Moths Postfire to Feb16 2021 by Species
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Self-Repair and Self-Cleaning of the Lepidopteran Proboscis
Clemson University TigerPrints All Dissertations Dissertations 8-2019 Self-Repair and Self-Cleaning of the Lepidopteran Proboscis Suellen Floyd Pometto Clemson University, [email protected] Follow this and additional works at: https://tigerprints.clemson.edu/all_dissertations Recommended Citation Pometto, Suellen Floyd, "Self-Repair and Self-Cleaning of the Lepidopteran Proboscis" (2019). All Dissertations. 2452. https://tigerprints.clemson.edu/all_dissertations/2452 This Dissertation is brought to you for free and open access by the Dissertations at TigerPrints. It has been accepted for inclusion in All Dissertations by an authorized administrator of TigerPrints. For more information, please contact [email protected]. SELF-REPAIR AND SELF-CLEANING OF THE LEPIDOPTERAN PROBOSCIS A Dissertation Presented to the Graduate School of Clemson University In Partial Fulfillment of the Requirements for the Degree Doctor of Philosophy ENTOMOLOGY by Suellen Floyd Pometto August 2019 Accepted by: Dr. Peter H. Adler, Major Advisor and Committee Co-Chair Dr. Eric Benson, Committee Co-Chair Dr. Richard Blob Dr. Patrick Gerard i ABSTRACT The proboscis of butterflies and moths is a key innovation contributing to the high diversity of the order Lepidoptera. In addition to taking nectar from angiosperm sources, many species take up fluids from overripe or sound fruit, plant sap, animal dung, and moist soil. The proboscis is assembled after eclosion of the adult from the pupa by linking together two elongate galeae to form one tube with a single food canal. How do lepidopterans maintain the integrity and function of the proboscis while foraging from various substrates? The research questions included whether lepidopteran species are capable of total self- repair, how widespread the capability of self-repair is within the order, and whether the repaired proboscis is functional. -
NON-REGULATED PESTS (Non-Actionable)
Import Health Standard Commodity Sub-class: Fresh Fruit/Vegetables Grape, Vitis vinifera from Australia ISSUED Issued pursuant to Section 22 of the Biosecurity Act 1993 Date Issued: 20 December 2000 1 NEW ZEALAND NATIONAL PLANT PROTECTION ORGANISATION The official contact point in New Zealand for overseas NPPOs is the Ministry for Primary Industries (MPI). All communication pertaining to this import health standard should be addressed to: Manager, Import and Export Plants Ministry for Primary Industries PO Box 2526 Wellington NEW ZEALAND Fax: 64-4-894 0662 E-mail: [email protected] http://www.mpi.govt.nz 2 GENERAL CONDITIONS FOR ALL PLANT PRODUCTS All plants and plant products are PROHIBITED entry into New Zealand, unless an import health standard has been issued in accordance with Section 22 of the Biosecurity Act 1993. Should prohibited plants or plant products be intercepted by MPI, the importer will be offered the option of reshipment or destruction of the consignment. The national plant protection organisation of the exporting country is requested to inform MPI of any change in its address. The national plant protection organisation of the exporting country is required to inform MPI of any newly recorded organisms which may infest/infect any commodity approved for export to New Zealand. Pursuant to the Hazardous Substances and New Organisms Act 1996, proposals for the deliberate introduction of new organisms (including genetically modified organisms) as defined by the Act should be referred to: IHS Fresh Fruit/Vegetables. Grape, Vitis vinifera from Australia. (Biosecurity Act 1993) ISSUED: 20 December 2000 Page 1 of 16 Environmental Protection Authority Private Bag 63002 Wellington 6140 NEW ZEALAND Or [email protected],nz Note: In order to meet the Environmental Protection Authority requirements the scientific name (i.e. -
Castlemaine Naturalist April 2012 Vol
