Travis Marsh Invertebrate Inventory & Analysis
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Entomology of the Aucklands and Other Islands South of New Zealand: Lepidoptera, Ex Cluding Non-Crambine Pyralidae
Pacific Insects Monograph 27: 55-172 10 November 1971 ENTOMOLOGY OF THE AUCKLANDS AND OTHER ISLANDS SOUTH OF NEW ZEALAND: LEPIDOPTERA, EX CLUDING NON-CRAMBINE PYRALIDAE By J. S. Dugdale1 CONTENTS Introduction 55 Acknowledgements 58 Faunal Composition and Relationships 58 Faunal List 59 Key to Families 68 1. Arctiidae 71 2. Carposinidae 73 Coleophoridae 76 Cosmopterygidae 77 3. Crambinae (pt Pyralidae) 77 4. Elachistidae 79 5. Geometridae 89 Hyponomeutidae 115 6. Nepticulidae 115 7. Noctuidae 117 8. Oecophoridae 131 9. Psychidae 137 10. Pterophoridae 145 11. Tineidae... 148 12. Tortricidae 156 References 169 Note 172 Abstract: This paper deals with all Lepidoptera, excluding the non-crambine Pyralidae, of Auckland, Campbell, Antipodes and Snares Is. The native resident fauna of these islands consists of 42 species of which 21 (50%) are endemic, in 27 genera, of which 3 (11%) are endemic, in 12 families. The endemic fauna is characterised by brachyptery (66%), body size under 10 mm (72%) and concealed, or strictly ground- dwelling larval life. All species can be related to mainland forms; there is a distinctive pre-Pleistocene element as well as some instances of possible Pleistocene introductions, as suggested by the presence of pairs of species, one member of which is endemic but fully winged. A graph and tables are given showing the composition of the fauna, its distribution, habits, and presumed derivations. Host plants or host niches are discussed. An additional 7 species are considered to be non-resident waifs. The taxonomic part includes keys to families (applicable only to the subantarctic fauna), and to genera and species. -
Processing Tomato Enterprise Management Plan Tomato Potato Psyllid Processing Tomato Enterprise Management Plan
Processing tomato Enterprise management plan Tomato potato psyllid Processing tomato enterprise management plan CONTENTS INTRODUCTION 1 UNDERSTANDING PEST AND PATHOGEN BIOLOGY AND THEIR IDENTIFICATION 2 IDENTIFYING RISK PATHWAYS 5 APPLYING CONTROL AND MANAGEMENT OPTIONS 6 BIOSECURITY AWARENESS AND IMPLEMENTATION 12 MOVEMENT OF FRUIT TO PROCESSING FACILITY 13 PERMIT 14 APPENDIX 1 — Preliminary results 15 APPENDIX 2 — Biological control results 19 APPENDIX 3 — Chemical control results 23 MY NOTES 27 Tomato potato psyllid Processing tomato enterprise management plan 1 INTRODUCTION Tomato potato psyllid (TPP) is supporting ongoing efforts to renew and a serious pest of Processing maintain market access, as well as underpin tomatoes. TPP is the vector certification and assurance schemes. of the bacterium Candidatus Our aim is to build on current best practice Liberibacter solanacearum* to include the management of TPP, without (CLso) which is associated with creating unnecessary additional work. a range of symptoms that affect the production and economic THIS PLAN INCLUDES FIVE KEY performance of your crop. COMPONENTS: TPP WAS FIRST DETECTED TPP was first detected on mainland Australia UNDERSTANDING PEST AND in Western Australia (WA) in February 2017. ON MAINLAND AUSTRALIA PATHOGEN BIOLOGY AND THEIR This prompted a comprehensive biosecurity IN WESTERN AUSTRALIA IN response to minimise the impact of TPP on IDENTIFICATION FEBRUARY 2017. Australian businesses. After national agreement TPP could not be IDENTIFYING RISK PATHWAYS * As at October 2018, surveillance eradicated, efforts focussed on developing the confirms that CLso is not present science, biosecurity and business systems to in WA improve the capacity of growers and industry to manage TPP. APPLYING CONTROL AND An essential component of transition to MANAGEMENT OPTIONS management is the development and implementation of enterprise management plans for affected industries. -
Classical Biological Control of Arthropods in Australia
