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62 results for “faeces”

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zenodo32/100

Supplementary material 3 from: Callaghan TM, Podmirseg SM, Hohlweck D, Edwards JE, Puniya AK, Dagar SS, Griffith GW (2015) Buwchfawromyces eastonii gen. nov., sp. nov.: a new anaerobic fungus (Neocallimastigomycota) isolated from buffalo faeces. MycoKeys 9: 11-28. https://doi.org/10.3897/mycokeys.9.9032

SuppFig. 3: Explanation note: Intragenomic variation in ITS sequences among the five clones sequenced from isolate GE09. 18S boundary ends with GATCATTA and 5.8S begins with CAACTTT, according to the convention of Hibbett et al. (1995).

opencc-by-4.0Mar 2015View details →
zenodo32/100

Supplementary material 4 from: Callaghan TM, Podmirseg SM, Hohlweck D, Edwards JE, Puniya AK, Dagar SS, Griffith GW (2015) Buwchfawromyces eastonii gen. nov., sp. nov.: a new anaerobic fungus (Neocallimastigomycota) isolated from buffalo faeces. MycoKeys 9: 11-28. https://doi.org/10.3897/mycokeys.9.9032

SuppTable 1: Explanation note: Details of ITS sequences falling into the Buwchfawromyces clade. The first five are all derived from the isolate GE09.

opencc-by-4.0Mar 2015View details →
zenodo32/100

Supplementary material 1 from: Lee T, Alemseged Y, Mitchell A (2018) Dropping Hints: Estimating the diets of livestock in rangelands using DNA metabarcoding of faeces. Metabarcoding and Metagenomics 2: e22467. https://doi.org/10.3897/mbmg.2.22467

Location of sample sites in south-western New South Wales, Australia. Location of study area shown as a rectangle on the map of Australia (insert). Names of states and territories are marked. Solid lines indicate state boundaries. Dashed line indicates the course of the Darling River. Dotted line indicates the course of the Great Darling Anabranch. Circles indicate sampling locations, squares indicate towns. Created using Inkscape 0.92.0 (https://inkscape.org/en/). Based on information from Geoscience Australia, Commonwealth of Australia 'National base map with external territories', (http://www.ga.gov.au/interactive-maps/#/theme/national-location-information/map/nationalmap) published under the Creative Commons license CC-By-Au.

opencc-zeroApr 2018View details →
zenodo32/100

Supplementary material 13 from: Lee T, Alemseged Y, Mitchell A (2018) Dropping Hints: Estimating the diets of livestock in rangelands using DNA metabarcoding of faeces. Metabarcoding and Metagenomics 2: e22467. https://doi.org/10.3897/mbmg.2.22467

Species level taxa (GenBank Data), at 3 minimum read depth. Underlined taxa were changed based on the distribution of taxa in the study zone.

opencc-zeroApr 2018View details →
zenodo32/100

Supplementary material 2 from: Lee T, Alemseged Y, Mitchell A (2018) Dropping Hints: Estimating the diets of livestock in rangelands using DNA metabarcoding of faeces. Metabarcoding and Metagenomics 2: e22467. https://doi.org/10.3897/mbmg.2.22467

Table displaying the closest matches on the BOLD database for the 24 reference samples for matK, rbcL and ITS2.

opencc-zeroApr 2018View details →
zenodo32/100

Supplementary material 15 from: Lee T, Alemseged Y, Mitchell A (2018) Dropping Hints: Estimating the diets of livestock in rangelands using DNA metabarcoding of faeces. Metabarcoding and Metagenomics 2: e22467. https://doi.org/10.3897/mbmg.2.22467

Species level taxa (BOLD Data), at 3 minimum read depth. Underlined taxa were changed based on the distribution of taxa in the study zone

opencc-zeroApr 2018View details →
zenodo32/100

Supplementary material 10 from: Lee T, Alemseged Y, Mitchell A (2018) Dropping Hints: Estimating the diets of livestock in rangelands using DNA metabarcoding of faeces. Metabarcoding and Metagenomics 2: e22467. https://doi.org/10.3897/mbmg.2.22467

Tests for normailty and equality of variance to establish whether conducting t-tests on the Dorper and Merino speccies and family level diversity data is appropriate.

opencc-zeroApr 2018View details →
zenodo32/100

Supplementary material 6 from: Lee T, Alemseged Y, Mitchell A (2018) Dropping Hints: Estimating the diets of livestock in rangelands using DNA metabarcoding of faeces. Metabarcoding and Metagenomics 2: e22467. https://doi.org/10.3897/mbmg.2.22467

Species level taxa (BOLD Data). Underlined taxa were changed based on the distribution of taxa in the study zone ('*' indicates that the column contains no taxa).

opencc-zeroApr 2018View details →
zenodo32/100

Supplementary material 11 from: Lee T, Alemseged Y, Mitchell A (2018) Dropping Hints: Estimating the diets of livestock in rangelands using DNA metabarcoding of faeces. Metabarcoding and Metagenomics 2: e22467. https://doi.org/10.3897/mbmg.2.22467

Shapiro-Wilk and Levene's tests exploring the appropriateness of the data for use in ANOVA or Kruskal-Wallis tests.