Castlemaine Naturalist April 2012 Vol. 37.3 #397 Monthly newsletter of the Castlemaine Field Naturalists Club Inc. Plume moth Stangeia xerodes Maldon Photo – Noel Young Carpets in the Mt Alexander Shire. By Chris Timewell Using information from the third volume of the Moths of Victoria, moth species from the subfamily Sterrhinae (commonly known as Waves) that potentially occur in the Mount Alexander shire were addressed in a Castlemaine Naturalist article in late 2011. This present article addresses the moths from the subfamily Larentiinae potentially occurring in the Mount Alexander Shire, also based on information from the third volume of the Moths of Victoria. The Larentiinae are also known as Carpets, due to the patterns on their wings. They are small to medium sized moths. They often have transverse markings on their wings, and are usually inconspicuous when they hold their wings flat against the surface on which they are resting. There are approximately 140 species known to occur within Victoria. Using the distribution maps and other accompanying information provided on the CD that comes with volume 3 of the Moths of Victoria, the two tables below list the Carpet moths that are either known to occur or potentially occur in the Mt Alexander Shire. Victorian species that are unlikely to occur here are not listed. In summary, from the ~140 Carpet moth species from 24 different genus that are known to occur in Victoria, at least 17 species from seven genus have been confirmed as occurring in the Mt Alexander Shire (Table 1). Another 45 species from 15 of the 24 genus are predicted to potentially occur in the shire (Table 2), with the remaining ~80 species unlikely to occur here ever. -
Beginners' Guide to Macro Moths: Te Hiku
NZ moths are special many whakatauki written about the Why we need to trap the moths Why do we need to study moths? More than 86% of the known moths caterpillar and its capacity to eat. Who benefits from Moths are mainly out at night, so Moths breed fast and have lots of in NZ are endemic. They only occur studying moths? most people don’t see how many offspring. There are lots of different in NZ so we have to look after A more recent pest is the codling there are or what’s happening moth species playing different roles them.. moth (Cydia pomonella). Introduced to them. Unfortunately we need in the ecosystem. Moths have links Beginners’ Guide to Society from Europe, it attacks apples, You & I specimens for identification. to lots of other species (e.g. plants, Macro Moths Why are moths important? pears, walnuts, and other fruit. birds, introduced pests, other Moths are a key part of the wider Nature Why we need standardised data invertebrates). Moths have a bad reputation for ecosystem and they sit in the If we all use the same type of trap eating clothes, especially natural centre of a complex food web. The (e.g. a Heath Moth Trap) we can If something is changing in the Te Hiku fibres like wool, silk, and fur. In caterpillars are herbivores eating a compare data from different places ecosystem, moths are amongst reality there are very few moth range of native plants. and over time. With standardised the first creatures to respond. They species whose caterpillars eat Education information we can all work are likely to be good indicators of clothes. -
Insecta: Lepidoptera) SHILAP Revista De Lepidopterología, Vol
SHILAP Revista de Lepidopterología ISSN: 0300-5267 [email protected] Sociedad Hispano-Luso-Americana de Lepidopterología España Vives Moreno, A.; Gastón, J. Contribución al conocimiento de los Microlepidoptera de España, con la descripción de una especie nueva (Insecta: Lepidoptera) SHILAP Revista de Lepidopterología, vol. 45, núm. 178, junio, 2017, pp. 317-342 Sociedad Hispano-Luso-Americana de Lepidopterología Madrid, España Disponible en: http://www.redalyc.org/articulo.oa?id=45551614016 Cómo citar el artículo Número completo Sistema de Información Científica Más información del artículo Red de Revistas Científicas de América Latina, el Caribe, España y Portugal Página de la revista en redalyc.org Proyecto académico sin fines de lucro, desarrollado bajo la iniciativa de acceso abierto SHILAP Revta. lepid., 45 (178) junio 2017: 317-342 eISSN: 2340-4078 ISSN: 0300-5267 Contribución al conocimiento de los Microlepidoptera de España, con la descripción de una especie nueva (Insecta: Lepidoptera) A. Vives Moreno & J. Gastón Resumen Se describe una especie nueva Oinophila blayi Vives & Gastón, sp. n. Se registran dos géneros Niphonympha Meyrick, 1914, Sardzea Amsel, 1961 y catorce especies nuevas para