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202 results for “Australian endemics”

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zenodo36/100

FIGURE 1 in A revision of the Western Australian endemic humicolous beetle genus Tympallopatrum Perkins (Coleoptera: Hydraenidae)

FIGURE 1. Tympallopatrum longitudum holotype, dorsal and lateral habitus.

opencc-zeroDec 2004View details →
zenodo36/100

FIGURE 3 in A revision of the Western Australian endemic humicolous beetle genus Tympallopatrum Perkins (Coleoptera: Hydraenidae)

FIGURE 3. Tympallopatrum curvicostum holotype, dorsal and lateral habitus.

opencc-zeroDec 2004View details →
zenodo36/100

FIGURE 2 in A revision of the Western Australian endemic humicolous beetle genus Tympallopatrum Perkins (Coleoptera: Hydraenidae)

FIGURE 2. Tympallopatrum aureolum holotype, dorsal and lateral habitus.

opencc-zeroDec 2004View details →
zenodo36/100

FIGURE 3 in A revision of the Australian endemic water beetle genus Gymnanthelius Perkins (Coleoptera: Hydraenidae)

FIGURE 3. Gymnanthelius cupreus holotype. Dorsal and lateral habitus.

opencc-zeroDec 2004View details →
zenodo36/100

FIGURE 8 in A revision of the Australian endemic water beetle genus Gymnanthelius Perkins (Coleoptera: Hydraenidae)

FIGURE 8. Gymnanthelius tunicus holotype. Dorsal and lateral habitus.

opencc-zeroDec 2004View details →
zenodo36/100

FIGURE 2 in A revision of the Australian endemic water beetle genus Gymnanthelius Perkins (Coleoptera: Hydraenidae)

FIGURE 2. Gymnanthelius clypeatus holotype. Dorsal and lateral habitus.

opencc-zeroDec 2004View details →
zenodo36/100

FIGURE 7 in A revision of the Australian endemic water beetle genus Gymnanthelius Perkins (Coleoptera: Hydraenidae)

FIGURE 7. Gymnanthelius hieroglyphicus holotype. Dorsal and lateral habitus.

opencc-zeroDec 2004View details →
zenodo36/100

FIGURE 1 in A revision of the Australian endemic water beetle genus Gymnanthelius Perkins (Coleoptera: Hydraenidae)

FIGURE 1. Gymnanthelius porchi holotype. Dorsal structures and sculpture.

opencc-zeroDec 2004View details →
zenodo36/100

FIGURE 9 in A revision of the Australian endemic water beetle genus Gymnanthelius Perkins (Coleoptera: Hydraenidae)

FIGURE 9. Gymnanthelius maxipunctus holotype. Dorsal and lateral habitus.

opencc-zeroDec 2004View details →
zenodo36/100

FIGURE 5 in A revision of the Australian endemic water beetle genus Gymnanthelius Perkins (Coleoptera: Hydraenidae)

FIGURE 5. Gymnanthelius porchi holotype. Dorsal and lateral habitus.

opencc-zeroDec 2004View details →
zenodo36/100

FIGURE 6 in A revision of the Australian endemic water beetle genus Gymnanthelius Perkins (Coleoptera: Hydraenidae)

FIGURE 6. Gymnanthelius opacicollis holotype. Dorsal and lateral habitus.

opencc-zeroDec 2004View details →
zenodo36/100

FIGURE 4 in A revision of the Australian endemic water beetle genus Gymnanthelius Perkins (Coleoptera: Hydraenidae)

FIGURE 4. Gymnanthelius lamingtonensis holotype. Dorsal and lateral habitus.

opencc-zeroDec 2004View details →
dryad36/100

Data from: Lineage diversity within a widespread endemic Australian skink to better inform conservation in response to regional-scale disturbance

