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61 results for “giraffes”

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ClinicalTrials.gov32/100

Goat Infant Formula Feeding and Eczema (the GIraFFE Study)

ClinicalTrials.gov study NCT04599946. IPD Sharing: UNDECIDED. Countries: 3. Publications: 1.

restrictedIPD-UNDECIDEDFeb 2026View details →
dryad32/100

Data from: Weapon allometry varies with latitude in the New Zealand giraffe weevil

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publicSep 2014View details →
dryad32/100

Data from: Seeing spots: quantifying mother-offspring similarity and assessing fitness consequences of coat pattern traits in a wild population of giraffes (Giraffa camelopardalis)

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publicSep 2018View details →
dryad32/100

Data from: Multi-locus analyses reveal four giraffe species instead of one

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publicJul 2017View details →
dryad32/100

Data from: Exploring the effects of giraffe skin disease limb lesions on locomotion

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publicJul 2025View details →
dryad32/100

Sociability increases survival of adult female giraffes

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publicJan 2021View details →
zenodo28/100

Fig. 6 in First insights into past biodiversity of giraffes based on mitochondrial sequences from museum specimens

Fig. 6. Postcards of the Senegal giraffe at the beginning of the 20th century. A. "Une Girafe des Jardins de Shor", photo taken by P. Tacher in 1909 (https://oldthing.ch/AK-Saint-Louis-Une-Girafe-des-Jardinsde-Shor-Giraffe-im-Gehege-0033371252). B. "Girafe originaire du Sénégal" (https://www.ebay.fr/sch/ Cartes-postales/914/i.html?cmd=Blend%7CBlend&_nkw=girafe). C. "Mission du Sénégal – girafe à Dakar" (https://www.picclickimg.com/d/400/pict/192836173148_/CPA-DAKAR--SENEGAL-MISSION-DU-SENEGAL-UNE.jpg).

opencc-by-4.0Aug 2020View details →
zenodo28/100

Fig. 4 in First insights into past biodiversity of giraffes based on mitochondrial sequences from museum specimens

Fig. 4. Comparison of mitochondrial and nuclear divergence time estimates. A. Chronogram inferred from the mtDNA dataset using BEAST ver. 1.8.4 (Drummond et al. 2012). The mean divergence times are reported on the nodes, and the horizontal grey bars show 95% confidence intervals. B. Phylogram reconstructed from the multispecies coalescent analysis of the nuDNA dataset using *BEAST ver. 2.4.8 (Bouckaert et al. 2014). Divergence times estimated in BEAST ver. 1.8.4 (Drummond et al. 2012) are reported on the nodes to allow comparison with the mtDNA chronogram (Supplementary file 8). Nodes with a white circle were supported by PPBEAST Ż 0.95, whereas nodes with a black circle were supported by both PPBEAST Ż 0.95 and BPML Ż 80.

opencc-by-4.0Aug 2020View details →
zenodo28/100

Fig. 3 in First insights into past biodiversity of giraffes based on mitochondrial sequences from museum specimens

Fig. 3. Median-joining network of mitochondrial haplotypes. The network was constructed in PopART 1.7 (Leigh & Bryant 2015) based on the mitochondrial sequences of 548 giraffes. The number of mutations between haplotypes is indicated by perpendicular lines on the branches and is specified if greater than 10. The size of the circles is proportional to the number of individuals sharing a certain haplotype with colours assigned by subspecies. The sample locations are indicated by triangles in the map and highlighted in bold capital letters for museum specimens. The subspecies marked with an asterisk represent formerly recognized subspecies, which were synonymized in recent classifications (e.g., Shorrocks 2016). Historical key specimens are highlighted by the respective abbreviation of the museum and the catalogue number.

opencc-by-4.0Aug 2020View details →
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Fig. 1 in First insights into past biodiversity of giraffes based on mitochondrial sequences from museum specimens

Fig. 1. Distribution range of giraffe subspecies. A. Within historic times (after Dagg 1962). B. At present (after Muller et al. 2018). The subspecies are distinguished by different colours on both maps, whereby the assignment of colours for the nine currently recognized subspecies (B) was modified from https://giraffeconservation.org/giraffe-species/. The type locality for each subspecies is indicated by a triangle in map A and detailed in Table 1.

opencc-by-4.0Aug 2020View details →
zenodo28/100

Figure 1 in Multi-locus analyses reveal four giraffe species instead of one

Figure 1. Distribution and Sampling Locations of Different Giraffe Subspecies in Africa

opennotspecifiedDec 2016View details →
zenodo28/100

(legend on next page) in Multi-locus analyses reveal four giraffe species instead of one

(legend on next page)

opennotspecifiedDec 2016View details →
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Figure 3 in Multi-locus analyses reveal four giraffe species instead of one

Figure 3. Population Structuring and Giraffe Divergence Times

opennotspecifiedDec 2016View details →
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Figure S3 in Multi-locus analyses reveal four giraffe species instead of one

