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547 results for “New South Wales”
Fig. 9 in The geological setting and palaeoenvironmental and palaeoecological reconstructions of the Upper Permian insect beds at Belmont, New South Wales, Australia
Fig. 9. Depth of fossil insects at site 205. Most wings are found in a Lagerstätt at a depth of 2 cm within the seam.
Figure 1. from Euastacus morgani sp. n., a new spiny crayfish (Crustacea, Decapoda, Parastacidae) from the highland rainforests of eastern New South Wales, Australia - ZooKeys 85: 17-26 (11 March 2011) https://doi.org/10.3897/zookeys.85.1237
Figure 1. - Euastacus morgani sp. n. Female specimen, ACP 1103.
Fig. 2 in Early Ordovician Conodonts from Far Western New South Wales, Australia
Fig. 2. Stratigraphic sections through the Lower
Fig. 23. Reticulograptus thomasi n in Dendroid and Tuboid Graptolites from the Llandovery (Silurian) of the Four Mile Creek Area, New South Wales
Fig. 23. Reticulograptus thomasi n.sp., AM F114756, holotype, BF28. Scale bar 1 mm.
Fig. 2 in Dendroid and Tuboid Graptolites from the Llandovery (Silurian) of the Four Mile Creek Area, New South Wales
Fig. 2. Dendroid graptolite localities on the Bridge Creek sections.
Fig. 1 in Dendroid and Tuboid Graptolites from the Llandovery (Silurian) of the Four Mile Creek Area, New South Wales
Fig. 1. Location map of the Bridge Creek area of southeastern Australia.
Figure 1 in The Dunbogan L6 Chondrite: A New Meteorite Fall from New South Wales, Australia
Figure 1. Estimated flight path of the fireball which resulted in the Dunbogan meteorite.
Figure 1 in A New Species of the Freshwater Crayfish Genus Euastacus (Decapoda: Parastacidae) from Northeastern New South Wales, Australia
Figure 1. Collection locality of Euastacus mirangudjin n.sp.
Figure 2. Euastacus mirangudjin n in A New Species of the Freshwater Crayfish Genus Euastacus (Decapoda: Parastacidae) from Northeastern New South Wales, Australia
Figure 2. Euastacus mirangudjin n.sp. Dorsal view, holotype. Photograph by Max Egan.
Tspe_v1 (Telopea speciosissima) genome supplementary files for: Chromosome-level de novo genome assembly of Telopea speciosissima (New South Wales waratah) using long-reads, linked-reads and Hi-C
<p><i>Telopea speciosissima, </i>the New South Wales waratah, is an Australian endemic woody shrub in the family Proteaceae. Waratahs have great potential as a model clade to better understand processes of speciation, introgression and adaptation, and are significant from a horticultural perspective. Here, we report the first chromosome-level genome for <i>T. speciosissima</i>. Combining Oxford Nanopore long-reads, 10x Genomics Chromium linked-reads and Hi-C data, the assembly spans 823 Mb (scaffold N50 of 69.0 Mb) with 97.8 % of Embryophyta BUSCOs 'Complete'. We present a new method in Diploidocus (<a href="https://github.com/slimsuite/diploidocus">https://github.com/slimsuite/diploidocus</a>) for classifying, curating and QC-filtering scaffolds, which combines read depths, <i>k</i>-mer frequencies and BUSCO predictions. We also present a new tool, DepthSizer (<a href="https://github.com/slimsuite/depthsizer">https://github.com/slimsuite/depthsizer</a>), for genome size estimation from the read depth of single-copy orthologues and estimate the genome size to be approximately 900 Mb. The largest 11 scaffolds contained 94.1 % of the assembly, conforming to the expected number of chromosomes (2<i>n</i> = 22). Genome annotation predicted 40,158<code> </code>protein-coding genes, 351 rRNAs and 728 tRNAs. We investigated <i>CYCLOIDEA </i>(<i>CYC</i>)<i> </i>genes, which have a role in determination of floral symmetry, and confirm the presence of two copies in the genome. Read depth analysis of 180 'Duplicated' BUSCO genes using a new tool, DepthKopy (<a href="https://github.com/slimsuite/depthkopy">https://github.com/slimsuite/depthkopy</a>), suggests almost all are real duplications, increasing confidence in the annotation and highlighting a possible need to revise the BUSCO set for this lineage. The chromosome-level <i>T. speciosissima</i> reference genome (Tspe_v1) provides an important new genomic resource of Proteaceae to support the conservation of flora in Australia and further afield.</p>
Figure 14 in New and Poorly Known Species of Crane Flies (Diptera: Limoniidae) from New South Wales, Australia
Figure 14. Teucholabis (Teucholabis) reginae, female, general habitus.