Classical Biological Contents Control of Arthropods Arthropod index in Australia General index List of targets D.F. Waterhouse D.P.A. Sands CSIRo Entomology Australian Centre for International Agricultural Research Canberra 2001 Back Forward Contents Arthropod index General index List of targets The Australian Centre for International Agricultural Research (ACIAR) was established in June 1982 by an Act of the Australian Parliament. Its primary mandate is to help identify agricultural problems in developing countries and to commission collaborative research between Australian and developing country researchers in fields where Australia has special competence. Where trade names are used this constitutes neither endorsement of nor discrimination against any product by the Centre. ACIAR MONOGRAPH SERIES This peer-reviewed series contains the results of original research supported by ACIAR, or material deemed relevant to ACIAR’s research objectives. The series is distributed internationally, with an emphasis on the Third World. © Australian Centre for International Agricultural Research, GPO Box 1571, Canberra ACT 2601, Australia Waterhouse, D.F. and Sands, D.P.A. 2001. Classical biological control of arthropods in Australia. ACIAR Monograph No. 77, 560 pages. ISBN 0 642 45709 3 (print) ISBN 0 642 45710 7 (electronic) Published in association with CSIRO Entomology (Canberra) and CSIRO Publishing (Melbourne) Scientific editing by Dr Mary Webb, Arawang Editorial, Canberra Design and typesetting by ClarusDesign, Canberra Printed by Brown Prior Anderson, Melbourne Cover: An ichneumonid parasitoid Megarhyssa nortoni ovipositing on a larva of sirex wood wasp, Sirex noctilio. Back Forward Contents Arthropod index General index Foreword List of targets WHEN THE CSIR Division of Economic Entomology, now Commonwealth Scientific and Industrial Research Organisation (CSIRO) Entomology, was established in 1928, classical biological control was given as one of its core activities. -
Ohara\Catalogues\World Genera\Tach
WORLD GENERA OF THE TACHINIDAE (DIPTERA) AND THEIR REGIONAL OCCURRENCE by James E. O’Hara1 23 February 2005 Version 1.0 ________________________ 1 Invertebrate Biodiversity, Agriculture and Agri-Food Canada, 960 Carling Avenue, Ottawa, Ontario, Canada, K1A 0C6. E-mail: [email protected]. TABLE OF CONTENTS Click on a page number to go to the page indicated Foreword ............................................................................................................................... 2 Biogeographic summary ....................................................................................................... 3 Acknowledgements ............................................................................................................... 3 Table of genera and their regional occurrence ...................................................................... 4 References ........................................................................................................................... 66 Select a letter to go directly to corresponding genus in list of world genera A | B | C | D | E | F | G | H | I | J | K | L | M | N | O | P | Q | R | S | T | U | V | W | X | Y | Z FOREWORD The following table is a listing of the tachinid genera of the world with their regional occurrence. It was compiled from the generic names and distributions given in the most recent regional catalogues, as listed here, and brought up-to-date using information from subsequently published papers. Regional catalogues Nearctic Region O’Hara & Wood (2004) Neotropical -
Higher-Level Phylogenetics of Linyphiid Spiders (Araneae, Linyphiidae) Based on Morphological and Molecular Evidence
Cladistics Cladistics 25 (2009) 231–262 10.1111/j.1096-0031.2009.00249.x Higher-level phylogenetics of linyphiid spiders (Araneae, Linyphiidae) based on morphological and molecular evidence Miquel A. Arnedoa,*, Gustavo Hormigab and Nikolaj Scharff c aDepartament Biologia Animal, Universitat de Barcelona, Av. Diagonal 645, E-8028 Barcelona, Spain; bDepartment of Biological Sciences, The George Washington University, Washington, DC 20052, USA; cDepartment of Entomology, Natural History Museum of Denmark, Zoological Museum, University of Copenhagen, Universitetsparken 15, DK-2100 Copenhagen, Denmark Accepted 19 November 2008 Abstract This study infers the higher-level cladistic relationships of linyphiid spiders from five genes (mitochondrial CO1, 16S; nuclear 28S, 18S, histone H3) and morphological data. In total, the character matrix includes 47 taxa: 35 linyphiids representing the currently used subfamilies of Linyphiidae (Stemonyphantinae, Mynogleninae, Erigoninae, and Linyphiinae (Micronetini plus Linyphiini)) and 12 outgroup species representing nine araneoid families (Pimoidae, Theridiidae, Nesticidae, Synotaxidae, Cyatholipidae, Mysmenidae, Theridiosomatidae, Tetragnathidae, and Araneidae). The morphological characters include those used in recent studies of linyphiid phylogenetics, covering both genitalic and somatic morphology. Different sequence alignments and analytical methods produce different cladistic hypotheses. Lack of congruence among different analyses is, in part, due to the shifting placement of Labulla, Pityohyphantes, -