España: Niphonympha dealbatella Zeller, 1847, Tinagma balteolella (Fischer von Rösslerstamm, [1841] 1834), Alloclita francoeuriae Walsingham, 1905 (Islas Ca- narias), Epicallima bruandella (Ragonot, 1889), Agonopterix astrantiae (Heinemann, 1870), Agonopterix kuznetzovi Lvovsky, 1983, Depressaria halophilella Chrétien, 1908, Depressaria cinderella Corley, 2002, Metzneria santoline- lla (Amsel, 1936), Phtheochroa sinecarina Huemer, 1990 (Islas Canarias), Sardzea diviselloides Amsel, 1961, Pem- pelia coremetella (Amsel, 1949), Epischnia albella Amsel, 1954 (Islas Canarias) y Metasia cyrnealis Schawerda, 1926. Se citan como nuevas para las Islas Canarias Eucosma cana (Haworth, 1811) y Cydia blackmoreana (Wal- singham, 1903). -
197 Section 9 Sunflower (Helianthus
SECTION 9 SUNFLOWER (HELIANTHUS ANNUUS L.) 1. Taxonomy of the Genus Helianthus, Natural Habitat and Origins of the Cultivated Sunflower A. Taxonomy of the genus Helianthus The sunflower belongs to the genus Helianthus in the Composite family (Asterales order), which includes species with very diverse morphologies (herbs, shrubs, lianas, etc.). The genus Helianthus belongs to the Heliantheae tribe. This includes approximately 50 species originating in North and Central America. The basis for the botanical classification of the genus Helianthus was proposed by Heiser et al. (1969) and refined subsequently using new phenological, cladistic and biosystematic methods, (Robinson, 1979; Anashchenko, 1974, 1979; Schilling and Heiser, 1981) or molecular markers (Sossey-Alaoui et al., 1998). This approach splits Helianthus into four sections: Helianthus, Agrestes, Ciliares and Atrorubens. This classification is set out in Table 1.18. Section Helianthus This section comprises 12 species, including H. annuus, the cultivated sunflower. These species, which are diploid (2n = 34), are interfertile and annual in almost all cases. For the majority, the natural distribution is central and western North America. They are generally well adapted to dry or even arid areas and sandy soils. The widespread H. annuus L. species includes (Heiser et al., 1969) plants cultivated for seed or fodder referred to as H. annuus var. macrocarpus (D.C), or cultivated for ornament (H. annuus subsp. annuus), and uncultivated wild and weedy plants (H. annuus subsp. lenticularis, H. annuus subsp. Texanus, etc.). Leaves of these species are usually alternate, ovoid and with a long petiole. Flower heads, or capitula, consist of tubular and ligulate florets, which may be deep purple, red or yellow. -
1 General Introduction
1 General Introduction If the karate-ka (student) shall walk the true path, first he will cast aside all preference. Tatsuo Shimabuku, Grand Master of Isshin-ryu Karate 1.1 The Importance of Insects ~30% of the plants we grow for food and materials. Because of their great numbers and diversity, insects Insects transmit some of these pathogens. While have a considerable impact on human life and indus- weeds can often reduce pest attack, they can also try, particularly away from cities and in the tropics. harbour the pest’s enemies or provide alternative On the positive side they form a large and irreplace- resources for the pest itself. Then in storage, insects, able part of the ecosystem, especially as pollinators mites, rodents and fungi cause a further 30% loss. of fruit and vegetable crops and, of course, many Apart from such biotic damage, severe physical con- wild plants (Section 8.2.1). They also have a place ditions such as drought, storms and flooding cause in soil formation (Section 8.2.4) and are being used additional losses. For example, under ideal field increasingly in ‘greener’ methods of pest control. conditions new wheat varieties (e.g. Agnote and Biological control using insects as predators and Humber) would give yields of ~16 tonnes/ha, but parasites of pest insects has been developed in the produce typically about half this under good hus- West for over a century, and much longer in China. bandry. Pre-harvest destruction due only to insects More recently integrated pest management (IPM) is 10–13% (Pimentel et al., 1984; Thacker, 2002). -
Report-VIC-Croajingolong National Park-Appendix A