Figures 23 in New and Poorly Known Species of Crane Flies (Diptera: Limoniidae) from New South Wales, Australia
Figures 23. Hexatoma metallica female (23) ovipositor, lateral, with hypogynial valve inset.
Figure 44 in New and Poorly Known Species of Crane Flies (Diptera: Limoniidae) from New South Wales, Australia
Figure 44. Orimarga joana female, ovipositor, lateral.
Figure 9 in New and Poorly Known Species of Crane Flies (Diptera: Limoniidae) from New South Wales, Australia
Figure 9. Molophilus (Molophilus) opulus, female, ovipositor, lateral.
Figure 4 in New and Poorly Known Species of Crane Flies (Diptera: Limoniidae) from New South Wales, Australia
Figure 4. Molophilus (Molophilus) flavocingulatus, male, general habitus.
Figure 45 in New and Poorly Known Species of Crane Flies (Diptera: Limoniidae) from New South Wales, Australia
Figure 45. Thrypticomyia aureipennis male, wing.
Figure 7 in Iphimedia poorei, a new species of Iphimediidae (Crustacea, Amphipoda) from the New South Wales Australian coast
Figure 7. Iphimedia poorei sp. nov., holotype, female 5.2 mm. Photography of the habitus
Reversing the decline of threatened koala (Phascolarctos cinereus) populations in New South Wales: Using genomics to enhance conservation outcomes
<p>Genetic management is a critical component of threatened species conservation. Understanding spatial patterns of genetic diversity is essential for evaluating the resilience of fragmented populations to accelerating anthropogenic threats. Nowhere is this more relevant than on the Australian continent, which is experiencing an ongoing loss of biodiversity that exceeds any other developed nation. Using a proprietary genome complexity reduction-based method (DArTSeq), we generated a data set of 3,239 high quality Single Nucleotide Polymorphisms (SNPs) to investigate spatial patterns and indices of genetic diversity in the koala (<em>Phascolarctos cinereus</em>), a highly specialised folivorous marsupial that is experiencing rapid and widespread population declines across much of its former range.<strong> </strong>Our findings demonstrate that current management divisions across the state of New South Wales (NSW) do not fully represent the distribution of genetic diversity among extant koala populations, and that care must be taken to ensure that translocation paradigms based on these frameworks do not inadvertently restrict gene flow between populations and regions that were historically interconnected. We also recommend that koala populations should be prioritised for conservation action based on the scale and severity of the threatening processes that they are currently faced with, rather than placing too much emphasis on their perceived value (e.g., as reservoirs of potentially adaptive alleles), as our data indicate that existing genetic variation in koalas is primarily partitioned amongst individual animals. As such, the extirpation of koalas from any part of their range represents a potentially critical reduction of genetic diversity for this iconic Australian species.</p>
Table 5. Analytical data for miscellaneously attributed samples from Broken Hill, including the Broken Hill Consols Mine. a in Compositions of silver halides from the Broken Hill district, New South Wales