Chrysomela 43.10-8-04
CHRYSOMELA newsletter Dedicated to information about the Chrysomelidae Report No. 43.2 July 2004 INSIDE THIS ISSUE Fabreries in Fabreland 2- Editor’s Page St. Leon, France 2- In Memoriam—RP 3- In Memoriam—JAW 5- Remembering John Wilcox Statue of 6- Defensive Strategies of two J. H. Fabre Cassidine Larvae. in the garden 7- New Zealand Chrysomelidae of the Fabre 9- Collecting in Sholas Forests Museum, St. 10- Fun With Flea Beetle Feces Leons, France 11- Whither South African Cassidinae Research? 12- Indian Cassidinae Revisited 14- Neochlamisus—Cryptic Speciation? 16- In Memoriam—JGE 16- 17- Fabreries in Fabreland 18- The Duckett Update 18- Chrysomelidists at ESA: 2003 & 2004 Meetings 19- Recent Chrysomelid Literature 21- Email Address List 23- ICE—Phytophaga Symposium 23- Chrysomela Questionnaire See Story page 17 Research Activities and Interests Johan Stenberg (Umeå Univer- Duane McKenna (Harvard Univer- Eduard Petitpierre (Palma de sity, Sweden) Currently working on sity, USA) Currently studying phyloge- Mallorca, Spain) Interested in the cy- coevolutionary interactions between ny, ecological specialization, population togenetics, cytotaxonomy and chromo- the monophagous leaf beetles, Altica structure, and speciation in the genus somal evolution of Palearctic leaf beetles engstroemi and Galerucella tenella, and Cephaloleia. Needs Arescini and especially of chrysomelines. Would like their common host plant Filipendula Cephaloleini in ethanol, especially from to borrow or exchange specimens from ulmaria (meadow sweet) in a Swedish N. Central America and S. America. Western Palearctic areas. Archipelago. Amanda Evans (Harvard University, Maria Lourdes Chamorro-Lacayo Stefano Zoia (Milan, Italy) Inter- USA) Currently working on a phylogeny (University of Minnesota, USA) Cur- ested in Old World Eumolpinae and of Leptinotarsa to study host use evolu- rently a graduate student working on Mediterranean Chrysomelidae (except tion. -
Linnaeus at Home
NATURE-BASED ACTIVITIES FOR PARENTS LINNAEUS 1 AT HOME A GuiDE TO EXPLORING NATURE WITH CHILDREN Acknowledgements Written by Joe Burton Inspired by Carl Linnaeus With thanks to editors and reviewers: LINNAEUS Lyn Baber, Melissa Balzano, Jane Banham, Sarah Black, Isabelle Charmantier, Mark Chase, Maarten Christenhusz, Alex Davey, Gareth Dauley, AT HOME Zia Forrai, Jon Hale, Simon Hiscock, Alice ter Meulen, Lynn Parker, Elizabeth Rollinson, James Rosindell, Daryl Stenvoll-Wells, Ross Ziegelmeier Share your explorations @LinneanLearning #LinnaeusAtHome Facing page: Carl Linnaeus paper doll, illustrated in 1953. © Linnean Society of London 2019 All rights reserved. No part of this publication may be reproduced, stored in a retrival system or trasmitted in any form or by any means without the prior consent of the copyright owner. www.linnean.org/learning “If you do not know Introduction the names of things, the knowledge of them is Who was Carl Linnaeus? Contents Pitfall traps 5 lost too” Carl Linnaeus was one of the most influential scientists in the world, - Carl Linnaeus A bust of ‘The Young Linnaeus’ by but you might not know a lot about him. Thanks to Linnaeus, we Bug hunting 9 Anthony Smith (2007). have a naming system for all species so that we can understand how different species are related and can start to learn about the origins Plant hunting 13 of life on Earth. Pond dipping 17 As a young man, Linnaeus would study the animals, plants, Bird feeders 21 minerals and habitats around him. By watching the natural world, he began to understand that all living things are adapted to their Squirrel feeders 25 environments and that they can be grouped together by their characteristics (like animals with backbones, or plants that produce Friendly spaces 29 spores). -
Biodiversity and Ecology of Critically Endangered, Rûens Silcrete Renosterveld in the Buffeljagsrivier Area, Swellendam