Croajingolong National Park, Victoria, 2016 Appendix A: Fauna species lists Family Species Common name Mammals Acrobatidae Acrobates pygmaeus Feathertail Glider Balaenopteriae Megaptera novaeangliae # ~ Humpback Whale Burramyidae Cercartetus nanus ~ Eastern Pygmy Possum Canidae Vulpes vulpes ^ Fox Cervidae Cervus unicolor ^ Sambar Deer Dasyuridae Antechinus agilis Agile Antechinus Dasyuridae Antechinus mimetes Dusky Antechinus Dasyuridae Sminthopsis leucopus White-footed Dunnart Felidae Felis catus ^ Cat Leporidae Oryctolagus cuniculus ^ Rabbit Macropodidae Macropus giganteus Eastern Grey Kangaroo Macropodidae Macropus rufogriseus Red Necked Wallaby Macropodidae Wallabia bicolor Swamp Wallaby Miniopteridae Miniopterus schreibersii oceanensis ~ Eastern Bent-wing Bat Muridae Hydromys chrysogaster Water Rat Muridae Mus musculus ^ House Mouse Muridae Rattus fuscipes Bush Rat Muridae Rattus lutreolus Swamp Rat Otariidae Arctocephalus pusillus doriferus ~ Australian Fur-seal Otariidae Arctocephalus forsteri ~ New Zealand Fur Seal Peramelidae Isoodon obesulus Southern Brown Bandicoot Peramelidae Perameles nasuta Long-nosed Bandicoot Petauridae Petaurus australis Yellow Bellied Glider Petauridae Petaurus breviceps Sugar Glider Phalangeridae Trichosurus cunninghami Mountain Brushtail Possum Phalangeridae Trichosurus vulpecula Common Brushtail Possum Phascolarctidae Phascolarctos cinereus Koala Potoroidae Potorous sp. # ~ Long-nosed or Long-footed Potoroo Pseudocheiridae Petauroides volans Greater Glider Pseudocheiridae Pseudocheirus peregrinus -
Phylogeny and Evolution of Lepidoptera
EN62CH15-Mitter ARI 5 November 2016 12:1 I Review in Advance first posted online V E W E on November 16, 2016. (Changes may R S still occur before final publication online and in print.) I E N C N A D V A Phylogeny and Evolution of Lepidoptera Charles Mitter,1,∗ Donald R. Davis,2 and Michael P. Cummings3 1Department of Entomology, University of Maryland, College Park, Maryland 20742; email: [email protected] 2Department of Entomology, National Museum of Natural History, Smithsonian Institution, Washington, DC 20560 3Laboratory of Molecular Evolution, Center for Bioinformatics and Computational Biology, University of Maryland, College Park, Maryland 20742 Annu. Rev. Entomol. 2017. 62:265–83 Keywords Annu. Rev. Entomol. 2017.62. Downloaded from www.annualreviews.org The Annual Review of Entomology is online at Hexapoda, insect, systematics, classification, butterfly, moth, molecular ento.annualreviews.org systematics This article’s doi: Access provided by University of Maryland - College Park on 11/20/16. For personal use only. 10.1146/annurev-ento-031616-035125 Abstract Copyright c 2017 by Annual Reviews. Until recently, deep-level phylogeny in Lepidoptera, the largest single ra- All rights reserved diation of plant-feeding insects, was very poorly understood. Over the past ∗ Corresponding author two decades, building on a preceding era of morphological cladistic stud- ies, molecular data have yielded robust initial estimates of relationships both within and among the ∼43 superfamilies, with unsolved problems now yield- ing to much larger data sets from high-throughput sequencing. Here we summarize progress on lepidopteran phylogeny since 1975, emphasizing the superfamily level, and discuss some resulting advances in our understanding of lepidopteran evolution. -
List of Moth Species April Lightsheet
Moth species recorded during April 2019 lightsheet Abantiades aphenges Glyphidoptera polymita Pernattia pusilla Abantiades hyalinatus Halone sejuncta Plesanemma fucata Abantiades labyrinthicus Halone sejuncta Poecilasthena pulchraria Achyra affinitalis Hednota sp. Pollanisus sp. Agriophara sp. Hellula hydralis Proteuxoa sp. Alapadna pauropis Hypobapta tachyhalotaria Proteuxoa tortisigna Anthela varia Idea costaria Pseudanapaea transvestita Arrade leucocosmalis Labdia chryselectra Psilosticha sp. Asura lydia Lecithocera imprudens Pterolocera leucocera Capusa sp. Lepidoscia characota Rhuma sp. Catoryctis subparallela Lepidoscia sp. Scioglyptis chionomera Chenuala heliapsis Lichenaula tholodes Scoliacma nana Chiriphe dichotoma Limnaecia camptosema Scoparia exhibitalis Chloroclystis metallospora Limnaecia sp. Softa concavata Chlorocoma dichloraria Lychnographa agaura Stathmopoda sp. Chlorocoma sp. Macrobathra chrysotoxa Stibaroma sp. Chlorocoma stereota Macrobathra desmotoma Syneora euboliaria Circopetes obtusata Metasia capnochroa Termessa gratiosa Cosmodes elegans Microdes squamulata Thalaina clara Crocanthes micradelpha Mimaglossa nauplialis Thalaina selenaea Crypsiphona ocultaria Mnesampela lenae Thallarcha phalarota Cryptoptila australana Monoctenia smerintharia Threnosia heminephes Culladia cuneiferellus Monoctenia sp. Thrincophora lignigerana Detounda leptoplasta Monopis crocicapitella Tigrioides alterna Discophlebia sp. Munychryia senicula Tortricinae sp. Dissomorphia australiaria Musotima nitidalis Trichiocercus sparshalli Epidesmia -