<p><b>Table</b> 5. Analytical data for miscellaneously attributed samples from Broken Hill, including the Broken Hill Consols Mine.a</p><table><tbody><tr><th>No.</th><th><b>Analyses</b></th></tr></tbody><tbody><tr><th>D46338b</th><td>Cl</td><td>60</td><td>57</td><td>57</td><td>53</td><td>56</td><td>57</td><td>58</td><td>68</td><td>56</td><td>66</td><td></td></tr><tr><th></th><td>Br</td><td>32</td><td>35</td><td>34</td><td>37</td><td>35</td><td>34</td><td>32</td><td>31</td><td>35</td><td>33</td><td></td></tr><tr><th></th><td>I</td><td>8</td><td>8</td><td>9</td><td>10</td><td>9</td><td>9</td><td>10</td><td>1</td><td>9</td><td>1</td><td></td></tr><tr><th>D26168c</th><td>Cl</td><td>72</td><td>76</td><td>63</td><td>65</td><td>60</td><td>77</td><td>77</td><td>72</td><td>66</td><td>65</td><td></td></tr><tr><th></th><td>Br</td><td>28</td><td>24</td><td>37</td><td>35</td><td>40</td><td>22</td><td>23</td><td>28</td><td>34</td><td>35</td><td></td></tr><tr><th>D28184d</th><td>I Cl</td><td>75</td><td>68</td><td>86</td><td>70</td><td>70</td><td>1 70</td><td>78</td><td>70</td><td>84</td><td></td><td></td></tr><tr><th></th><td>Br</td><td>25</td><td>30</td><td>14</td><td>28</td><td>30</td><td>29</td><td>21</td><td>30</td><td>16</td><td></td><td></td></tr><tr><th>D28185d</th><td>I Cl</td><td>55</td><td>2 56</td><td>55</td><td>2 56</td><td>55</td><td>155</td><td>1 60</td><td>50</td><td>45</td><td>50</td><td>56</td></tr><tr><th></th><td>Br</td><td>43</td><td>43</td><td>44</td><td>43</td><td>44</td><td>43</td><td>40</td><td>46</td><td>45</td><td>45</td><td>41</td></tr><tr><th></th><td>I</td><td>2</td><td>1</td><td>1</td><td>1</td><td>1</td><td>2</td><td></td><td>4</td><td>10</td><td>5</td><td>3</td></tr></tbody></table><p>a Analyses reported as in Table I. b Trace S detected. C Traces Pb, Cu, S, As detected. d Consols Mine; traces Pb, As, S, Fe detected.</p>
Table 6. Silver halide analyses from deposits remote from the Broken Hill orebody. a in Compositions of silver halides from the Broken Hill district, New South Wales
<p><b>Table</b> 6. Silver halide analyses from deposits remote from the Broken Hill orebody.a</p><table><tbody><tr><th>No.</th><th></th><th></th><th></th><th></th><th></th><th></th><th><b>Analyses</b></th><th></th><th></th><th></th><th></th><th></th></tr></tbody><tbody><tr><th>D30482b</th><td>Cl Br</td><td>84 16</td><td>83 17</td><td>64 31</td><td>61 35</td><td>79 21</td><td>66 34</td><td>64 36</td><td>71 29</td><td>57 41</td><td>60 37</td><td>67 30</td><td>65 32</td></tr><tr><th></th><td>I</td><td></td><td></td><td>5</td><td>4</td><td></td><td></td><td></td><td></td><td>2</td><td>3</td><td>3</td><td>3</td></tr><tr><th>D30480c</th><td>Cl</td><td>65</td><td>61</td><td>59</td><td>62</td><td>61</td><td>64</td><td>60</td><td>56</td><td>59</td><td>60</td><td></td><td></td></tr><tr><th></th><td>Br</td><td>30</td><td>35</td><td>36</td><td>34</td><td>35</td><td>31</td><td>36</td><td>39</td><td>37</td><td>35</td><td></td><td></td></tr><tr><th></th><td>I</td><td>5</td><td>4</td><td>5</td><td>4</td><td>4</td><td>5</td><td>4</td><td>5</td><td>4</td><td>5</td><td></td><td></td></tr><tr><th>D30484</th><td>Cl</td><td>61</td><td>66</td><td>66</td><td>56</td><td>67</td><td>65</td><td>67</td><td>54</td><td>66</td><td>66</td><td>72</td><td>68</td></tr><tr><th></th><td>Br</td><td>38</td><td>31</td><td>30</td><td>42</td><td>31</td><td>30</td><td>28</td><td>45</td><td>31</td><td>31</td><td>26</td><td>30</td></tr><tr><th></th><td>I</td><td>1</td><td>3</td><td>4</td><td>2</td><td>2</td><td>5</td><td>5</td><td>1</td><td>3</td><td>3</td><td>2</td><td>2</td></tr><tr><th>D35460d</th><td>Cl</td><td>62</td><td>43</td><td>56</td><td>64</td><td>61</td><td>69</td><td></td><td></td><td></td><td></td><td></td><td></td></tr><tr><th></th><td>Br</td><td>38</td><td>53</td><td>43</td><td>36</td><td>36</td><td>31</td><td></td><td></td><td></td><td></td><td></td><td></td></tr><tr><th>D28186d</th><td>I