Figure S3. Additional Structure and PCA analyses. Related to Figure 3.

opennotspecifiedDec 2016View details →
zenodo28/100

(legend on next page) in Multi-locus analyses reveal four giraffe species instead of one

(legend on next page)

opennotspecifiedDec 2016View details →
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Figure 1 in Multi-locus analyses reveal four giraffe species instead of one

Figure 1. Distribution and Sampling Locations of Different Giraffe Subspecies in Africa

opennotspecifiedDec 2016View details →
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Table 4 in First insights into past biodiversity of giraffes based on mitochondrial sequences from museum specimens

<p><b>Table 4.</b> Minimum and maximum pairwise distances (in %), as well as mean distance (between brackets), calculated using the nuDNA-78T dataset both within and between haplogroups (Fig. 3). <b>Boldface</b> = maximal intrapopulational variation.</p><table><tbody><tr><th>Taxa</th><th><b>I</b>.</th><th><b>II</b>.</th><th><b>III</b>.</th><th><b>IV</b>.</th><th><b>V</b>.</th><th><b>VI</b>.</th><th><b>VII</b>.</th><th><b>VIII</b>.</th><th><b>IX</b>.</th><th></th></tr></tbody><tbody><tr><th><b>I</b>. Niger</th><td><b>0</b>. <b>09</b></td><td></td><td></td><td></td><td></td><td></td><td></td><td></td><td></td><td></td></tr><tr><th><b>II</b>. Kordofan I</th><td>0.03 &ndash; 0.11 (0.06)</td><td><b>0</b>. <b>04</b></td><td></td><td></td><td></td><td></td><td></td><td></td><td></td><td></td></tr><tr><th><b>III</b>. Kordofan II</th><td>0.08 &ndash; 0.12 (0.1)</td><td>0.04 &ndash; 0.05 (0.04)</td><td><b>0</b></td><td></td><td></td><td></td><td></td><td></td><td></td><td></td></tr><tr><th><b>IV</b>. Rothschild</th><td>0.04 &ndash; 0.21 (0.08)</td><td>0.02 &ndash; 0.17 (0.07)</td><td>0.05 &ndash; 0.2 (0.09)</td><td><b>0</b>. <b>2</b></td><td></td><td></td><td></td><td></td><td></td><td></td></tr><tr><th><b>V</b>. Reticulated I</th><td>0.05 &ndash; 0.27 (0.15)</td><td>0.02 &ndash; 0.21 (0.14)</td><td>0.08 &ndash; 0.23 (0.18)</td><td>0 &ndash; 0.25 (0.13)</td><td><b>0</b>. <b>12</b></td><td></td><td></td><td></td><td></td><td></td></tr><tr><th><b>VI</b>. Masai I</th><td>0.40 &ndash; 0.47 (0.44)</td><td>0.40 &ndash; 0.49 (0.44)</td><td>0.46 &ndash; 0.48 (0.47)</td><td>0.38 &ndash; 0.5 (0.44)</td><td>0.32 &ndash; 0.47 (0.41)</td><td><b>0</b></td><td></td><td></td><td></td><td></td></tr><tr><th><b>VII</b>. Masai II</th><td>0.4 &ndash; 0.46 (0.44)</td><td>0.44 &ndash; 0.47 (0.45)</td><td>0.46 &ndash; 0.46 (0.46)</td><td>0.38 &ndash; 0.49 (0.44)</td><td>0.32 &ndash; 0.46 (0.40)</td><td>0.02 &ndash; 0.06 (0.04)</td><td><b>0</b>. <b>04</b></td><td></td><td></td><td></td></tr><tr><th><b>VIII</b>. Southeast Africa</th><td>0.44 &ndash; 0.56 (0.51)</td><td>0.46 &ndash; 0.58 (0.51)</td><td>0.52 &ndash; 0.57 (0.54)</td><td>0.44 &ndash; 0.59 (0.51)</td><td>0.36 &ndash; 0.54 (0.46)</td><td>0.28 &ndash; 0.4 (0.35)</td><td>0.28 &ndash; 0.38 (0.34)</td><td><b>0</b>. <b>08</b></td><td></td><td></td></tr><tr><th><b>IX</b>. Southwestern</th><td>0.43 &ndash; 0.57 (0.51)</td><td>0.45 &ndash; 0.59 (0.52)</td><td>0.5 &ndash; 0.59 (0.55)</td><td>0.42 &ndash; 0.6 (0.52)</td><td>0.35 &ndash; 0.55 (0.47)</td><td>0.27 &ndash; 0.41 (0.34)</td><td>0.27 &ndash; 0.39 (0.34)</td><td>0 &ndash; 0.12 (0.05)</td><td></td><td><b>0</b>. <b>14</b></td></tr></tbody></table>

opencc-by-4.0Aug 2020View details →
zenodo28/100

Table 2 in First insights into past biodiversity of giraffes based on mitochondrial sequences from museum specimens