Biodiversity and Ecology of Critically Endangered, Rûens Silcrete Renosterveld in the Buffeljagsrivier area, Swellendam by Johannes Philippus Groenewald Thesis presented in fulfilment of the requirements for the degree of Masters in Science in Conservation Ecology in the Faculty of AgriSciences at Stellenbosch University Supervisor: Prof. Michael J. Samways Co-supervisor: Dr. Ruan Veldtman December 2014 Stellenbosch University http://scholar.sun.ac.za Declaration I hereby declare that the work contained in this thesis, for the degree of Master of Science in Conservation Ecology, is my own work that have not been previously published in full or in part at any other University. All work that are not my own, are acknowledge in the thesis. ___________________ Date: ____________ Groenewald J.P. Copyright © 2014 Stellenbosch University All rights reserved ii Stellenbosch University http://scholar.sun.ac.za Acknowledgements Firstly I want to thank my supervisor Prof. M. J. Samways for his guidance and patience through the years and my co-supervisor Dr. R. Veldtman for his help the past few years. This project would not have been possible without the help of Prof. H. Geertsema, who helped me with the identification of the Lepidoptera and other insect caught in the study area. Also want to thank Dr. K. Oberlander for the help with the identification of the Oxalis species found in the study area and Flora Cameron from CREW with the identification of some of the special plants growing in the area. I further express my gratitude to Dr. Odette Curtis from the Overberg Renosterveld Project, who helped with the identification of the rare species found in the study area as well as information about grazing and burning of Renosterveld. -
Insects and Molluscs, According to the Procedures Outlined Below
Bush Blitz – ACT Expedition 26 Nov – 6 Dec 2018 ACT Expedition Bush Blitz Hemiptera, Hymenoptera, Lepidoptera, Orthoptera, Terrestrial molluscs 26 Nov – 6 Dec 2018 Submitted: 5 April 2019 Debbie Jennings and Olivia Evangelista Nomenclature and taxonomy used in this report is consistent with: The Australian Faunal Directory (AFD) http://www.environment.gov.au/biodiversity/abrs/online-resources/fauna/afd/home Page 1 of 43 Bush Blitz – ACT Expedition 26 Nov – 6 Dec 2018 Contents Contents .................................................................................................................................. 2 List of contributors ................................................................................................................... 3 Abstract ................................................................................................................................... 4 1. Introduction ...................................................................................................................... 4 2. Methods .......................................................................................................................... 6 2.1 Site selection ............................................................................................................. 6 2.2 Survey techniques ..................................................................................................... 6 2.2.1 Methods used at standard survey sites ................................................................... 7 2.3 Identifying -
Three New Species of Epipompilus Kohl (Hymenoptera, Pompilidae, Pepsinae) from Australia
Zootaxa 4743 (4): 575–584 ISSN 1175-5326 (print edition) https://www.mapress.com/j/zt/ Article ZOOTAXA Copyright © 2020 Magnolia Press ISSN 1175-5334 (online edition) https://doi.org/10.11646/zootaxa.4743.4.7 http://zoobank.org/urn:lsid:zoobank.org:pub:419B7E6B-B0B0-49C8-A139-E8130705B993 Three new species of Epipompilus Kohl (Hymenoptera, Pompilidae, Pepsinae) from Australia DAVID YUAN1,2,3 & JUANITA RODRIGUEZ2 1Research School of Biology, Australian National University, Canberra, ACT 2601, Australia. 2Australian National Insect Collection, CSIRO National Research Collections Australian, Canberra, ACT 2601, Australia. 