<?xml version="1.0" encoding="ASCII"?>
<biogps><data><item><item key="factor_count">1</item><item key="sample_count">20</item><item key="tags"><item>bone</item><item>bone marrow</item><item>cell</item><item>dendritic</item><item>genome</item><item>insulin</item><item>lymphoid tissue</item><item>stem cell</item><item>surface</item></item><item key="id">6128</item><item key="is_default">False</item><item key="geo_gse_id">E-GEOD-22432</item><item key="species">mouse</item><item key="slug">tgf-1-accelerates-dendritic-cell-differentiation-f</item><item key="name">TGF-&#946;1 Accelerates Dendritic Cell Differentiation from Common Dendritic Cell Progenitors (CDPs) and Directs Subset Specification Towards Conventional Dendritic Cells</item></item><item><item key="factor_count">0</item><item key="sample_count">10</item><item key="tags"><item>breast</item><item>breast cancer</item><item>cancer</item><item>cell</item><item>class</item><item>gas</item><item>genome</item><item>gland</item><item>protein</item></item><item key="id">5552</item><item key="is_default">False</item><item key="geo_gse_id">E-GEOD-13553</item><item key="species">mouse</item><item key="slug">the-effect-of-dietary-cla-on-mammary-tumorigenesis</item><item key="name">The effect of dietary CLA on mammary tumorigenesis</item></item><item><item key="factor_count">2</item><item key="sample_count">20</item><item key="tags"><item>acetylcholine</item><item>acetylcholine receptor</item><item>brain</item><item>genome</item><item>immune system</item><item>nicotinic acetylcholine receptor</item><item>ribosome</item></item><item key="id">5986</item><item key="is_default">False</item><item key="geo_gse_id">E-GEOD-20411</item><item key="species">mouse</item><item key="slug">the-effects-of-aging-vs-alpha7-nachr-subunit-defic</item><item key="name">The effects of aging vs. alpha7 nAChR subunit deficiency on the mouse brain transcriptome</item></item><item><item key="factor_count">2</item><item key="sample_count">10</item><item key="tags"><item>cardiomyopathy</item><item>disease</item><item>genome</item><item>hypertrophic cardiomyopathy</item><item>left</item></item><item key="id">6487</item><item key="is_default">False</item><item key="geo_gse_id">E-GEOD-29648</item><item key="species">mouse</item><item key="slug">the-impact-of-a-phytoestrogen-rich-diet-on-cardiac</item><item key="name">The impact of a phytoestrogen-rich diet on cardiac gene expression in the context of HCM</item></item><item><item key="factor_count">1</item><item key="sample_count">18</item><item key="tags"><item>analgesia</item><item>congenital insensitivity to pain</item><item>dorsal</item><item>dorsal root</item><item>enkephalin</item><item>genome</item><item>neuron</item><item>peripheral</item><item>protein</item><item>sensory neuron</item><item>spinal cord</item></item><item key="id">7712</item><item key="is_default">False</item><item key="geo_gse_id">E-GEOD-61373</item><item key="species">mouse</item><item key="slug">the-molecular-basis-of-analgesia-in-congenital-ins</item><item key="name">The molecular basis of analgesia in congenital insensitivity to pain associated with loss of Nav1.7 function</item></item><item><item key="factor_count">0</item><item key="sample_count">4</item><item key="tags"><item>cell</item><item>chromatin</item><item>genome</item><item>protein</item><item>stem cell</item></item><item key="id">5930</item><item key="is_default">False</item><item key="geo_gse_id">E-GEOD-19502</item><item key="species">mouse</item><item key="slug">hematopoietic-stem-cell-differentiation-regulated</item><item key="name">Hematopoietic Stem Cell Differentiation Regulated by a Single Ubiquitin Ligase: Substrate Complex</item></item><item><item key="factor_count">1</item><item key="sample_count">8</item><item key="tags"><item>genome</item><item>liver</item></item><item key="id">6982</item><item key="is_default">False</item><item key="geo_gse_id">E-GEOD-40261</item><item key="species">mouse</item><item key="slug">hepatic-gene-expression-changes-following-antisens</item><item key="name">Hepatic gene expression changes following antisense oligonucleotide-based inhibition of miR-29a</item></item><item><item key="factor_count">2</item><item key="sample_count">28</item><item key="tags"><item>genome</item><item>liver</item><item>middle</item></item><item key="id">6072</item><item key="is_default">False</item><item key="geo_gse_id">E-GEOD-21716</item><item key="species">mouse</item><item key="slug">hepatic-xenobiotic-metabolizing-enzyme-gene-expres</item><item key="name">Hepatic xenobiotic metabolizing enzyme gene expression through the life stages of the mouse</item></item><item><item key="factor_count">2</item><item key="sample_count">16</item><item key="tags"><item>brain</item><item>clathrin</item><item>genome</item><item>hippocampus</item><item>phosphatidylinositol</item><item>protein</item></item><item key="id">7400</item><item key="is_default">False</item><item key="geo_gse_id">E-GEOD-49699</item><item key="species">mouse</item><item key="slug">hippocampal-gene-expression-in-young-and-adult-mic</item><item key="name">Hippocampal Gene Expression in Young and Adult Mice with Memory Deficits</item></item><item><item key="factor_count">1</item><item key="sample_count">6</item><item key="tags"><item>body</item><item>brain</item><item>central</item><item>class</item><item>disease</item><item>genome</item><item>hippocampus</item><item>neuron</item><item>point</item><item>protein</item></item><item key="id">7291</item><item key="is_default">False</item><item key="geo_gse_id">E-GEOD-46871</item><item key="species">mouse</item><item key="slug">hippocampal-gene-expression-profiling-of-a-model-o</item><item key="name">Hippocampal gene expression profiling of a model of Alzheimer`s Disease upon treatment with the ACE inhibitor captopril</item></item></data></biogps>
