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10,694 results for “carcinoma,”
Dataset for paper: Prognostic Stratification by the Meet-URO Score in Real-World Older Patients With Metastatic Renal Cell Carcinoma (mRCC) Receiving Cabozantinib: A Subanalysis of the Prospective ZEBRA Study (Meet-URO 9)
<p>Dataset for paper: Prognostic Stratification by the Meet-URO Score in Real-World Older Patients With Metastatic Renal Cell Carcinoma (mRCC) Receiving Cabozantinib: A Subanalysis of the Prospective ZEBRA Study (Meet-URO 9)</p>
Dataset for the paper "Analyses of tumor microenvironment in patients with advanced renal cell carcinoma receiving immunotherapy(Meet-URO 18 study)."
<p>Dataset for the paper "Analyses of tumor microenvironment in patients with advanced renal cell carcinoma receiving immunotherapy(Meet-URO 18 study)."</p>
Dataset for the Meet-URO 27 trial, paper "Real World Analysis of Peritoneal Metastasis From Renal Cell Carcinoma. Meet-Uro27"
<p>Dataset for the Meet-URO 27 trial, paper "Real World Analysis of Peritoneal Metastasis From Renal Cell Carcinoma. Meet-Uro27"</p>
Dataset for the ARON-2 trial, paper Global real-world experiences with pembrolizumab in advanced urothelial carcinoma after platinum-basedchemotherapy: the ARON-2 study.
<p>Dataset for the ARON-2 trial, paper: Global real-world experiences with pembrolizumab in advanced urothelial carcinoma after platinum-basedchemotherapy: the ARON-2 study.</p>
Single cell RNA-seq data from: Differentiation signals induce APOBEC3A expression via GRHL3 in squamous epithelia and squamous cell carcinoma
<p>Seurat object for single cell RNA-seq of 10 head and neck squamous cell carcinoma patients, epithelial cells only. From "Differentiation signals induce APOBEC3A expression via GRHL3 in squamous epithelia and squamous cell carcinoma ". <span><span>Two APOBEC (apolipoprotein-B mRNA editing enzyme catalytic polypeptide-like) </span><span>DNA </span><span>cytosine deaminase enzymes (APOBEC3A and APOBEC3B) generate somatic mutations in cancer, driving tumour development and drug resistance. Here we used single cell RNA sequencing to study </span></span><span><span>APOBEC3A</span></span><span><span> and </span></span><span><span>AP</span><span>OB</span><span>EC3B</span></span><span><span> expression in healthy and malignant mucosal epithelia, </span><span>validating</span> <span>key</span><span> observations </span><span>with</span><span> immunohistochemistry, spatial </span><span>transcriptomics</span><span> and functional experiments. Wh</span><span>ereas</span> </span><span><span>APOBEC3B</span></span><span><span> is expressed in keratinocytes entering mitosis, we show that </span></span><span><span>APOBEC3A</span></span><span><span> expression is confined</span> <span>largely</span><span> to</span><span> terminally differentiating cells</span><span> and </span><span>requires </span><span>Grainyhead</span><span>-like transcription factor 3 (GRHL3). T</span><span>hus</span><span>, in normal tissue,</span><span> neither </span><span>deaminase</span> <span>appears to be</span><span> expressed at </span><span>high levels</span><span> during DNA replication, the c</span><span>ell cycle stage</span> <span>associated with</span><span> APOBEC-mediated mutagenesis. </span><span>In</span><span> contrast, we show that in squamous cell carcinoma, there is expansion of </span></span><span><span>GRHL3</span></span><span> <span>expression and </span><span>activity to a subset of cells undergoing DNA replication and concomitant extension of </span></span><span><span>APOBEC3A</span></span><span><span> expression to proliferating cells. </span></span><span><span>These findings </span><span>suggest</span><span> that</span> <span>APOBEC3A</span><span> may play a functional role during keratinocyte differentiation</span><span> and offer</span> </span><span><span>a mechanism for acquisition of APOBEC3A mutagenic activity in tumour</span><span>s</span><span>.</span></span><span> </span></p>
