Journal:Protein Science:4
From Proteopedia
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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).]] | [[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).]] | ||
- | + | [[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 paper] ]] | |
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- | Image:2024_Lushchekina_Prot_Sci_x.jpg| thumb |left|150px| | + | |
''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 | ''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 |
Revision as of 18:17, 18 November 2024
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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.