<emd emdb_id="EMD-5626" version="3.0.1.1" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xsi:schemaLocation="https://github.com/emdb-empiar/emdb-schemas/blob/master/v3/v3_0_1_1/emdb_relaxed.xsd">
    <admin>
        <current_status>
            <code>REL</code>
            <processing_site>RCSB</processing_site>
        </current_status>
        <sites>
            <deposition>RCSB</deposition>
            <last_processing>RCSB</last_processing>
        </sites>
        <key_dates>
            <deposition>2013-04-05</deposition>
            <header_release>2013-07-03</header_release>
            <map_release>2013-09-25</map_release>
            <update>2013-09-25</update>
        </key_dates>
        <title>Molecular Architecture of the ATP-Dependent Chromatin Remodeling Complex SWR1 by 3 Dimensional Electron Microscopy</title>
        <authors_list>
            <author>Nguyen VQ</author>
            <author>Ranjan A</author>
            <author>Stengel F</author>
            <author>Wei D</author>
            <author>Aebersold R</author>
            <author>Wu C</author>
            <author>Leschziner AE</author>
        </authors_list>
        <keywords>SWR1, ATP-dependent chromatin remodeling, nucleosome, H2A.Z, Rvb1, Rvb2, AAA+ ATPases, 3 dimensional electron microscopy</keywords>
    </admin>
    <crossreferences>
        <citation_list>
            <primary_citation>
                <journal_citation published="true">
                    <author order="1">Nguyen VQ</author>
                    <author order="2">Ranjan A</author>
                    <author order="3">Stengel F</author>
                    <author order="4">Wei D</author>
                    <author order="5">Aebersold R</author>
                    <author order="6">Wu C</author>
                    <author order="7">Leschziner AE</author>
                    <title>Molecular architecture of the ATP-dependent chromatin-remodeling complex SWR1.</title>
                    <journal>CELL(CAMBRIDGE,MASS.)</journal>
                    <volume>154</volume>
                    <first_page>1220</first_page>
                    <last_page>1231</last_page>
                    <year>2013</year>
                    <external_references type="PUBMED">24034246</external_references>
                    <external_references type="DOI">doi:10.1016/j.cell.2013.08.018</external_references>
                </journal_citation>
            </primary_citation>
        </citation_list>
        <emdb_list>
            <emdb_reference>
                <emdb_id>EMD-5638</emdb_id>
                <relationship>
                    <in_frame>FULLOVERLAP</in_frame>
                </relationship>
            </emdb_reference>
        </emdb_list>
    </crossreferences>
    <sample>
        <name>ATP-dependent chromatin remodeling complex SWR1</name>
        <supramolecule_list>
            <sample_supramolecule supramolecule_id="1000">
                <name>ATP-dependent chromatin remodeling complex SWR1</name>
                <number_unique_components>14</number_unique_components>
                <molecular_weight>
                    <theoretical units="MDa">1.0</theoretical>
                </molecular_weight>
            </sample_supramolecule>
        </supramolecule_list>
        <macromolecule_list>
            <protein_or_peptide macromolecule_id="1">
                <name>SWR1</name>
                <natural_source database="NCBI">
                    <organism ncbi="4932">Saccharomyces cerevisiae</organism>
                    <strain>W1588C-4C</strain>
                    <synonym_organism>Baker's yeast</synonym_organism>
                </natural_source>
                <molecular_weight>
                    <theoretical units="MDa">1.0</theoretical>
                </molecular_weight>
                <recombinant_exp_flag>false</recombinant_exp_flag>
                <recombinant_expression database="NCBI" />
                <sequence />
            </protein_or_peptide>
        </macromolecule_list>
    </sample>
    <structure_determination_list>
        <structure_determination structure_determination_id="1">
            <method>singleParticle</method>
            <aggregation_state>particle</aggregation_state>
            <specimen_preparation_list>
                <single_particle_preparation preparation_id="1">
                    <buffer>
                        <ph>7.6</ph>
                        <details>25 mM HEPES-KOH, 1 mM EDTA, 2 mM MgCl2, 0.01% NP-40, 1 mM DTT, 100 mM KCl</details>
                    </buffer>
                    <staining>
                        <type>NEGATIVE</type>
                        <details>Sample was adsorbed for 15-30 minutes at 4 degrees C. Grid was rinsed with drops of stain (2% uranyl formate) and then a second layer of thin carbon was floated onto the grid. After blotting, the grid was frozen in liquid nitrogen.</details>
                    </staining>
                    <grid>
                        <details>Cu 200-mesh Quantifoil grids with thin carbon support, glow discharged in air</details>
                    </grid>
                    <vitrification>
                        <cryogen_name>NITROGEN</cryogen_name>
                        <instrument>OTHER</instrument>
                        <method>Cryo-negative staining with manual freezing</method>
                    </vitrification>
                </single_particle_preparation>
            </specimen_preparation_list>
            <microscopy_list>
                <single_particle_microscopy microscopy_id="1">
                    <microscope>FEI TECNAI F20</microscope>
                    <illumination_mode>FLOOD BEAM</illumination_mode>
                    <imaging_mode>BRIGHT FIELD</imaging_mode>
                    <electron_source>FIELD EMISSION GUN</electron_source>
                    <acceleration_voltage units="kV">120</acceleration_voltage>
                    <nominal_cs units="mm">2.0</nominal_cs>
                    <nominal_defocus_min units="&#181;m">0.5</nominal_defocus_min>
                    <nominal_defocus_max units="&#181;m">2.0</nominal_defocus_max>
                    <nominal_magnification>62000.0</nominal_magnification>
                    <calibrated_magnification>87000.0</calibrated_magnification>
                    <specimen_holder_model>GATAN LIQUID NITROGEN</specimen_holder_model>
                    <temperature>
                        <temperature_average units="K">100</temperature_average>
                    </temperature>
                    <date>2012-05-20</date>
                    <image_recording_list>
                        <image_recording>
                            <digitization_details>
                                <sampling_interval units="&#181;m">15</sampling_interval>
                            </digitization_details>
                            <number_real_images>300</number_real_images>
                            <average_electron_dose_per_image units="e/&#8491;^2">20</average_electron_dose_per_image>
                            <detector_distance>15</detector_distance>
                        </image_recording>
                    </image_recording_list>
                </single_particle_microscopy>
            </microscopy_list>
            <singleparticle_processing image_processing_id="1">
                <details>In order to extract the molecular images from the micrographs, particles were windowed out in one set of micrographs (-45 degrees) using the Boxer interface in EMAN1. Custom-built SPIDER scripts were used to calculate alignment parameters between the +45 degree and -45 degree micrographs and to extract the tilt mates in the +45 degree micrographs. The Contrast Transfer Function (CTF) was estimated and corrected for using the program CTFTILT and the SPIDER command TF CT. Single particles were binned by 2, resulting in a pixel size of 3.3 Angstrom. The +45 degree and -45 degree datasets were combined into a stack of ~32,000 particles and 2D alignment and classification were performed in IMAGIC. Initial models were computed from classes containing 100-200 members using the Orthogonal Tilt Reconstruction approach as described.
