Journal:Protein Science:4

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<StructureSection load='' size='340' side='right' scene='10/1063617/009_figu_5b_png/3' caption='Acetylcholinesterase highlighting the 4A/3B motif'>
<StructureSection load='' size='340' side='right' scene='10/1063617/009_figu_5b_png/3' caption='Acetylcholinesterase highlighting the 4A/3B motif'>
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===Why is binding of a divalent metal cation to a structural motif containing four carboxylate residues not accompanied by a conformational change?===
===Why is binding of a divalent metal cation to a structural motif containing four carboxylate residues not accompanied by a conformational change?===
<br /><big>Lushchekina, Weiner, Ashani, Emrizal, Firdaus-Raih, Silman & Sussman</big><ref>PMID: 39548604</ref>
<br /><big>Lushchekina, Weiner, Ashani, Emrizal, Firdaus-Raih, Silman & Sussman</big><ref>PMID: 39548604</ref>
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<b>Molecular Tour</b><br>
<b>Molecular Tour</b><br>
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[[Image:2024_Lushchekina_Prot_Sci_x.jpg| thumb |left|150px|For a divalent cation, it is hard to unbind from structural motifs composed of 4 acidic residues (4A). However, it is much easier if the motif is surrounded by 3 basic residues (4A/3B).]]''Torpedo californica'' acetylcholinesterase (''Tc''AChE) contains a unique 4D motif composed of four aspartate residues that can bind divalent metal cations (like Ca²⁺, Mg²⁺, Mn²⁺), significantly increasing the enzyme’s thermal stability. Despite the electrostatic repulsion expected between these aspartates, structural analysis shows that the enzyme's conformation remains stable
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[[Image:2024_Lushchekina_Prot_Sci_x.jpg| thumb |left|150px|For a divalent cation, it is hard to unbind from structural motifs composed of 4 acidic residues (4A). However, it is much easier if the motif is surrounded by 3 basic residues (4A/3B).]]
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[[Image:2024_Lushchekina_Prot_Sci_x.jpg| thumb |left|150px|For a divalent cation, it is hard to unbind from structural motifs composed of 4 acidic residues (4A). However, it is much easier if the motif is surrounded by 3 basic residues (4A/3B). [https://doi.org/10.1002/pro.5206]]
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''Torpedo californica'' acetylcholinesterase (''Tc''AChE) contains a unique 4D motif composed of four aspartate residues that can bind divalent metal cations (like Ca²⁺, Mg²⁺, Mn²⁺), significantly increasing the enzyme’s thermal stability. Despite the electrostatic repulsion expected between these aspartates, structural analysis shows that the enzyme's conformation remains stable
<scene name='10/1063617/009_fig_metal_tcache_lab_png/2'>with</scene> or <scene name='10/1063617/009_fig_apo_tcache_lab_png/2'>without</scene> bound cations as seen in an <scene name='10/1063617/009_fig_metal_apo_tcache_lab/2'>overlay</scene> the two states and an <jmol>
<scene name='10/1063617/009_fig_metal_tcache_lab_png/2'>with</scene> or <scene name='10/1063617/009_fig_apo_tcache_lab_png/2'>without</scene> bound cations as seen in an <scene name='10/1063617/009_fig_metal_apo_tcache_lab/2'>overlay</scene> the two states and an <jmol>
<jmolButton>
<jmolButton>

Revision as of 17:55, 18 November 2024

Acetylcholinesterase highlighting the 4A/3B motif

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Proteopedia Page Contributors and Editors (what is this?)

Joel L. Sussman, Jaime Prilusky

This page complements a publication in scientific journals and is one of the Proteopedia's Interactive 3D Complement pages. For aditional details please see I3DC.
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