User:Arjab Ray/Sandbox 1
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| - | + | <span style="font-size:160%"><b> Structure of anticancer ruthenium half-sandwich complex bound to glycogen synthase kinase 3 β .</b></span> | |
| - | <span style="font-size:160%"><b> Structure of anticancer ruthenium half-sandwich complex bound to glycogen synthase kinase 3 β | + | <StructureSection load='3rec' size='350' side='right' caption='' scene='Journal:JBIC:2/Opening/1'> |
| - | </ | + | <big>G. Atilla-Gocumen, L. Di Costanzo, E. Meggers</big> <ref>DOI 10.1007/s00775-010-0699-x</ref> |
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J Biol Inorg Chem (2011) | J Biol Inorg Chem (2011) | ||
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DOI 10.1007/s00775-010-0699-x | DOI 10.1007/s00775-010-0699-x | ||
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===Key Interactions of (R)-DW12 with GSK-3β=== | ===Key Interactions of (R)-DW12 with GSK-3β=== | ||
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| + | https://proteopedia.org/wiki/images/0/00/Interactions.png | ||
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The interactions between (R)-DW12 and GSK-3β fall into two major categories: | The interactions between (R)-DW12 and GSK-3β fall into two major categories: | ||
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2. Hydrophobic interactions (across both lobes and the glycine-rich loop) | 2. Hydrophobic interactions (across both lobes and the glycine-rich loop) | ||
| - | + | ====Hydrogen-Bonding Interactions==== | |
(R)-DW12 forms three major hydrogen bonds with the hinge region of GSK-3β: Maleimide NH with the Asp133 carbonyl, Val135 NH interacting with Maleimide carbonyl and Indole OH which is interacting with Val135 carbonyl group. | (R)-DW12 forms three major hydrogen bonds with the hinge region of GSK-3β: Maleimide NH with the Asp133 carbonyl, Val135 NH interacting with Maleimide carbonyl and Indole OH which is interacting with Val135 carbonyl group. | ||
| - | + | ====Hydrophobic Interactions==== | |
The complex is tightly packed via numerous hydrophobic interactions with residues from both lobes, including Ile62, Val70, Ala83, Leu132, Val110, and Leu188. | The complex is tightly packed via numerous hydrophobic interactions with residues from both lobes, including Ile62, Val70, Ala83, Leu132, Val110, and Leu188. | ||
| - | + | ===Interaction with the Glycine rich loop=== | |
A distinctive feature is the interaction between the metal-coordinated CO ligand of (R)-DW12 and the glycine-rich loop (residues Ile62, Gly63, Phe67, Val70). The perpendicular orientation of the CO ligand relative to the planar pyridocarbazole heterocycle allows it to fit into a small hydrophobic pocket formed by the loop. This induces a "closed" conformation of the loop, where Phe67 packs closely against the inhibitor. This interaction is uncommon for most organic GSK-3β inhibitors, which typically exhibit an "open" glycine-rich loop conformation. | A distinctive feature is the interaction between the metal-coordinated CO ligand of (R)-DW12 and the glycine-rich loop (residues Ile62, Gly63, Phe67, Val70). The perpendicular orientation of the CO ligand relative to the planar pyridocarbazole heterocycle allows it to fit into a small hydrophobic pocket formed by the loop. This induces a "closed" conformation of the loop, where Phe67 packs closely against the inhibitor. This interaction is uncommon for most organic GSK-3β inhibitors, which typically exhibit an "open" glycine-rich loop conformation. | ||
Within the hinge region, DW12 forms three canonical hydrogen bonds: the maleimide NH donates to Asp133, a carbonyl accepts from Val135, and the indole OH forms an additional bond with Val135. Numerous hydrophobic contacts stabilize the complex across both lobes. | Within the hinge region, DW12 forms three canonical hydrogen bonds: the maleimide NH donates to Asp133, a carbonyl accepts from Val135, and the indole OH forms an additional bond with Val135. Numerous hydrophobic contacts stabilize the complex across both lobes. | ||
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| + | ===Conclusion=== | ||
| + | The structure demonstrates that the ruthenium center serves a purely structural role, organizing the ligand geometry to enable unique interactions not accessible to organic scaffolds. The tight packing and specific interaction with the glycine-rich loop via the CO ligand are crucial for the high potency and selectivity of DW12 for GSK-3β, Pim-1, and Pim-2 kinases. This work highlights the potential of organometallic complexes to explore novel chemical space for designing selective kinase inhibitors. | ||
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| + | <b>References</b><br> | ||
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| + | <references/> | ||
| + | </StructureSection> | ||
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Structure of anticancer ruthenium half-sandwich complex bound to glycogen synthase kinase 3 β .
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