Single-cell transcriptome analysis reveals evolving tumor microenvironment induced by immunochemotherapy in nasopharyngeal carcinoma
<p>18 bulks and 11 single-cell RNA sequencing samples from paired before anti-PD-1 contained treatment and on treatment in patients with treatment-naive high-risk metastatic locally advanced NPCs were obtained. We aim to explore the mechanism of response heterogeneity for locally advanced NPCs underwent immunochemotherapy.</p>
Comparative Analysis of Gut Microbiota in Hepatocellular Carcinoma and Hepatitis
<p><span><span> </span></span><span>The differential abundance of flora was modeled using support vector machine (SVM) methodology. Predictive performance for hepatocellular carcinoma and hepatitis was assessed using the model. 3 genera including <em>Paraprevotella</em>, <em>Pasteurellaceae</em>, and <em>Prevotellaceae</em> showed superior predictive performance for HCC, whereas <em>Oscillibacter</em>, <em>Clostridium_XVIII</em>, while 5 genera including <em><span> </span>Eggerthella</em> exhibited better predictive ability for HBV.</span></p> <p><span> </span></p>
Utilizing DNA pooling to predict cancer eye, ocular squamous cell carcinoma, in Hereford cattle
<p>Files include genotypes and dye intensity data from BovineHD bead array from a small closed population of Hereford cattle. 42 animals are individually genotyped and 10 pools of 50 animals are genotyped. Random regression of individual dye intensity data were regressed on pool data to estimate genetic connections between animals and pools. Covariances among animals for pool contributions were also estimated.</p>
Automated Cell type Annotation Testing with Clear Cell Renal Cell Carcinoma
Open the record for dataset details and reuse information.
GSK-3ß inhibitor and Actinonin can eliminate HNF-1ß overexpression in Clear Cell Carcinoma through glycolysis inhibition and mitochondrial turnover.
Open the record for dataset details and reuse information.
PLATE 7. FIGURES 91–105 in Carcinoma Folicular de Tiroides concomitante con Hiperparatiroidismo Primario. Caso Clínico
PLATE 7. FIGURES 91–105. Colour pattern for female front, mid and hind legs, respectively. 91–93: S. papaveroi (After Coscarón, 1982); 94–96: S. pertinax; 97–99: S. riograndense; 100–102: S. spinibranchium; 103–105: S. subpallidum. [Scale bars for all photographs except figures 91–93.]
PLATE 6. FIGURES 73–90 in Carcinoma Folicular de Tiroides concomitante con Hiperparatiroidismo Primario. Caso Clínico
PLATE 6. FIGURES 73–90. Colour pattern for female front, mid and hind legs, respectively. 73–75: S. bifenestratum (After Hamada & Pepinelli, 2004); 76–78: S. dekeyseri paratype; 79–81: S. distinctum; 82–84: S. friedlanderi; 85–87: S. jefersoni paratype; 88–90: S. obesum.
PLATE 3. FIGURES 31–44 in Carcinoma Folicular de Tiroides concomitante con Hiperparatiroidismo Primario. Caso Clínico
PLATE 3. FIGURES 31–44. Colour patterns for female thorax. For each species first figure is with anterior illumination and second figure with posterior illumination: 31, 32: S. bifenestratum (After Hamada & Pepinelli, 2004); 33, 34: S. dekeyseri holotype; 35, 36: S. dekeyseri paratype; 37, 38: S. dekeyseri variation; 39,40: S. distinctum lectotype; 41, 42: S. empascae; 43, 44: S. friedlanderi; 45, 46: S. jefersoni paratype.
PLATE 5. FIGURES 63–72 in Carcinoma Folicular de Tiroides concomitante con Hiperparatiroidismo Primario. Caso Clínico
PLATE 5. FIGURES 63–72. Colour patterns for female thorax. For each species first figure is with anterior illumination and second figure with posterior illumination: 63, 64: S. serranus; 65, 66: S. spinibranchium; 67–74: S. subpallidum colouration forms; 67–68: Orange form; 69–70: Grey form; 71–72: Black form.
