle (Diabrotica balteata LeConte) What are they? What should I look for? How can I protect my industry? Banded cucumber beetle is a serious agricultural pest. Larvae will hatch from small groups of eggs which are Check your production sites frequently for the presence The most frequent damage caused by Banded cucumber laid just under the surface of the soil. Once hatched they of new diseases and unusual symptoms. Make sure you beetle is defoliation by adults and larvae feeding on the cause damage to roots and tubers. Plants with damaged are familiar with common pests and diseases of your roots of seedlings (rootworm). roots will lose vigour, have poor growth and may have industry so you can recognise something different. poor fruit set. Large holes will be left in tubers. What are the main hosts? The Banded cucumber beetle is associated with cucurbits How do they spread? (melons, cucumber and pumpkin), beans, brassicas, As the Banded cucumber beetle larvae burrow and feed kumara, tomato, wheat and maize. on roots and tubers the most likely method of spread is larvae remaining with tubers during shipment. Adults What do they look like? can fly short distances so are unlikely to remain with host plant material during processing and transport. Adults are 5 – 6 mm with a red head. They usually have Their ability to fly will enable them to disperse into yellow bands running across the back with a thin green nearby crops. Eggs may be spread through soil band running lengthwise down the centre (Fig. -
Transcriptome Sequencing of the Striped Cucumber Beetle, Acalymma Vittatum (F.), Reveals Numerous Sex-Specific Transcripts and Xenobiotic Detoxification Genes
Article Transcriptome Sequencing of the Striped Cucumber Beetle, Acalymma vittatum (F.), Reveals Numerous Sex-Specific Transcripts and Xenobiotic Detoxification Genes Michael E. Sparks 1 , David R. Nelson 2 , Ariela I. Haber 1, Donald C. Weber 1 and Robert L. Harrison 1,* 1 Invasive Insect Biocontrol and Behavior Laboratory, USDA-ARS, Beltsville, MD 20705, USA; [email protected] (M.E.S.); [email protected] (A.I.H.); [email protected] (D.C.W.) 2 Department of Microbiology, Immunology and Biochemistry, University of Tennessee Health Science Center, Memphis, TN 38163, USA; [email protected] * Correspondence: [email protected]; Tel.: +1-301-504-5249 Received: 24 September 2020; Accepted: 22 October 2020; Published: 27 October 2020 Abstract: Acalymma vittatum (F.), the striped cucumber beetle, is an important pest of cucurbit crops in the contintental United States, damaging plants through both direct feeding and vectoring of a bacterial wilt pathogen. Besides providing basic biological knowledge, biosequence data for A. vittatum would be useful towards the development of molecular biopesticides to complement existing population control methods. However, no such datasets currently exist. In this study, three biological replicates apiece of male and female adult insects were sequenced and assembled into a set of 630,139 transcripts (of which 232,899 exhibited hits to one or more sequences in NCBI NR). Quantitative analyses identified 2898 genes differentially expressed across the male–female divide, and qualitative analyses characterized the insect’s resistome, comprising the glutathione S-transferase, carboxylesterase, and cytochrome P450 monooxygenase families of xenobiotic detoxification genes. In summary, these data provide useful insights into genes associated with sex differentiation and this beetle’s innate genetic capacity to develop resistance to synthetic pesticides; furthermore, these genes may serve as useful targets for potential use in molecular-based biocontrol technologies. -
Western Corn Rootworm (Diabrotica Virgifera Virgifera Leconte) in Europe: Current Status and Sustainable Pest Management
insects Review Western Corn Rootworm (Diabrotica virgifera virgifera LeConte) in Europe: Current Status and Sustainable Pest Management Renata Bažok 1 , Darija Lemi´c 1 , Francesca Chiarini 2 and Lorenzo Furlan 2,* 1 Department for Agricultural Zoology, Faculty of Agriculture, University of Zagreb, Svetosimunska 25, 10000 Zagreb, Croatia; [email protected] (R.B.); [email protected] (D.L.) 2 Veneto Agricoltura, Agricultural Research Department, 35020 Legnaro, PD, Italy; [email protected] * Correspondence: [email protected]; Tel.: +39-049-829-3879 Simple Summary: Diabrotica virgifera virgifera, also known as western corn rootworm (WCR), is a maize-specific pest that has been a serious threat in Europe since the mid-1990s. Between 1995 and 2010, European countries were involved in international projects to plan pest control strategies. However, since 2011, collaborative efforts have declined and the overview of knowledge on WCR is in great need of updating. Therefore, a review of scientific papers published between 2008 and 2020, in addition to direct interviews with experts responsible for WCR management in several European countries, was conducted to (1) summarize the research conducted over the last 12 years and (2) describe the current WCR distribution and population in the EU, and the management strategies implemented. A considerable amount of new knowledge has been gained over the last 12 years, which has contributed to the development of pest management strategies applicable in EU agricultural systems. There is no EU country reporting economic damage on a large scale. In many countries, solutions based on crop rotation are regularly implemented, avoiding insecticide Citation: Bažok, R.; Lemi´c,D.; use. -