The Lepidoptera Rapa Island
J. F. GATES CLA, The Lepidoptera Rapa Island SMITHSONIAN CONTRIBUTIONS TO ZOOLOGY • 1971 NUMBER 56 .-24 f O si % r 17401 •% -390O i 112100) 0 is -•^ i BLAKE*w 1PLATEALP I5 i I >k =(M&2l2Jo SMITHSONIAN CONTRIBUTIONS TO ZOOLOGY NUMBER 56 j. F. Gates Clarke The Lepidoptera of Rapa Island SMITHSONIAN INSTITUTION PRESS CITY OF WASHINGTON 1971 SERIAL PUBLICATIONS OF THE SMITHSONIAN INSTITUTION The emphasis upon publications as a means of diffusing knowledge was expressed by the first Secretary of the Smithsonian Institution. In his formal plan for the Insti- tution, Joseph Henry articulated a program that included the following statement: "It is proposed to publish a series of reports, giving an account of the new discoveries in science, and of the changes made from year to year in all branches of knowledge not strictly professional." This keynote of basic research has been adhered to over the years in the issuance of thousands of titles in serial publications under the Smithsonian imprint, commencing with Smithsonian Contributions to Knowledge in 1848 and continuing with the following active series: Smithsonian Annals of Flight Smithsonian Contributions to Anthropology Smithsonian Contributions to Astrophysics Smithsonian Contributions to Botany Smithsonian Contributions to the Earth Sciences Smithsonian Contributions to Paleobiology Smithsonian Contributions to Zoology Smithsonian Studies in History and Technology In these series, the Institution publishes original articles and monographs dealing with the research and collections of its several museums and offices and of professional colleagues at other institutions of learning. These papers report newly acquired facts, synoptic interpretations of data, or original theory in specialized fields. -
Bosco Palazzi
SHILAP Revista de Lepidopterología ISSN: 0300-5267 ISSN: 2340-4078 [email protected] Sociedad Hispano-Luso-Americana de Lepidopterología España Bella, S; Parenzan, P.; Russo, P. Diversity of the Macrolepidoptera from a “Bosco Palazzi” area in a woodland of Quercus trojana Webb., in southeastern Murgia (Apulia region, Italy) (Insecta: Lepidoptera) SHILAP Revista de Lepidopterología, vol. 46, no. 182, 2018, April-June, pp. 315-345 Sociedad Hispano-Luso-Americana de Lepidopterología España Available in: https://www.redalyc.org/articulo.oa?id=45559600012 How to cite Complete issue Scientific Information System Redalyc More information about this article Network of Scientific Journals from Latin America and the Caribbean, Spain and Journal's webpage in redalyc.org Portugal Project academic non-profit, developed under the open access initiative SHILAP Revta. lepid., 46 (182) junio 2018: 315-345 eISSN: 2340-4078 ISSN: 0300-5267 Diversity of the Macrolepidoptera from a “Bosco Palazzi” area in a woodland of Quercus trojana Webb., in southeastern Murgia (Apulia region, Italy) (Insecta: Lepidoptera) S. Bella, P. Parenzan & P. Russo Abstract This study summarises the known records of the Macrolepidoptera species of the “Bosco Palazzi” area near the municipality of Putignano (Apulia region) in the Murgia mountains in southern Italy. The list of species is based on historical bibliographic data along with new material collected by other entomologists in the last few decades. A total of 207 species belonging to the families Cossidae (3 species), Drepanidae (4 species), Lasiocampidae (7 species), Limacodidae (1 species), Saturniidae (2 species), Sphingidae (5 species), Brahmaeidae (1 species), Geometridae (55 species), Notodontidae (5 species), Nolidae (3 species), Euteliidae (1 species), Noctuidae (96 species), and Erebidae (24 species) were identified.