opencc-zeroApr 2018View details →
zenodo32/100

Pathogenic potential and the role of clones and plasmids in beta-lactamase-producing E. coli from chicken faeces in Vietnam

<p>Raw data used to present figures and tables in the manuscript.</p>

opencc-by-4.0Dec 2018View details →
zenodo32/100

FIGURE 1 in Pilaira australis sp. nov. (Mucorales, Mucoromycota) isolated from emu faeces in Australia

FIGURE 1. Comparison of DNA sequences at two genetic loci supports P. australis as a distinct species with the Pilaira genus. (A) Phylogeny using the ITS by maximum likelihood based on the Tamura 3-parameter model. The tree with the highest log likelihood is shown (-2476.0688). (B) Phylogeny using the pyrG gene fragment by maximum likelihood method based on the Tamura 3-parameter model. The tree with the highest log likelihood is shown (-1674.0526). In both (A) and (B) the trees are drawn to scale, with branch lengths measured in the number of substitutions per site. The bootstraps values provided were generated with 1000 replicates.

opennotspecifiedNov 2017View details →
zenodo32/100

FIGURE 2 in Pilaira australis sp. nov. (Mucorales, Mucoromycota) isolated from emu faeces in Australia

FIGURE 2. Morphological features of P. australis. Colonies growing on potato dextrose agar, becoming yellow in colour and emanating white sporangiophores that exhibit positive phototropism that collapse once several centimetres tall (A). The columella is visible at the base of the developing sporangium (B). Eventually the lower surface of the columella collapses inwards (C) to form a mature sporangium (D, F, G, H). Spores are elongated in shape (E, H, I). The outer surface of the sporangium is covered with small spikes (G and H). The spores lack surface ornamentation (H and I). B to D dissecting microscope, E DIC image from a compound microscope, F to I SEM images. Scales bares represent 300 μm B to D, 50 μm E, 100 μm F, 10 μm G, 20 μm H and 5 μm I.

opennotspecifiedNov 2017View details →
dryad32/100

Divergent strategies in faeces avoidance between two cercopithecoid primates

<p class="p1"><span>Parasites constitute a major selective pressure which has shaped animal behaviour through evolutionary time. One adaption to parasites consists of recognizing and avoiding substrates or cues that indicate their presence. Among substrates harbouring infectious agents, faeces are known to elicit avoidance behaviour in numerous animal species. However, the function and mechanisms of faeces avoidance in non-human primates has been largely overlooked by scientists. In this study, we used an experimental approach to investigate whether aversion to faeces in a foraging context is mediated by visual and olfactory cues in two cercopithecoid<i> </i>primates: mandrills (<i>Mandrillus sphinx</i>) and long-tailed macaques (<i>Macaca fascicularis</i>). Visual and olfactory cues of faeces elicited lower food consumption rates in mandrills and higher food manipulation rates in long-tailed macaques. Both results support the infection avoidance hypothesis and confirm similar tendencies observed in other primate species. More studies are now needed to investigate the divergence of avoidance strategies observed in non-human primates regarding food contamination.</span></p>

opencc-zeroMar 2020View details →
zenodo32/100

Figure 2 in Dark axils and nodes in various plant species may serve as defensive mimicry of beetle and beetle faeces

Figure 2. Brown nodal zones of indigenous grasses in Israel. (A) Avena sterilis, (B) Phalaris paradoxa, (C) Hordeum bulbosum. Scale bars: 5 mm.

opennotspecifiedDec 2013View details →
zenodo32/100

Figure 1 in Dark axils and nodes in various plant species may serve as defensive mimicry of beetle and beetle faeces

Figure 1. (A) Spring shoot of Lycium chinense with dark axils. (B) Faeces and faeces-covered Lema decempunctata larvae (white arrows). (C) Lema decempunctata larvae feeding on a Lycium chinense leaf. Scale bars: (A), (B) 10 mm, (C) 3 mm.

opennotspecifiedDec 2013View details →
ClinicalTrials.gov32/100

Transplantation of Faeces in Ulcerative Colitis; Restoring Nature's Homeostasis

ClinicalTrials.gov study NCT01650038. IPD Sharing: Not stated. Countries: 1. Publications: 1.

restrictedIPD-UNDECIDEDFeb 2026View details →
ClinicalTrials.gov32/100

Microbial Diversity of Small Bowel Stoma Effluent and Colonic Faeces

ClinicalTrials.gov study NCT03590418. IPD Sharing: Not stated. Countries: 1. Publications: 4.

restrictedIPD-UNDECIDEDFeb 2026View details →
ClinicalTrials.gov32/100

Trial in Elderly With Musculoskeletal Problems Due to Underlying Sarcopenia - Faeces to Unravel Gut and Inflammation Translationally

ClinicalTrials.gov study NCT05008770. IPD Sharing: UNDECIDED. Countries: 1. Publications: 1.

restrictedIPD-UNDECIDEDFeb 2026View details →
dryad32/100

Data from: Determining diet from faeces: selection of metabarcoding primers for the insectivore Pyrenean desman (Galemys pyrenaicus)

Open the record for dataset details and reuse information.

publicDec 2018View details →
dryad32/100

Data from: Fine-scale diet of the Australian sea lion (Neophoca cinerea) using DNA-based analysis of faeces.

Open the record for dataset details and reuse information.

publicDec 2014View details →

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