Journal:IUCrJ:S2052252521008125

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We follow the increase of the CEF occupancy in the catalytic cleft of BlaC from 5 ms to 50 ms after mixing with CEF by XFEL based MISC experiments. At the edge of the crystal, almost all active BlaC
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We follow the increase of the CEF occupancy in the catalytic cleft of BlaC from 5 ms to 50 ms after mixing with CEF by XFEL based MISC experiments. At the edge of the crystal, almost all active BlaC subunits (B and D) are bound to CEF already at 5 ms. In the center the BlaC-CEF complex concentration is 0.21 mmol/L (2.7 % of the total concentration of B and D subunits in the crystal), although the CEF concentration delivered by diffusion is already 35 mmol/L (which is 23 % of the outside CEF concentration but 5.5 times the stoichiometric concentration). The situation changes completely at 30 ms, where almost 100 % occupancy is reached everywhere in the crystal which is in accordance with earlier results (Olmos ''et al.,'' 2018)<ref>PMID:29848358</ref>, and with the occupancy at Δtm = 50 ms reported here (see movie below)
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403 subunits (B and D) are bound to CEF already at 5 ms. In the center the BlaC-CEF complex
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404 concentration is 0.21 mmol/L (2.7 % of the total concentration of B and D subunits in the crystal),
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405 although the CEF concentration delivered by diffusion is already 35 mmol/L (which is the
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406 mentioned 23 % of the outside CEF concentration but 5.5 times the stoichiometric concentration).
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407 The situation changes completely at 30 ms, where almost 100 % occupancy is reached everywhere in the crystal which is in accordance with earlier results (Olmos ''et al.,'' 2018)<ref>PMID:29848358</ref>, and with the occupancy at Δtm = 50 ms reported here (see movie below)
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<qt>file=Image:Supplementary_movie_2a.mp4|autoplay=false|width=400|height=400|controller=true|loop=false</qt><br/>
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See also the movie below, which visualizes how the CEF interacts with the BlaC:
See also the movie below, which visualizes how the CEF interacts with the BlaC:
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<qt>file=Image:Supplementary_movie_Polder1.mp4|autoplay=false|width=400|height=400|controller=true|loop=false</qt><br/>
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In addition to the CEF binding we observe the reaction of <scene name='88/889829/Cv/14'>BlaC with an inhibitor sulbactam</scene> (SUB) at 66 ms. SUB reacts to a so-called <scene name='88/889829/Cv/15'>trans-enamine in subunits B and D of the BlaC</scene> already after 66 ms. However, <scene name='88/889829/Cv/14'>SUB stays intact in subunits A and C</scene>. As the reaction proceeds to the ''trans''-enamine also in A and C, the structures of the weakly bound SUBs in these subunits at 66 ms represent an interesting intermediate that would not have been detected in static structures.
In addition to the CEF binding we observe the reaction of <scene name='88/889829/Cv/14'>BlaC with an inhibitor sulbactam</scene> (SUB) at 66 ms. SUB reacts to a so-called <scene name='88/889829/Cv/15'>trans-enamine in subunits B and D of the BlaC</scene> already after 66 ms. However, <scene name='88/889829/Cv/14'>SUB stays intact in subunits A and C</scene>. As the reaction proceeds to the ''trans''-enamine also in A and C, the structures of the weakly bound SUBs in these subunits at 66 ms represent an interesting intermediate that would not have been detected in static structures.
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'''PDB references:''' BlaC, unmixed, [[7k8l]]; mixed with ceftriaxone, 5 ms, [[7k8e]]; 10 ms, [[7k8f]]; 50 ms, [[7k8h]]; mixed with sulbactam, 66 ms, [[7k8k]].
<b>References</b><br>
<b>References</b><br>

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