Population genetic structure of Antarctic springtails (Collembola) and New Zealand damselflies (Odonata)

Since Darwin (Darwin, 1859), the process of speciation and maintenance of biological diversity has caused intensive debate in the scientific and non-scientific communities alike. The ability to analyze differences in the molecular structure of enzymes and DNA sequences has provided an extremely sens...

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Bibliographic Details
Main Author: Nolan, Liam
Other Authors: Hogg, Ian D.
Format: Thesis
Language:English
Published: The University of Waikato 2019
Subjects:
Online Access:https://hdl.handle.net/10289/12867
id ftunivwaikato:oai:researchcommons.waikato.ac.nz:10289/12867
record_format openpolar
institution Open Polar
collection The University of Waikato: Research Commons
op_collection_id ftunivwaikato
language English
topic Antarctic
Antarctic springtails
New Zealand
spellingShingle Antarctic
Antarctic springtails
New Zealand
Nolan, Liam
Population genetic structure of Antarctic springtails (Collembola) and New Zealand damselflies (Odonata)
topic_facet Antarctic
Antarctic springtails
New Zealand
description Since Darwin (Darwin, 1859), the process of speciation and maintenance of biological diversity has caused intensive debate in the scientific and non-scientific communities alike. The ability to analyze differences in the molecular structure of enzymes and DNA sequences has provided an extremely sensitive tool for investigating gene flow within and among populations, a key facet of the genetic divergence required for speciation to occur. Using such techniques, we are now able to gain a snapshot of the genetic structure of a population and its geographical distribution (Hewitt, 2001) In this way, the phylogeography of species from many environments around the globe have now been studied in fine detail. It has also been possible to generate hypotheses proposing restricted distribution in 'refugia' and subsequent recolonisation after climatic events such as glaciation have occurred. Refugia appear to be particularly important in shaping high latitude biodiversity (Willis & Whittaker, 2000). On such occasions the distribution of different populations may ultimately overlap again at a contact zone, and the species geographical subdivision may provide enough evidence to suggest speciation or the creation of a hybrid zone (Hewitt, 2001 ). In addition, the DNA sequences may yield important information on the evolutionary history, dispersal and taxonomy of various species. Morphologically indistinguishable organisms may be discovered as 'cryptic species', and vice versa, taxa considered to be very different based on observable characteristics can be found to be genetically similar and not reproductively isolated (e.g. Trewick, 2000; Witt & Hebert, 2000). In this way, the genetic diversity within and among closely related species may be determined to a high degree of resolution. In today's climate of human interference and relatively rapid environmental change, it is vital that we appreciate and make full use of the detailed population information available to us. In this way, we may be able to predict and potentially mitigate the consequences of environmental change for organisms by analyzing their evolutionary past. This thesis contains an analysis of molecular data (mtDNA and allozymes) on two arthropod taxa. The thesis consists of two chapters. Chapter I describes the distribution of mitochondrial (mt) DNA haplotypes for the Antarctic springtail Gomphiocephalus hodgsoni (Collembola) in Taylor Valley, southern Victoria Land. The observed distribution was congruent with a hypothesis of multiple refugia during the Pleistocene glaciations and a barrier to gene flow by a glacial lake. Chapter II assesses the genetic variability of the New Zealand damselfly genera (Odonata) from sites throughout the North, South and Chatham islands using both allozyme and mtDNA analyses. All morphologically recognized species were clearly discernible on the basis of both mtDNA and allozymes. However, variability within and among sites was limited for all species, and may have implications from a conservation perspective. The thesis ends with a brief summary section highlighting the main findings contained in the thesis and outlining potential future research directions.
author2 Hogg, Ian D.
