<HashMap><database>bioimages</database><scores/><additional><omics_type>Unknown</omics_type><submitter>Eliza Żyłkiewicz</submitter><journal>The Journal of Cell Biology</journal><full_dataset_link>https://www.ebi.ac.uk/biostudies/studies/S-JCBD-201011142</full_dataset_link><attach_to>JCB</attach_to><legend>Image showing formation of unfocused microtubule structures in Xenopus egg extracts in the presence of function blocking xNdel1 antibodies(anti-xNdel1).</legend><legend>Image showing xNdel1 co-localization with dynein IC (DIC) in the center of Ran aster.</legend><legend>Image showing rescue of aster formation in xNdel1-depleted Xenopus egg extracts in the presence of additional LIS1 (xNdel1+LIS1).</legend><legend>Image showing formation of unfocused microtubule structures in xNdel1-depleted Xenopus egg extracts in the presence of mNdel1 88-192 (xNdel1+88-192).&lt;br />&lt;br /></legend><legend>Image showing rescue of aster formation in xNdel1-depleted Xenopus egg extracts in the presence of mNdel1 8-192 (xNdel1+8-192)</legend><legend>Image showing DMSO-induced aster formation in control Xenopus egg extracts in the presence of control rabbit IgG (IgG).</legend><legend>Image showing rescue of aster formation in xNdel1-depleted Xenopus egg extracts in the presence of mNdel1 8-192 E36A/E39A (xNdel1+8-192 E36A/E39A).</legend><legend>Image showing formation of multiple foci in xNdel1-depleted Xenopus egg extracts in the presence of LIS1 (xNdel1+LIS1).</legend><legend>Image showing formation of hollow asters in xNdel1-depleted Xenopus egg extracts in the presence of mNdel1 8-192 E119A/R130A and LIS1 (xNdel1+8-192 E119A/R130A+LIS1).</legend><legend>Image showing formation of unfocused microtubule structures in xNdel1-depleted Xenopus egg extracts in the presence of mNdel1 8-310 E48A/E52A (xNdel1+8-310 E48A/E52A).</legend><legend>Image showing aster formation in control depleted Xenopus egg extracts in the presence of BSA (IgG+BSA).&lt;br />&lt;br /></legend><legend>Image showing formation of unfocused microtubule structures in Xenopus egg extracts in the presence of a dominant negative p50/dynamitin subunit of dynactin(p50/dynamitin).</legend><legend>Image showing rescue of aster formation in xNdel1-depleted Xenopus egg extracts in the presence of mNde1 7-170 (xNdel1+mNde1 7-170).</legend><legend>Image showing formation of unfocused microtubule structures in xNdel1-depleted Xenopus egg extracts in the presence of control BSA (xNdel1+BSA).</legend><legend>Image showing rescue of aster formation in xNdel1-depleted Xenopus egg extracts in the presence of mNdel1 8-192 (xNdel1+8-192).</legend><legend>Image showing rescue of aster formation in xNdel1-depleted Xenopus egg extracts in the presence of mNdel1 1-174 (xNdel1+1-174).</legend><legend>Image showing rescue of aster formation in xNdel1-depleted Xenopus egg extracts in the presence of mNdel1 8-310 (xNdel1+8-310).</legend><legend>Image showing aster formation in control Xenopus egg extracts in the presence of control rabbit IgG (IgG).</legend><legend>Image showing formation of unfocused microtubule structures in xNdel1-depleted Xenopus egg extracts in the presence of mNdel1 8-192 E48A/E52A (xNdel1+8-192 E48A/E52A).</legend><legend>Image showing aster formation in control depleted Xenopus egg extracts in the presence of BSA (IgG+BSA).</legend><legend>Image showing formation of unfocused microtubule structures in xNdel1-depleted Xenopus egg extracts in the presence of mNde1 7-99 (xNdel1+mNde1 7-99).</legend><legend>Image showing rescue of aster formation in xNdel1-depleted Xenopus egg extracts in the presence of mNdel1 8-192 E119A/R130A and LIS1(xNdel1+8-192 E119A/R130A+LIS1).</legend><legend>Image showing formation of microtubule bundles in xNdel1-depleted Xenopus egg extracts in the presence of mNdel1 8-192 E119A/R130A (xNdel1+8-192 E119A/R130A).