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Another cleavage can occur at the N-term of the Procaspase-7 (Asp23), resulting in the release of the prodomain. However, it has been observed that this N-term prodomain removal is not systematically necessary to obtain the caspase catalytic activity, while it is a warranty step for other proteases. | Another cleavage can occur at the N-term of the Procaspase-7 (Asp23), resulting in the release of the prodomain. However, it has been observed that this N-term prodomain removal is not systematically necessary to obtain the caspase catalytic activity, while it is a warranty step for other proteases. | ||
| - | These modifications lead to the division of the L2 loop into two new loops : L2 and L2’. As a result, L2 becomes the C-terminal domain of the large subunit and L2’, (a.k.a “the critical loop”) constitutes the N-terminal extremity of the small subunit. L2 changes its direction by 90°, while the L2’ loop remains folded and will only unfold once the substrate actually binds to the new formed operational catalytic groove. The main catalytic cysteine is harboured by this L2 loop and traverses the groove. | + | These modifications lead to the division of the <scene name='60/604484/Position_of_the_l2_loops/3'>L2 loop</scene> into two new loops : <scene name='60/604484/L2_loops_of_the_caspase-7/1'>L2</scene> and L2’. As a result, L2 becomes the C-terminal domain of the large subunit and L2’, (a.k.a “the critical loop”) constitutes the N-terminal extremity of the small subunit. L2 changes its direction by 90°, while the L2’ loop remains folded and will only unfold once the substrate actually binds to the new formed operational catalytic groove. The main catalytic cysteine is harboured by this L2 loop and traverses the groove. |
At the same time, a conformational change of L3 and L4 occur. L3 forms the base of the catalytic groove. L4 forms one side of the catalytic groove, rotates 60 ° and moves opposite of L3, further flattening the active site pocket. L1 constitutes the second side of this substrate-binding groove. | At the same time, a conformational change of L3 and L4 occur. L3 forms the base of the catalytic groove. L4 forms one side of the catalytic groove, rotates 60 ° and moves opposite of L3, further flattening the active site pocket. L1 constitutes the second side of this substrate-binding groove. | ||
Revision as of 15:11, 9 January 2015
Your Heading Here (maybe something like 'Structure')
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