format Thesis
author Nolan, Liam
author_facet Nolan, Liam
author_sort Nolan, Liam
title Population genetic structure of Antarctic springtails (Collembola) and New Zealand damselflies (Odonata)
title_short Population genetic structure of Antarctic springtails (Collembola) and New Zealand damselflies (Odonata)
title_full Population genetic structure of Antarctic springtails (Collembola) and New Zealand damselflies (Odonata)
title_fullStr Population genetic structure of Antarctic springtails (Collembola) and New Zealand damselflies (Odonata)
title_full_unstemmed Population genetic structure of Antarctic springtails (Collembola) and New Zealand damselflies (Odonata)
title_sort population genetic structure of antarctic springtails (collembola) and new zealand damselflies (odonata)
publisher The University of Waikato
publishDate 2019
url https://hdl.handle.net/10289/12867
long_lat ENVELOPE(-129.463,-129.463,58.259,58.259)
ENVELOPE(163.000,163.000,-77.617,-77.617)
ENVELOPE(159.450,159.450,-79.367,-79.367)
geographic Antarctic
The Antarctic
Victoria Land
New Zealand
Glacial Lake
Taylor Valley
Willis
geographic_facet Antarctic
The Antarctic
Victoria Land
New Zealand
Glacial Lake
Taylor Valley
Willis
genre Antarc*
Antarctic
Antarctic Springtail
Gomphiocephalus hodgsoni
Victoria Land
Springtail
genre_facet Antarc*
Antarctic
Antarctic Springtail
Gomphiocephalus hodgsoni
Victoria Land
Springtail
op_relation https://hdl.handle.net/10289/12867
op_rights All items in Research Commons are provided for private study and research purposes and are protected by copyright with all rights reserved unless otherwise indicated.
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spelling ftunivwaikato:oai:researchcommons.waikato.ac.nz:10289/12867 2023-05-15T14:00:42+02:00 Population genetic structure of Antarctic springtails (Collembola) and New Zealand damselflies (Odonata) Nolan, Liam Hogg, Ian D. 2019-09-12T22:00:37Z application/pdf https://hdl.handle.net/10289/12867 en eng The University of Waikato https://hdl.handle.net/10289/12867 All items in Research Commons are provided for private study and research purposes and are protected by copyright with all rights reserved unless otherwise indicated. Antarctic Antarctic springtails New Zealand Thesis 2019 ftunivwaikato 2022-03-29T15:15:56Z Since Darwin (Darwin, 1859), the process of speciation and maintenance of biological diversity has caused intensive debate in the scientific and non-scientific communities alike. The ability to analyze differences in the molecular structure of enzymes and DNA sequences has provided an extremely sensitive tool for investigating gene flow within and among populations, a key facet of the genetic divergence required for speciation to occur. Using such techniques, we are now able to gain a snapshot of the genetic structure of a population and its geographical distribution (Hewitt, 2001) In this way, the phylogeography of species from many environments around the globe have now been studied in fine detail. It has also been possible to generate hypotheses proposing restricted distribution in 'refugia' and subsequent recolonisation after climatic events such as glaciation have occurred. Refugia appear to be particularly important in shaping high latitude biodiversity (Willis & Whittaker, 2000). On such occasions the distribution of different populations may ultimately overlap again at a contact zone, and the species geographical subdivision may provide enough evidence to suggest speciation or the creation of a hybrid zone (Hewitt, 2001 ). In addition, the DNA sequences may yield important information on the evolutionary history, dispersal and taxonomy of various species. Morphologically indistinguishable organisms may be discovered as 'cryptic species', and vice versa, taxa considered to be very different based on observable characteristics can be found to be genetically similar and not reproductively isolated (e.g. Trewick, 2000; Witt & Hebert, 2000). In this way, the genetic diversity within and among closely related species may be determined to a high degree of resolution. In today's climate of human interference and relatively rapid environmental change, it is vital that we appreciate and make full use of the detailed population information available to us. In this way, we may be able to predict and potentially mitigate the consequences of environmental change for organisms by analyzing their evolutionary past. This thesis contains an analysis of molecular data (mtDNA and allozymes) on two arthropod taxa. The thesis consists of two chapters. Chapter I describes the distribution of mitochondrial (mt) DNA haplotypes for the Antarctic springtail Gomphiocephalus hodgsoni (Collembola) in Taylor Valley, southern Victoria Land. The observed distribution was congruent with a hypothesis of multiple refugia during the Pleistocene glaciations and a barrier to gene flow by a glacial lake. Chapter II assesses the genetic variability of the New Zealand damselfly genera (Odonata) from sites throughout the North, South and Chatham islands using both allozyme and mtDNA analyses. All morphologically recognized species were clearly discernible on the basis of both mtDNA and allozymes. However, variability within and among sites was limited for all species, and may have implications from a conservation perspective. The thesis ends with a brief summary section highlighting the main findings contained in the thesis and outlining potential future research directions. Thesis Antarc* Antarctic Antarctic Springtail Gomphiocephalus hodgsoni Victoria Land Springtail The University of Waikato: Research Commons Antarctic The Antarctic Victoria Land New Zealand Glacial Lake ENVELOPE(-129.463,-129.463,58.259,58.259) Taylor Valley ENVELOPE(163.000,163.000,-77.617,-77.617) Willis ENVELOPE(159.450,159.450,-79.367,-79.367)