</legend><legend>Image showing formation of unfocused microtubule structures in xNdel1-depleted Xenopus egg extracts in the presence of control BSA (xNdel1+BSA).&lt;br />&lt;br /></legend><legend>Image showing aster formation in control depleted Xenopus egg extracts in the presence of BSA (IgG+BSA).&lt;br />Note: Images are shown for the same experiment as in Figure 3 e, and the same control IgG depletion is presented.</legend><legend>Image showing formation of unfocused microtubule structures in Xenopus egg extracts in the presence of function blocking DIC antibodies(anti-DIC).</legend><legend>Image showing formation of unfocused microtubule structures in xNdel1-depleted Xenopus egg extracts in the presence of mNdel1 8-99 (xNdel1+8-99).</legend><repository>bioimages</repository><figure_sub>Image 28999 (Figure 2 - b')</figure_sub><figure_sub>Image 29850 (Figure 1 - d)</figure_sub><figure_sub>Figure 1 - d</figure_sub><figure_sub>Figure 1 - c</figure_sub><figure_sub>Image 29046 (Figure 5 - b)</figure_sub><figure_sub>Image 29043 (Figure 5 - b)</figure_sub><figure_sub>Image 29004 (Figure 3 - e)</figure_sub><figure_sub>Figure 2 - b'</figure_sub><figure_sub>Image 29006 (Figure 3 - e)</figure_sub><figure_sub>Image 28998 (Figure 2 - b')</figure_sub><figure_sub>Image 29008 (Figure 4 - c)</figure_sub><figure_sub>Image 29010 (Figure 4 - c)</figure_sub><figure_sub>Image 29044 (Figure 5 - b)</figure_sub><figure_sub>Image 28995 (Figure 2 - b')</figure_sub><figure_sub>Image 29005 (Figure 3 - e)</figure_sub><figure_sub>Image 31524 (Figure 2 - d')</figure_sub><figure_sub>Image 29007 (Figure 4 - c)</figure_sub><figure_sub>Image 29045 (Figure 5 - b)</figure_sub><figure_sub>Image 29042 (Figure 5 - b)</figure_sub><figure_sub>Image 29003 (Figure 3 - e)</figure_sub><figure_sub>Figure 5 - b</figure_sub><figure_sub>Image 29329 (Figure 1 - c)</figure_sub><figure_sub>Figure 5 - d</figure_sub><figure_sub>Image 29048 (Figure 5 - d)</figure_sub><figure_sub>Image 28997 (Figure 2 - b')</figure_sub><figure_sub>SupFigure 2</figure_sub><figure_sub>Image 29014 (SupFigure 2 - b)</figure_sub><figure_sub>SupFigure 5</figure_sub><figure_sub>Image 29851 (Figure 1 - d)</figure_sub><figure_sub>Image 29009 (Figure 4 - c)</figure_sub><figure_sub>Image 29047 (Figure 5 - b)</figure_sub><figure_sub>Image 31522 (Figure 2 - d')</figure_sub><figure_sub>Image 31525 (Figure 2 - d')</figure_sub><figure_sub>SupFigure 2 - b</figure_sub><figure_sub>Figure 3 - e</figure_sub><figure_sub>Image 29001 (Figure 3 - e)</figure_sub><figure_sub>SupFigure 5 - b</figure_sub><figure_sub>Image 29849 (Figure 1 - d)</figure_sub><figure_sub>Figure 2 - d'</figure_sub><figure_sub>Image 29852 (Figure 1 - d)</figure_sub><figure_sub>Image 29013 (SupFigure 2 - b)</figure_sub><figure_sub>Image 29011 (SupFigure 5 - b)</figure_sub><figure_sub>Figure 5</figure_sub><figure_sub>Figure 4</figure_sub><figure_sub>Image 29002 (Figure 3 - e)</figure_sub><figure_sub>Image 28996 (Figure 2 - b')</figure_sub><figure_sub>Image 29000 (Figure 2 - b')</figure_sub><figure_sub>Figure 1</figure_sub><figure_sub>Image 29012 (SupFigure 5 - b)</figure_sub><figure_sub>Figure 3</figure_sub><figure_sub>Figure 4 - c</figure_sub><figure_sub>Figure 2</figure_sub><pubmed_authors>Won-Chan Choi</pubmed_authors><pubmed_authors>Urszula Derewenda</pubmed_authors><pubmed_authors>Monika Kijańska</pubmed_authors><pubmed_authors>Zygmunt S. Derewenda</pubmed_authors><pubmed_authors>P. Todd Stukenberg</pubmed_authors><pubmed_authors>Eliza Żyłkiewicz</pubmed_authors></additional><is_claimable>false</is_claimable><name>The N-terminal coiled-coil of Ndel1 is a regulated scaffold that recruits LIS1 to dynein</name><description/><dates><release>2011-01-31T11:21:41Z</release><modification>2018-11-29T11:21:41Z</modification><creation>2018-11-29T11:21:41Z</creation></dates><accession>S-JCBD-201011142</accession><cross_references><doi>10.1083/jcb.201011142</doi></cross_references></HashMap>