For projection-matching refinement, the OTR models were initially refined against 2D class averages of cryo-negative data. To generate the class averages, particles were extracted from the micrographs as described above and CTF estimation and phase flipping were performed using the EMAN2 workflow. The particles were then binned by 2, resulting in a pixel size of 3.45 Angstrom. Approximately 32,000 particles were subjected to reference-free 2D alignment and classification in IMAGIC. In order to minimize heterogeneity, classes were generated with relatively few (15-20) particles.
 The OTR models were filtered to 80 Angstrom resolution and 15-23 iterations of projection matching refinement were performed using angular steps of 250, 200, 150, 100, and 80-50 against 2D class averages in SPIDER using the AP SH and BP 32F commands. To minimize noise in the reconstructions, a threshold mask calculated for 500% to 150%of the theoretical molecular weight of the sample (1.0 MDa) was applied. The mask was gradually tightened throughout refinement and its filtration was determined by the resolution of the 3D map, computed according to the 0.5 FSC criterion. Refinement results were stable after 15 iterations, and the resolutions of the 3D maps were 50-60 Angstrom. The resulting 3D maps (without additional filtration) were then similarly refined against single cryo-negative particles. For this step, 15 iterations of projection-matching refinement were carried out at angular steps of 250, 210, 180, 150, 130, 110 and 100-40. Threshold masks computed for 500% to 100% of the MW were also utilized.</details>
                <ctf_correction>
                    <details>CTFTILT (Grigorieff) for initial model; EMAN2 for projection-matching refinement</details>
                </ctf_correction>
                <final_reconstruction>
                    <algorithm>OTHER</algorithm>
                    <resolution res_type="BY AUTHOR" units="&#8491;">28.0</resolution>
                    <resolution_method>FSC 0.5 CUT-OFF</resolution_method>
                    <software_list>
                        <software>
                            <name>EMAN1, EMAN2, IMAGIC, SPIDER</name>
                        </software>
                    </software_list>
                    <number_images_used>18000</number_images_used>
                </final_reconstruction>
                <final_angle_assignment>
                    <details>SPIDER</details>
                </final_angle_assignment>
            </singleparticle_processing>
        </structure_determination>
    </structure_determination_list>
    <map format="CCP4" size_kbytes="13185">
        <file>emd_5626.map.gz</file>
        <symmetry>
            <space_group>1</space_group>
        </symmetry>
        <data_type>IMAGE STORED AS FLOATING POINT NUMBER (4 BYTES)</data_type>
        <dimensions>
            <col>150</col>
            <row>150</row>
            <sec>150</sec>
        </dimensions>
        <origin>
            <col>0</col>
            <row>0</row>
            <sec>0</sec>
        </origin>
        <spacing>
            <x>150</x>
            <y>150</y>
            <z>150</z>
        </spacing>
        <cell>
            <a units="&#8491;">517.5</a>
            <b units="&#8491;">517.5</b>
            <c units="&#8491;">517.5</c>
            <alpha units="deg">90.0</alpha>
            <beta units="deg">90.0</beta>
            <gamma units="deg">90.0</gamma>
        </cell>
        <axis_order>
            <fast>X</fast>
            <medium>Y</medium>
            <slow>Z</slow>
        </axis_order>
        <statistics>
            <minimum>-0.02071567</minimum>
            <maximum>0.12817264</maximum>
            <average>-0.00024817</average>
            <std>0.00364482</std>
        </statistics>
        <pixel_spacing>
            <x units="&#8491;">3.45</x>
            <y units="&#8491;">3.45</y>
            <z units="&#8491;">3.45</z>
        </pixel_spacing>
        <contour_list>
            <contour primary="true">
                <level>0.0126</level>
                <source>AUTHOR</source>
            </contour>
        </contour_list>
        <annotation_details>3D Cryo-negative EM structure of SWR1</annotation_details>
        <details>::::EMDATABANK.org::::EMD-5626::::</details>
    </map>
    <interpretation>
        <figure_list>
            <figure>
                <file>emd_5626.png</file>
            </figure>
        </figure_list>
    </interpretation>
</emd>