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<biogps><data><item><item key="slug">isr-target-genes-in-the-liver-of-either-lfd-and-hf</item><item key="name">ISR target genes in the liver of either LFD and HFD-treated Alb::GC mice and AP20187-treated TTR::Fv2E-PERK mice</item><item key="sample_count">16</item><item key="tags"><item>arm</item><item>endoplasmic reticulum</item><item>glucose</item><item>glucose intolerance</item><item>glycogen</item><item>hypoglycemia</item><item>liver</item><item>protein</item></item><item key="id">5370</item><item key="is_default">False</item><item key="geo_gse_id">E-GEOD-11210</item><item key="species">mouse</item><item key="factor_count">0</item></item><item><item key="slug">kras-is-required-for-pancreatic-tumor-maintenance</item><item key="name">Kras is required for pancreatic tumor maintenance through regulation of hexosamine biosynthesis and the non-oxidative pentose phosphate pathway</item><item key="sample_count">33</item><item key="tags"><item>adenocarcinoma</item><item>arm</item><item>ductal adenocarcinoma</item><item>glucose</item><item>pancreatic ductal adenocarcinoma</item><item>pancreatic tumor</item></item><item key="id">6636</item><item key="is_default">False</item><item key="geo_gse_id">E-GEOD-32277</item><item key="species">mouse</item><item key="factor_count">2</item></item><item><item key="slug">liver-expression-data-from-lactating-qsi5-mice</item><item key="name">Liver expression data from lactating QSi5 mice</item><item key="sample_count">10</item><item key="tags"><item>gland</item><item>glucose</item><item>liver</item></item><item key="id">6279</item><item key="is_default">False</item><item key="geo_gse_id">E-GEOD-25616</item><item key="species">mouse</item><item key="factor_count">1</item></item><item><item key="slug">long-term-pioglitazone-improves-learning-and-atten</item><item key="name">Long-term pioglitazone improves learning and attenuates pathological markers in a mouse model of AD</item><item key="sample_count">16</item><item key="tags"><item>alzheimer's disease</item><item>body</item><item>brain</item><item>disease</item><item>glucose</item><item>hippocampus</item><item>insulin</item><item>membrane</item><item>peroxisome</item><item>serum</item></item><item key="id">6652</item><item key="is_default">False</item><item key="geo_gse_id">E-GEOD-32536</item><item key="species">mouse</item><item key="factor_count">0</item></item><item><item key="slug">loss-of-hepatocyte-nuclear-factor-1-impacts-on-adu</item><item key="name">Loss of Hepatocyte-Nuclear-Factor-1&#945; Impacts on Adult Mouse Intestinal Epithelial Cell Growth and Cell Lineages Differentiation</item><item key="sample_count">6</item><item key="tags"><item>cell</item><item>enteroendocrine cell</item><item>epithelial cell</item><item>glucose</item><item>hepatocyte</item><item>intestinal epithelium</item><item>intestine</item><item>jejunum</item><item>liver</item><item>pancreas</item><item>paneth cell</item><item>small intestine</item></item><item key="id">6160</item><item key="is_default">False</item><item key="geo_gse_id">E-GEOD-23040</item><item key="species">mouse</item><item key="factor_count">2</item></item><item><item key="slug">mitochondrial-myopathy-elicits-global-starvation-r</item><item key="name">Mitochondrial myopathy elicits global starvation response through FGF21</item><item key="sample_count">7</item><item key="tags"><item>disease</item><item>external</item><item>fatty acid</item><item>fibroblast</item><item>glucose</item><item>hormone</item><item>insulin</item><item>mitochondrial disease</item><item>mitochondrial myopathy</item><item>muscle</item><item>myopathy</item><item>obesity</item><item>organ</item><item>protein</item><item>quadriceps femoris</item></item><item key="id">5827</item><item key="is_default">False</item><item key="geo_gse_id">E-GEOD-18119</item><item key="species">mouse</item><item key="factor_count">2</item></item><item><item key="slug">multiple-roles-for-steroid-receptor-rna-activator</item><item key="name">Multiple Roles for Steroid Receptor RNA Activator (SRA) in Regulation of Adipogenesis and Insulin Sensitivity</item><item key="sample_count">12</item><item key="tags"><item>adipocyte</item><item>adipose tissue</item><item>cell</item><item>genome</item><item>glucose</item><item>insulin</item></item><item key="id">6061</item><item key="is_default">False</item><item key="geo_gse_id">E-GEOD-21594</item><item key="species">mouse</item><item key="factor_count">3</item></item><item><item key="slug">nutrient-dependent-growth-of-nih3t3-and-nih3t3-k-r</item><item key="name">Nutrient-dependent growth of NIH3T3 and NIH3T3 K-ras cell lines.</item><item key="sample_count">28</item><item key="tags"><item>cell</item><item>genome</item><item>glucose</item></item><item key="id">6498</item><item key="is_default">False</item><item key="geo_gse_id">E-GEOD-29962</item><item key="species">mouse</item><item key="factor_count">3</item></item><item><item key="slug">phloridzin-reduces-blood-glucose-levels-and-alters</item><item key="name">Phloridzin reduces blood glucose levels and alters hepatic gene expression in normal BALB/c mice</item><item key="sample_count">24</item><item key="tags"><item>glucose</item><item>intestine</item><item>small intestine</item></item><item key="id">6859</item><item key="is_default">False</item><item key="geo_gse_id">E-GEOD-37415</item><item key="species">mouse</item><item key="factor_count">0</item></item><item><item key="slug">progressive-loss-of-pgc-1alpha-expression-in-aging</item><item key="name">Progressive loss of PGC-1alpha expression in aging muscle potentiates glucose intolerance and systemic inflammation</item><item key="sample_count">12</item><item key="tags"><item>gastrocnemius</item><item>glucose</item><item>glucose intolerance</item><item>muscle</item></item><item key="id">7499</item><item key="is_default">False</item><item key="geo_gse_id">E-GEOD-52550</item><item key="species">mouse</item><item key="factor_count">2</item></item></data></biogps>
