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10 results for “respiratory tree”
Figure 2: Impedance by means of Bode-plot representation, symmetric (con- tinuous line) and the asymmetric (dashed line) tree.-THE RESPIRATORY IMPEDANCE IN AN ASYMMETRIC MODEL OF THE LUNG STRUCTURE
<p>Figure 2 shows the total impedance by means of its Bode plot, for the symmetric and the asymmetric tree, whereas the airway tubes are modelled by an R ¡ L ¡ C element in both representations.<br> It is signi¯cant to observe that in the frequency interval of clinical interest,<br> ! 2 [25; 300] rad/s, the two impedances tend to behave similarly. For the asymmetric case, we have a decrease of about -10dB/dec and a phase of ap-proximately ¡50o, resulting in a fractional order of n »=0:5. This observation suggests that a combined e®ect of more than one fractal order is present in the lungs and that it leads naturally to values closer to measured data in the low<br> frequency range.</p>
FIG 3 in Rooting the Phylogenetic Tree of Middle East Respiratory Syndrome Coronavirus by Characterization of a Conspecific Virus from an African Bat
FIG 3 Bayesian phylogenies of clade c betacoronaviruses, including NeoCoV. (A) Phylogenies of ORF1a, ORF1b, and ORFs coding for structural proteins. (B) Phylogenies of the S1 and S2 subunits, corresponding to amino acid positions 1 to 747 and 748 to 1353, respectively, of MERS-CoV strain EMC/2012. NeoCoV is shown in red, camel MERS-CoV is shown in blue, and human MERS-CoV is shown in cyan. HCoV-OC43 was used as an outgroup. (C) Phylogeny of MERS-CoV full genomes. MERS-CoVs obtained from humans are shown in black, and MERS-CoVs from camels are shown in blue. NeoCoV was used for rooting the tree. For all trees, statistical support of grouping from Bayesian posterior probabilities is shown at deep nodes. Only values above 0.7 are shown. The bar represents genetic distance. GenBank accession numbers are KJ477102 for NRCE-HKU205, KJ156881 for Wadi-Ad-Dawasir 1 2013, JX869059 for EMC/2012, KJ650296 for KFU-HKU19D, KC776174 for Jordan- N3/2012, KJ650297 for KFU-HKU1, KJ156910 for Hafr-Al-Batin2 2013, KF600613 for Riyadh 3 2013, KF186567 for Al-Hasa 1 2013, KC164505 for England1, KF961221 for Qatar3, KJ713299 for KSA-CAMEL-376, KJ156949 for Taif1 2013, KJ556336 for Jeddah1 2013, KJ713297 for KSA-CAMEL-503, KJ713295 for KSA-CAMEL-505, KF192507 for Munich 2013, KJ650098 for Qatar 2 2014, KF745068 for FRA/UAE, KF600630 for Buraidah1 2013, KJ650295 for KFU-HKU13, KF600628 for Hafr-Al-Batin1 2013, KJ713298 for KSA-CAMEL-363, KJ713296 for KSA-CAMEL-378, KF600620 for Bisha1 2012, KC869678 for NeoCoV, NC_005147 for HCoV-OC43, EF065512 for HKU5-5, NC_009020 for HKU5-1, NC_008315 for BtCoV/133, NC_009019 for HKU4-1, KC545386 for EriCoV/2012-216, KC545383 for EriCoV/2012- 174, and KM027259 for Jeddah 2014 C9055.
Gene expression profiles of the respiratory tree of sea cucumber Apostichopus japonicus during aestivation by RNA-seq
GEO Series GSE53815. Apostichopus japonicus. 3 samples. Type: Expression profiling by high throughput sequencing.
Large-scale identification and comparative analysis of miRNA expression profile in the respiratory tree of the sea cucumber Apostichopus japonicus during aestivation
GEO Series GSE52226. Apostichopus japonicus. 8 samples. Type: Non-coding RNA profiling by array; Non-coding RNA profiling by high throughput sequencing.
Large-scale identification and comparative analysis of miRNA expression profile in the respiratory tree of the sea cucumber Apostichopus japonicus during aestivation (part 2)
GEO Series GSE52225. Apostichopus japonicus. 2 samples. Type: Non-coding RNA profiling by high throughput sequencing.
Large-scale identification and comparative analysis of miRNA expression profile in the respiratory tree of the sea cucumber Apostichopus japonicus during aestivation (part 1)
GEO Series GSE52224. Apostichopus japonicus. 6 samples. Type: Non-coding RNA profiling by array.
High-Throughput Sequencing Reveals Differential Expression of miRNAs in respiratory tree from the sea cucumber Apostichopus japonicus Under Hypoxia Stress
GEO Series GSE100603. Apostichopus japonicus. 9 samples. Type: Non-coding RNA profiling by high throughput sequencing.
FIG 2 in Rooting the Phylogenetic Tree of Middle East Respiratory Syndrome Coronavirus by Characterization of a Conspecific Virus from an African Bat
FIG 2 Genome organization of NeoCoV and sequence identity compared to other clade c betacoronaviruses. (A) Genome organization of NeoCoV. The NeoCoV genome is represented by a black line; ORFs are indicated by gray arrows. The ribosomal frameshift site (RFS) is marked with an arrowhead. The locations of transcription regulatory core sequences (TRSs) following the leader (L) are marked by labeled dots and numbered in their order of appear- ance from the genomic 5= terminus. (B) Genomic sequence identity between NeoCoV and other clade c betacoronaviruses. Plots were generated by using SSE version 1.1 (25). The graph representing the comparison of the phyloge- netically basal camel virus NRCE-HKU205 and NeoCoV is not shown due to a total overlap in the curve resulting from the comparison between NeoCoV and human MERS-CoV.
FIG 1 in Rooting the Phylogenetic Tree of Middle East Respiratory Syndrome Coronavirus by Characterization of a Conspecific Virus from an African Bat
FIG 1 Neoromicia capensis bat. The absence of a tiny upper premolar separates it from similarly sized Pipistrellus and Hypsugo bats. The presence of an occipital helmet separates it from Neoromicia zuluensis, the species to which it was assigned based on preliminary morphological criteria.
Differential expression of genes in the respiratory tree of sea cucumber (Apostichopus japonicus) under normal dissolved oxygen and hypoxia conditions
GEO Series GSE100042. Apostichopus japonicus. 9 samples. Type: Expression profiling by high throughput sequencing.
ScienceDex guides
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Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
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.