<HashMap><database>bioimages</database><scores/><additional><omics_type>Unknown</omics_type><submitter>Sebastian Schuck</submitter><journal>The Journal of Cell Biology</journal><full_dataset_link>https://www.ebi.ac.uk/biostudies/studies/S-JCBD-200907074</full_dataset_link><attach_to>JCB</attach_to><legend>Light microscopy image of wild type cells treated with DTT for 2h. Sec63-GFP is shown in green, Rtn1-cherry in red.</legend><legend>Electron micrograph of untreated opi1 mutant cell.</legend><legend>Light microscopy image of untreated hac1 mutant cells. Sec63-GFP is shown in green, Rtn1-cherry in red.</legend><legend>Electron micrograph of wild type cells treated with DTT for 2h.</legend><legend>Light microscopy image of hac1 mutant cells treated with DTT for 2h. Sec63-GFP is shown in green, Rtn1-cherry in red.</legend><legend>Electron micrograph of hac1 mutant cell treated with DTT for 2h.</legend><legend>Light microscopy image of untreated wild type cells. Rtn1-GFP is shown in green, dsRed-HDEL in red.</legend><legend>Light microscopy image of untreated opi1 mutant cells. Rtn1-GFP is shown in green, dsRed-HDEL in red.</legend><legend>Electron micrograph of untreated wild type cell.</legend><legend>Light microscopy image of untreated wild type cells. Sec63-GFP is shown in green, Rtn1-cherry in red.</legend><legend>Light microscopy image of untreated opi1 mutant cells overexpressing untagged Rtn1 from a multicopy plasmid. Rtn1-GFP is shown in green, dsRed-HDEL in red.</legend><legend>Electron micrograph of wild type cell treated with DTT for 2h.</legend><repository>bioimages</repository><figure_sub>Image 8347 (Figure_7 - C)</figure_sub><figure_sub>Figure_1 - D</figure_sub><figure_sub>Image 8336 (Figure_1 - D)</figure_sub><figure_sub>Figure_S2</figure_sub><figure_sub>Figure_1 - C</figure_sub><figure_sub>Image 8340 (Figure_2 - C)</figure_sub><figure_sub>Image 8342 (Figure_2 - D)</figure_sub><figure_sub>Figure_4</figure_sub><figure_sub>Figure_2 - D</figure_sub><figure_sub>Figure_7</figure_sub><figure_sub>Figure_2 - C</figure_sub><figure_sub>Image 8343 (Figure_2 - D)</figure_sub><figure_sub>Figure_2</figure_sub><figure_sub>Figure_1</figure_sub><figure_sub>Image 8341 (Figure_2 - C)</figure_sub><figure_sub>Image 8345 (Figure_7 - C)</figure_sub><figure_sub>Image 8339 (Figure_1 - D)</figure_sub><figure_sub>Figure_7 - C</figure_sub><figure_sub>Image 8349 (Figure_S2 - B)</figure_sub><figure_sub>Image 8344 (Figure_4 - D)</figure_sub><figure_sub>Image 8350 (Figure_S2 - B)</figure_sub><figure_sub>Image 8338 (Figure_1 - C)</figure_sub><figure_sub>Image 8346 (Figure_7 - C)</figure_sub><figure_sub>Image 8337 (Figure_1 - C)</figure_sub><figure_sub>Figure_4 - D</figure_sub><figure_sub>Image 8348 (Figure_S2 - A)</figure_sub><figure_sub>Figure_S2 - B</figure_sub><figure_sub>Figure_S2 - A</figure_sub><pubmed_authors>Peter Walter</pubmed_authors><pubmed_authors>Sebastian Schuck</pubmed_authors><pubmed_authors>Kurt S. Thorn</pubmed_authors><pubmed_authors>Christiane Voss</pubmed_authors><pubmed_authors>William A. Prinz</pubmed_authors></additional><is_claimable>false</is_claimable><name>Membrane expansion alleviates endoplasmic reticulum stress independently of the unfolded protein response</name><description/><dates><release>2009-11-09T11:18:20Z</release><modification>2018-11-29T11:18:20Z</modification><creation>2018-11-29T11:18:20Z</creation></dates><accession>S-JCBD-200907074</accession><cross_references><doi>10.1083/jcb.200907074</doi></cross_references></HashMap>