<?xml version="1.0" encoding="ASCII"?>
<biogps><data><item><item key="factor_count">1</item><item key="sample_count">14</item><item key="tags"><item>basal</item><item>breast</item><item>cancer</item><item>cell</item><item>histone</item><item>phosphatidylinositol</item><item>primary breast cancer</item></item><item key="slug">a-phenotype-based-model-for-rational-selection-of</item><item key="is_default">False</item><item key="geo_gse_id">E-GEOD-18331</item><item key="id">3434</item><item key="species">human</item><item key="name">A phenotype-based model for rational selection of novel targeted therapies in treating aggressive breast cancer</item></item><item><item key="factor_count">2</item><item key="sample_count">18</item><item key="tags"><item>genome</item><item>sarcoma</item></item><item key="slug">apoptosis-regulation-by-kaposis-sarcoma-micrornas</item><item key="is_default">False</item><item key="geo_gse_id">E-GEOD-18946</item><item key="id">3486</item><item key="species">human</item><item key="name">Apoptosis regulation by Kaposi&#8217;s sarcoma microRNAs</item></item><item><item key="factor_count">2</item><item key="sample_count">4</item><item key="tags"><item>cancer</item><item>cell</item><item>genome</item><item>prostate</item><item>prostate cancer</item></item><item key="slug">ar-binding-in-prostate-cancer-cell-lines-vcap-and</item><item key="is_default">False</item><item key="geo_gse_id">E-GEOD-32356</item><item key="id">4240</item><item key="species">human</item><item key="name">AR binding in prostate cancer cell lines VCaP and VCS2</item></item><item><item key="factor_count">2</item><item key="sample_count">3</item><item key="tags"><item>cancer</item><item>cell</item><item>intermediate</item><item>nervous system</item><item>neuroblastoma</item></item><item key="slug">array-based-gene-expression-in-neuroblastic-tumors</item><item key="is_default">False</item><item key="geo_gse_id">E-GEOD-18139</item><item key="id">3413</item><item key="species">human</item><item key="name">Array-based gene expression in neuroblastic tumors</item></item><item><item key="factor_count">3</item><item key="sample_count">40</item><item key="tags"><item>cancer</item><item>esophageal cancer</item></item><item key="slug">artificially-induced-epithelial-mesenchymal-transi</item><item key="is_default">False</item><item key="geo_gse_id">E-GEOD-22954</item><item key="id">3745</item><item key="species">human</item><item key="name">Artificially induced epithelial-mesenchymal transition in surgical subjects: its implications in clinical and basic cancer research</item></item><item><item key="factor_count">2</item><item key="sample_count">8</item><item key="tags"><item>cell</item><item>point</item><item>purine</item><item>stem cell</item></item><item key="slug">aryl-hydrocarbon-receptor-antagonists-promote-the</item><item key="is_default">False</item><item key="geo_gse_id">E-GEOD-28359</item><item key="id">4025</item><item key="species">human</item><item key="name">Aryl hydrocarbon receptor antagonists promote the expansion of human hematopoietic stem cells</item></item><item><item key="factor_count">0</item><item key="sample_count">94</item><item key="tags"><item>cancer</item><item>genome</item></item><item key="slug">a-signature-predicting-poor-prognosis-in-gastric-a</item><item key="is_default">False</item><item key="geo_gse_id">E-GEOD-51105</item><item key="id">2079</item><item key="species">human</item><item key="name">A signature predicting poor prognosis in gastric and ovarian cancer represents a coordinated macrophage and stromal-response.</item></item><item><item key="factor_count">1</item><item key="sample_count">26</item><item key="tags"><item>disease</item><item>peripheral</item><item>platelet</item></item><item key="slug">aspirin-exposure-reveals-novel-genes-associated-wi</item><item key="is_default">False</item><item key="geo_gse_id">E-GEOD-38511</item><item key="id">2195</item><item key="species">human</item><item key="name">Aspirin Exposure Reveals Novel Genes Associated with Platelet Function and Cardiovascular Events (outpatient cardiology)</item></item><item><item key="factor_count">1</item><item key="sample_count">20</item><item key="tags"><item>cell</item><item>stem cell</item><item>umbilical cord</item></item><item key="slug">assessment-of-ex-vivo-prostaglandin-pathway-activa</item><item key="is_default">False</item><item key="geo_gse_id">E-GEOD-36547</item><item key="id">4439</item><item key="species">human</item><item key="name">Assessment of Ex Vivo Prostaglandin pathway activation in HSCs</item></item><item><item key="factor_count">6</item><item key="sample_count">92</item><item key="tags"><item>chromatid</item><item>genome</item><item>mucosa</item><item>peripheral</item></item><item key="slug">assessment-of-genotoxic-effects-and-changes-in-gen</item><item key="is_default">False</item><item key="geo_gse_id">E-GEOD-27263</item><item key="id">3962</item><item key="species">human</item><item key="name">Assessment of genotoxic effects and changes in gene expression in humans exposed to formaldehyde by inhalation under controlled conditions</item></item></data></biogps>