<p>This dataset was used to examine the phylogeographic genetic structure of Eastern three lined skink<em> Bassiana duperreyi</em>. It comprises  SNP data used for population genetics and phylogenetic reconstruction. The data were used to provide foundational work for the detailed taxonomic re-evaluation of this species complex and to reinforce the need for biodiversity assessment to include an examination of cryptic species and/or cryptic diversity below the level of species. Such information on lineage diversity within species and its distribution in the context of disturbance at a regional scale can be factored into conservation planning regardless of whether a decision is made to formally diagnose new species taxonomically and nomenclaturally.</p>

opencc-zeroFeb 2024View details →
zenodo36/100

Fig. 1 in A Revision of the Australian Endemic Clam Shrimp Genus Limnadopsis Spencer & Hall (Crustacea: Branchiopoda: Spinicaudata: Limnadiidae)

Fig. 1. General view of Limnadopsis pilbarensis n.sp. Drawn by Jane McRae.

opencc-by-4.0May 2009View details →
zenodo36/100

Figs. 120–122 in The Goblin Spiders of the New Endemic Australian Genus Cavisternum (Araneae: Oonopidae)

Figs. 120–122. Cavisternum gatangel, new species, male palp (PBI_OON 06070). 120. Prolateral view.

opencc-by-4.0Mar 2010View details →
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Figs. 63–66 in The Goblin Spiders of the New Endemic Australian Genus Cavisternum (Araneae: Oonopidae)

Figs. 63–66. Cavisternum clavatum, new species, male metatarsal trichobothria (PBI_OON 04906). 63.

opencc-by-4.0Mar 2010View details →
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Figs. 171–173 in The Goblin Spiders of the New Endemic Australian Genus Cavisternum (Araneae: Oonopidae)

Figs. 171–173. Cavisternum waldockae, new species, male palp (PBI_OON 05444). 171. Prolateral view.

opencc-by-4.0Mar 2010View details →
zenodo36/100

Figs. 42–43. Cavisternum clavatum, new species. 42 in The Goblin Spiders of the New Endemic Australian Genus Cavisternum (Araneae: Oonopidae)

Figs. 42–43. Cavisternum clavatum, new species. 42. Male (PBI_OON 04906) abdomen, lateral view. 43.

opencc-by-4.0Mar 2010View details →
dryad36/100

Does ivermectin treatment for endemic hookworm infection alter the gut microbiota of endangered Australian sea lion pups?

<p>The gut microbiota is essential for the development and maintenance of the hosts' immune system. Disturbances to the gut microbiota in early life stages can result in long-lasting impacts on host health. This study aimed to determine if topical ivermectin treatment for endemic hookworm (Uncinaria sanguinis) infection in endangered Australian sea lion (Neophoca cinerea) pups resulted in gut microbial changes. The gut microbiota was characterised for untreated (control) (n = 23) and treated (n = 23) Australian sea lion pups sampled during the 2019 and 2020/21 breeding seasons at Seal Bay, Kangaroo Island. Samples were collected pre- and post-treatment on up to four occasions over a four-to-five-month period. The gut microbiota of untreated (control) and treated pups in both seasons were dominated by five bacterial phyla, Fusobacteria, Firmicutes, Proteobacteria, Actinobacteria, and Bacteroides. A significant difference in alpha diversity between treatment groups was seen in pups sampled during the 2020/21 breeding season (p = 0.008), with higher richness and diversity in treated pups. Modeling the impact of individual pup identification (ID), capture, pup weight (kg), standard length (cm), age, and sex on beta diversity revealed that pup ID accounted for most of the variation (35% in 2019 and 42% in 2020/21), with pup ID, capture, and age being the only significant contributors to microbial variation (p &lt; 0.05). There were no statistically significant differences in the composition of the microbiota between treatment groups in both the 2019 and 2020/21 breeding seasons, indicating that topical ivermectin treatment did not alter the composition of the gut microbiota. To our knowledge, this is the first study to characterise the gut microbiota of free-ranging Australian pinniped pups, compare the composition across multiple time points, and consider the impact of parasitic treatment on the overall diversity and microbial composition of the gut microbiota. Importantly, the lack of compositional changes in the gut microbiota with topical ivermectin treatment supports the utility of topical ivermectin as a safe and minimally invasive management strategy to enhance pup survival in this endangered species. </p>

opencc-zeroOct 2022View details →
dryad36/100

Does ivermectin treatment for endemic hookworm infection alter the gut microbiota of endangered Australian sea lion pups?

Open the record for dataset details and reuse information.

publicOct 2022View details →

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