Cl</td><td>59</td><td>459</td><td>1 72</td><td>64</td><td>3 67</td><td>64</td><td>66</td><td>62</td><td>67</td><td>65</td><td>66</td><td>68</td></tr><tr><th></th><td>Br</td><td>40</td><td>41</td><td>28</td><td>33</td><td>29</td><td>33</td><td>32</td><td>38</td><td>31</td><td>32</td><td>32</td><td>30</td></tr><tr><th></th><td>I</td><td>1</td><td></td><td></td><td>3</td><td>4</td><td>3</td><td>2</td><td></td><td>2</td><td>3</td><td>2</td><td>2</td></tr><tr><th>Dl8714e</th><td>Cl</td><td>74</td><td>71</td><td>66</td><td>79</td><td>71</td><td>77</td><td>75</td><td>72</td><td>70</td><td>70</td><td>76</td><td>73</td></tr><tr><th></th><td>Br</td><td>26</td><td>29</td><td>34</td><td>21</td><td>29</td><td>23</td><td>25</td><td>28</td><td>30</td><td>29</td><td>24</td><td>27</td></tr><tr><th>D18719f</th><td>I Cl</td><td>73</td><td>70</td><td>64</td><td>67</td><td>70</td><td>63</td><td>61</td><td>66</td><td>60</td><td>1 57</td><td>63</td><td>76</td></tr><tr><th></th><td>Br</td><td>27</td><td>30</td><td>35</td><td>32</td><td>30</td><td>37</td><td>38</td><td>33</td><td>40</td><td>43</td><td>37</td><td>24</td></tr><tr><th></th><td>I</td><td></td><td></td><td>11</td><td></td><td></td><td>11</td><td></td><td></td><td></td><td></td></tr><tr><th>D18724g</th><td>Cl</td><td>67</td><td>67</td><td>63</td><td>67</td><td>65</td><td>63</td><td>67</td><td>61</td><td>71</td><td>65</td><td>73</td><td>61</td></tr><tr><th></th><td>Br</td><td>33</td><td>33</td><td>37</td><td>33</td><td>35</td><td>37</td><td>33</td><td>39</td><td>29</td><td>35</td><td>27</td><td>39</td></tr><tr><th>D18712</th><td>Cl</td><td>76</td><td>78</td><td>85</td><td>76</td><td>62</td><td>84</td><td>82</td><td>75</td><td>85</td><td>76</td><td>68</td><td>66</td></tr><tr><th></th><td>Br</td><td>24</td><td>22</td><td>15</td><td>24</td><td>38</td><td>16</td><td>18</td><td>25</td><td>15</td><td>24</td><td>32</td><td>34</td></tr><tr><th>D18720h</th><td>Cl</td><td>62</td><td>67</td><td>66</td><td>81</td><td>57</td><td>74</td><td>75</td><td>79</td><td>66</td><td>90</td><td></td><td></td></tr><tr><th></th><td>Br</td><td>38</td><td>33</td><td>34</td><td>19</td><td>43</td><td>26</td><td>23</td><td>21</td><td>34</td><td>10</td><td></td><td></td></tr><tr><th></th><td>I</td><td></td><td></td><td></td><td></td><td></td><td></td><td>2</td><td></td><td></td><td></td><td></td><td></td></tr><tr><th>D18721</th><td>Cl</td><td>64</td><td>60</td><td>64</td><td>57</td><td>65</td><td>65</td><td>58</td><td>62</td><td>58</td><td>65</td><td>58</td><td>75</td></tr><tr><th></th><td>Br</td><td>36</td><td>40</td><td>36</td><td>43</td><td>35</td><td>35</td><td>42</td><td>37</td><td>42</td><td>35</td><td>42</td><td>25</td></tr><tr><th></th><td>I</td><td></td><td></td><td></td><td></td><td></td><td></td><td></td><td>1</td><td></td><td></td><td></td><td></td></tr></tbody></table><p>a Analyses reported in same way as in Table 1. b Traces Pb, As, P, Fe detected. C Traces Pb, S, Fe, As detected; see text re inclusions. d Traces Fe, As detected. e Trace of Pb detected. f Traces Pb, As detected. g Traces of Fe detected. h Traces P, As, Fe detected.</p>
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Allen Brain Atlas
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DANDI Archive for NWB datasets
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International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.