PLATE 2. FIGURES 16–30 in Carcinoma Folicular de Tiroides concomitante con Hiperparatiroidismo Primario. Caso Clínico
PLATE 2. FIGURES 16–30. Cibarium of: 16: S. bifenestratum (After Hamada & Pepinelli, 2004); 17: S. dekeyseri paratype; 18: S. distinctum; 19: S. empascae; 20: S. friedlanderi; 21: S. jefersoni paratype; 22: S. obesum; 23: S. papaveroi (after Coscarón, 1981); 24: S. pertinax; 25: C. flavifemur paralectotype; 26: T. lutziana paralectotype; 27: S. riograndense; 28: S. serranus (after Coscarón, 1982); 29: S. spinibranchium; 30: S. subpallidum. [Scale bar for all photographs except Figs. 23, 28.]
PLATE 4. FIGURES 47–62 in Carcinoma Folicular de Tiroides concomitante con Hiperparatiroidismo Primario. Caso Clínico
PLATE 4. FIGURES 47–62. Colour patterns for female thorax. For each species first figure is with anterior illumination and second figure with posterior illumination, except for Fig. 50 in which the light source is lateral to the specimen (see Coscarón, 1982): 47, 48: S. obesum; 49, 50: S. papaveroi (After Coscaron, 1982); 51, 52: S. pertinax holotype; 53, 54: S. pertinax; 55, 56: C. flavifemur lectotype; 57, 58: T. lutziana lectotype; 59, 60: S. septentrionale holotype; 61, 62: S. riograndense. [Scale bars for all photographs except figures 49,50.]
PLATE 1. FIGURES 1–15 in Carcinoma Folicular de Tiroides concomitante con Hiperparatiroidismo Primario. Caso Clínico
PLATE 1. FIGURES 1–15. Nudiocular area of: 1: S. bifenestratum (After Hamada & Pepinelli, 2004); 2: S. dekeyseri paratype; 3: S. distinctum; 4: S. empascae; 5: S. friedlanderi; 6: S. jefersoni paratype; 7: S. obesum; 8: S. papaveroi (after Coscarón, 1981); 9: S. pertinax; 10: C. flavifemur paralectotype; 11: T. lutziana paralectotype; 12: S. riograndense; 13: S. serranus (after Coscarón, 1982); 14: S. spinibranchium; 15: S. subpallidum. [Scale bar for all photographs except Figs. 8, 13.]
PLATE 21. FIGURES 245–252 in Carcinoma Folicular de Tiroides concomitante con Hiperparatiroidismo Primario. Caso Clínico
PLATE 21. FIGURES 245–252. Right gill of: 245: S. bifenestratum (After Hamada & Pepinelli, 2004); 246: S. dekeyseri paratype; 247: S. distinctum (common pattern); 248: S. distinctum (variation); 249: S. empascae; 250: S. friedlanderi; 251: S. jefersoni paratype; 252: S. obesum.
PLATE 17. FIGURES 219–226 in Carcinoma Folicular de Tiroides concomitante con Hiperparatiroidismo Primario. Caso Clínico
PLATE 17. FIGURES 219–226. Male paramere of: 219: S. bifenestratum (After Hamada & Pepinelli, 2004); 220: S. dekeyseri paratype; 221: S. distinctum; 222: S. empascae; 223: S. friedlanderi; 224: S. jefersoni paratype; 225: S. obesum; 226: S. papaveroi (After Coscarón, 1982). [Scale bar for all photographs except for photographs 219, 226].
PLATE 16. FIGURES 206–218 in Carcinoma Folicular de Tiroides concomitante con Hiperparatiroidismo Primario. Caso Clínico
PLATE 16. FIGURES 206–218. Male median sclerite of: 206: S. bifenestratum (After Hamada & Pepinelli, 2004); 207: S. dekeyseri paratype; 208: S. distinctum; 209: S. empascae; 210: S. friedlanderi; 211: S. jefersoni paratype; 212: S. obesum; 213: S. papaveroi (After Coscarón, 1982); 214: S. pertinax; 215: S. riograndense; 216: S. serranus paratype; 217: S. spinibranchium; 218: S. subpallidum [Scale bar for all photographs except photographs 206, 213].
ScienceDex guides
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
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.