Spotted Cucumber Beetle W
W 487 VEGETABLE PESTS EUROPEAN CORN BORER SPOTTED CUCUMBER BEETLE Frank A. Hale, Professor Robert J. Pivar, Graduate Research Assistant Gary Phillips, Graduate Research Assistant Jerome F. Grant, Professor Department of Entomology and Plant Pathology The spotted cucumber beetle, Diabrotica undecimpunctata (L.), is a widely distributed native species, occurring in most areas A east of the Rocky Mountains, in southern Canada, and in Mexico. It is most abundant and destructive in the southern states. The beetle belongs to the family Chrysomelidae, or leaf beetles. The larval (i.e., immature) stage of spotted cucumber beetle is also known as the southern corn rootworm. Adult spotted cucumber beetles are generalists, feeding on more than 250 plant species, especially cucurbits. Some examples of potential host plants include, but are not limited to, corn, cucumber, pumpkin, squash, soybean, sweet potato, peanut and other legumes. Damage Both adults (Fig. 1A) and larvae (Figs. 1B, 2) are destructive to plants. Adults chew holes in foliage of host plants (Fig. 1A); they also will eat flowers, which may result in lower fruit yields, and occasionally feed on the fruit. Larvae feed on roots and tunnel B through stems (Fig. 1B). Younger plants are more susceptible than more mature plants because of their smaller root system. Adult beetles also may transmit the bacterium, Erwinia tracheiphila (Smith), which causes bacterial wilt. Bacterial wilt is a disease of the vascular tissue that affects members of the cucurbit family. Typical disease symptoms include wilting of individual leaves and ultimately shriveled, dead plants. The bacteria can survive in the gut of the adult and be transmitted via feces or through chewing with contaminated mouthparts. -
Suppression of Tomato Hornworm
ARTICLE IN PRESS Pedobiologia 50 (2006) 23—29 www.elsevier.de/pedobi Suppression of tomato hornworm (Manduca quinquemaculata) and cucumber beetles (Acalymma vittatum and Diabotrica undecimpunctata) populations and damage by vermicomposts Erdal N. Yardim, Norman Q. AranconÃ, Clive A. Edwards, Thomas J. Oliver, Robert J. Byrne Soil Ecology Laboratory, Department of Entomology, The Ohio State University, 400 Aronoff Laboratory, 318 W. 12th Avenue, Columbus, OH 43210, USA Received 6 June 2005; accepted 5 September 2005 KEYWORDS Summary Vermicompost; The effects of food waste vermicompost on populations of adult striped cucumber Arthropod pests; beetles (Acalymma vittatum) and spotted cucumber beetles (Diabotrica undecim- Cucumber beetles; punctata) on cucumbers and larval hornworms on tomatoes (Manduca quinquemacu- Tomato hornworms; lata) were evaluated in both greenhouse and field experiments as well as damage Pest suppression caused. In the field, cucumber and tomato plants were grown, with two different application rates (1.25 and 2.5 t haÀ1) of food waste vermicompost or inorganic fertilizer, in a complete randomized block design field experiment. All treatments were balanced for NPK. Field cucumber beetle populations were suppressed significantly on cucumber plants treated with food waste vermicompost at both application rates, compared with those on plants treated only with inorganic fertilizer. In the greenhouse, cucumber and tomato plants were grown in a soil-less medium MetroMix 360 (MM360) substituted with 0%, 20% or 40% food waste vermicompost, and exposed to standardized pest attacks in nylon mesh cages. In the greenhouse, both the 20% and 40% vermicompost substitution rates decreased damage by cucumber beetles to cucumber foliage and hornworms to tomato foliage significantly. -
Banded Cucumber Beetle, Diabrotica Balteata Leconte (Insecta: Coleoptera: Chrysomelidae)1 John L
EENY-093 Banded Cucumber Beetle, Diabrotica balteata LeConte (Insecta: Coleoptera: Chrysomelidae)1 John L. Capinera2 Introduction and Distribution Larva The banded cucumber beetle is basically a tropical insect, The three instars have mean head capsule widths measuring and until the early 1900s, its distribution in the United about 0.24, 0.35, and 0.51 mm, respectively. The body States was limited to southern Arizona and Texas (Saba length during these instars is reported to be about 2.3, 4.5, 1970), and south through Mexico and Central America and 8.9 mm. Larval color is somewhat variable; initially it is (Krysan 1986). It has since expanded its range throughout white, but may also take on a pale yellow color depending the southern United States from North Carolina to on the food source. Development time is temperature southern California, though its intolerance to freezing dependent, but the range is about 4–8, 3–11, and 4–15 days temperatures probably limits its northward distribution for instars 1 to 3, respectively. Total larval development to its current status. Within Florida it is most abundant in time is usually 11–17 days. the organic soils near Lake Okeechobee, though it occurs throughout the state, where it is known as a vegetable pest. Life Cycle and Description The banded cucumber beetle does not enter diapause (Saba 1970). It remains active as long as the weather remains favorable, with up to six to seven generations per year reported in Louisiana (Pitre and Kantack 1962) and Texas. Under optimal conditions, a life cycle can be completed in 45 days.