3E-mail: [email protected] David Yuan: http://zoobank.org/urn:lsid:zoobank.org:author:C43C652E-351E-4F6F-8F6F-5FCB1FA8E3C6 Juanita Rodriguez: http://zoobank.org/urn:lsid:zoobank.org:author:E7B4A96C-1504-4498-AD8E-D652E4E30696 Abstract Three new species are added to the genus Epipompilus (Hymenoptera: Pompilidae) in Australia. Epipompilus mirabundus sp. nov., E. taree sp. nov., and E. namadgi sp. nov. are described and illustrated. A key to males of Epipompilus is provided. A novel association of Epipompilus and Sceliphron formosum (Hymenoptera: Sphecidae) is also documented. The larva of E. mirabundus sp. nov. was found sharing single nest cell with a Sceliphron larva; this association could be the result of a parasitised spider being brought back to the nest by the Sceliphron adult. Key words: Spider wasps, mud dauber wasps, Epipompilus, Sceliphron formosum Introduction Pompilidae are ectoparasitoid wasps with more than 5,000 species distributed worldwide (Pitts et al. 2006). Most species are solitary and known as spider wasps from their diet, where adult females usually use spiders as a food provender for their larvae (Wasbaeur 1995). -
ARTHROPODA Subphylum Hexapoda Protura, Springtails, Diplura, and Insects
NINE Phylum ARTHROPODA SUBPHYLUM HEXAPODA Protura, springtails, Diplura, and insects ROD P. MACFARLANE, PETER A. MADDISON, IAN G. ANDREW, JOCELYN A. BERRY, PETER M. JOHNS, ROBERT J. B. HOARE, MARIE-CLAUDE LARIVIÈRE, PENELOPE GREENSLADE, ROSA C. HENDERSON, COURTenaY N. SMITHERS, RicarDO L. PALMA, JOHN B. WARD, ROBERT L. C. PILGRIM, DaVID R. TOWNS, IAN McLELLAN, DAVID A. J. TEULON, TERRY R. HITCHINGS, VICTOR F. EASTOP, NICHOLAS A. MARTIN, MURRAY J. FLETCHER, MARLON A. W. STUFKENS, PAMELA J. DALE, Daniel BURCKHARDT, THOMAS R. BUCKLEY, STEVEN A. TREWICK defining feature of the Hexapoda, as the name suggests, is six legs. Also, the body comprises a head, thorax, and abdomen. The number A of abdominal segments varies, however; there are only six in the Collembola (springtails), 9–12 in the Protura, and 10 in the Diplura, whereas in all other hexapods there are strictly 11. Insects are now regarded as comprising only those hexapods with 11 abdominal segments. Whereas crustaceans are the dominant group of arthropods in the sea, hexapods prevail on land, in numbers and biomass. Altogether, the Hexapoda constitutes the most diverse group of animals – the estimated number of described species worldwide is just over 900,000, with the beetles (order Coleoptera) comprising more than a third of these. Today, the Hexapoda is considered to contain four classes – the Insecta, and the Protura, Collembola, and Diplura. The latter three classes were formerly allied with the insect orders Archaeognatha (jumping bristletails) and Thysanura (silverfish) as the insect subclass Apterygota (‘wingless’). The Apterygota is now regarded as an artificial assemblage (Bitsch & Bitsch 2000). -
On the Australian Linyphiid Spider Alaxchelicera Ordinaria Butler, 1932 (Araneae)
Zootaxa 3750 (2): 193–196 ISSN 1175-5326 (print edition) www.mapress.com/zootaxa/ Correspondence ZOOTAXA Copyright © 2013 Magnolia Press ISSN 1175-5334 (online edition) http://dx.doi.org/10.11646/zootaxa.3750.2.8 http://zoobank.org/urn:lsid:zoobank.org:pub:9515170F-60D0-43D3-A936-81E16EBEE6C3 On the Australian linyphiid spider Alaxchelicera ordinaria Butler, 1932 (Araneae) NIKOLAJ SCHARFF1 & GUSTAVO HORMIGA2 1Natural History Museum of Denmark, Zoological Museum and Center for Macroecology, Evolution and Climate, Universitetsparken 15, DK-2100 Copenhagen, Denmark. E-mail: [email protected] 2Department of Biological Sciences, The George Washington University, Washington, D.C. 20052, USA. E-mail: [email protected] Very few studies have addressed the linyphiid fauna of Australia. Most of the existing taxonomic work on Australian linyphiids consists of isolated species descriptions (e.g., Rainbow 1912) or at most are based on small number of species also described outside a revisionary context (e.g., Wunderlich 1976) (but see van Helsdingen 1972 for a revision of the Australian species of the genera Laperousea Dalmas, 1917 and Laetesia Simon, 1908). Microctenonyx subitaneus (O. P.-Cambridge, 1875) is a Holarctic erigonine (Linyphiidae) which has been introduced in many parts of the world, including Australia (Brennan 2004). In this paper we report a new junior synonym of Microctenonyx subitaneus described by Butler (1932) under the name Alaxchelicera ordinaria Butler, 1932. In 1932 L.S.G. Butler, a Melbourne-based arachnologist, published a paper in which he described six new spider genera from Victoria and New South Wales, all of them monotypic. Three of these new genera (Microlinypheus, Plectochetos and Alaxchelicera) he placed in the family Linyphiidae, the remaining three (Platycephala, Eterosonycha and Perissopmeros) were placed in Zodariidae.