<p><b>Table 2.</b> Museum specimens sequenced in this study (subspecies assignations have been made by morphological characters or distribution range). DRC = Democratic Republic of the Congo; SA = South Africa.</p><table><tbody><tr><th><b>Voucher</b></th><th><b>Subspecies</b></th><th><b>Collector, Date</b></th><th><b>Locality</b></th><th><b>N&deg; Accession</b></th></tr></tbody><tbody><tr><th><b>IRSNB-IG19076</b></th><td>?</td><td>Unknown, 1953</td><td>Anglo-Egyptian Sudan (Sudan / South Sudan)</td><td>MT542052</td></tr><tr><th><b>MNHN-A10753</b></th><td><i>peralta</i>?</td><td>G&eacute;rardin, 1830</td><td>Bakel, Senegal</td><td>MT542037</td></tr><tr><th><b>MNHN-A10617</b></th><td><i>peralta</i>?</td><td>G&eacute;rardin, 1830</td><td>Bakel, Senegal</td><td>MT542038</td></tr><tr><th><b>MNHN-1896-45</b></th><td><i>capensis</i></td><td>Delalande, 1818&ndash;1820</td><td>Cape of Good Hope (SA)</td><td>MT542039</td></tr><tr><th><b>MNHN-A10749</b></th><td><i>capensis</i></td><td>Delalande, 1818&ndash;1820</td><td>Cape of Good Hope (SA)</td><td>MT542040</td></tr><tr><th><b>MNHN-A7977</b></th><td><i>capensis</i></td><td>Levaillant, 1783&ndash;1785</td><td>Cape of Good Hope (SA)</td><td>MT542041</td></tr><tr><th><b>MNHN-1845-211</b></th><td><i>camelopardalis</i></td><td>Mouker Bey, 1824</td><td>Sennar (Sudan)</td><td>MT542042</td></tr><tr><th><b>MNHN-A8012</b></th><td><i>camelopardalis</i></td><td>Clot Bey, 1843</td><td>Abyssinia (Ethiopia)</td><td>MT542043</td></tr><tr><th><b>MNHN-1913-523</b></th><td><i>tippelskirchi</i>?</td><td>Babault, 1912&ndash;1913</td><td>Kenya</td><td>MT542054</td></tr><tr><th><b>MHNT-1996</b>. <b>121</b>. <b>2</b></th><td><i>camelopardalis</i></td><td>Unknown, 1843</td><td>Abyssinia (Ethiopia)</td><td>MT542044</td></tr><tr><th><b>RMCA-21645M</b></th><td><i>antiquorum</i></td><td>Huese, 1953</td><td>Sarh, Chad</td><td>MT542046</td></tr><tr><th><b>RMCA-25672M</b></th><td><i>congoensis</i></td><td>Poll, 1959</td><td>Gangala, DRC</td><td>MT542047</td></tr><tr><th><b>RMCA-25673M</b></th><td><i>congoensis</i></td><td>Poll, 1959</td><td>Gangala, DRC</td><td>MT542048</td></tr><tr><th><b>RMCA-83</b>. <b>006- M0553</b></th><td><i>congoensis</i></td><td>Colyn, 1946</td><td>Garamba Park, DRC</td><td>MT542049</td></tr><tr><th><b>RMCA-3748M</b></th><td><i>congoensis</i></td><td>De Calonne, 1914</td><td>Kapili, DRC</td><td>MT542050</td></tr><tr><th><b>RMCA-767M</b></th><td><i>cottoni</i></td><td>Powell-Cotton, 1908</td><td>Lado enclave, northwest Uganda and South Sudan</td><td>MT542051</td></tr><tr><th><b>RMCA-5956M</b></th><td><i>congoensis</i></td><td>Pilette, 1923</td><td>North-East Uele, DRC</td><td>MT542053</td></tr><tr><th><b>RMCA-2128M</b></th><td><i>tippelskirchi</i></td><td>Bayer, 1913</td><td>Serengeti-Mara, Kenya</td><td>MT542055</td></tr><tr><th><b>ZMB-48222</b></th><td>?</td><td>Unknown</td><td>Dikoa, Nigeria</td><td>MT542045</td></tr></tbody></table>

opencc-by-4.0Aug 2020View details →
dryad28/100

Data from: Directional selection on body size but no apparent survival cost to being large in wild New Zealand giraffe weevils

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publicFeb 2019View details →
ClinicalTrials.gov24/100

Preliminary Efficacy Analysis of Cheng's Giraffe Reconstruction After Proximal Gastrectomy

ClinicalTrials.gov study NCT04657848. IPD Sharing: Not stated. Countries: 1. Publications: 0.

restrictedIPD-UNDECIDEDFeb 2026View details →

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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.

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