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Characterization at the Molecular Level using Robust Biochemical Approaches of a New Kinase Protein
Published on: June 30, 2019
Unveiling novel type 1 inhibitors for targeting LIM kinase 2 (LIMK2) for cancer therapeutics: An integrative
Nagarajan Hemavathy1, Vetrivel Umashankar2, Jeyaraman Jeyakanthan1
1Structural Biology and Bio-Computing Lab, Department of Bioinformatics, Science Block, Alagappa University, Karaikudi, Tamil Nadu 630 003, India.
Abstract:
LIMK2 is crucial in regulating actin cytoskeleton dynamics, significantly contributing to cancer cell proliferation, invasion, and metastasis. Inhibitors like LIMKi3 effectively suppress LIMK2 kinase activity by directly affecting actin polymerization and preventing the formation of structures like filopodia and lamellipodia, which are typical of motile cancer cells. By modulating these actin dynamics, LIMKi3 inhibits cancer cell migration and invasion, reducing the potential for metastasis. Thus, this study aims to explore potential anti-cancer therapeutic LIMK2 inhibitors with properties resembling LIMKi3. Henceforth, molecular docking was utilized in this study to comprehend the ATP mimetic binding mode of LIMKi3, followed by Pharmacophore-based virtual screening to identify small molecules resembling LIMKi3. In addition, molecular dynamics simulations were performed to explore the dynamic behavior of LIMK2 and potential inhibitors. Further, network analysis and binding free energy calculations were implemented to comprehensively assess the interactions between the compounds and LIMK2. In molecular docking, LIMKi3 demonstrated an ATP mimetic hinge binding mode with hydrogen bonds at Ile408. Among the screened compounds (NCI300395, ChemDiv-8020-2508, and ChemDiv-7997-0024), three displayed "ADRH" pharmacophoric features like LIMKi3, with favorable ADMET properties, higher binding affinity, and significant hydrogen bond interactions at Ile408. LIMK2-inhibitor complexes showed lower RMSD than LIMK2-LIMKi3, indicating higher equilibrium by identified compounds. Protein-drug Complexes exhibited significant inter-domain correlation in N-lobe residues of LIMK2, including conserved β3, αC, and Hinge residues. Binding free energy analysis ranked LIMK2-NCI300395 highest, followed by LIMK2-ChemDiv-7997-0024 and LIMK2-ChemDiv-8020-2508, highlighting their potential as effective LIMK2-targeting compounds. Hence, this study emphasizes LIMKi3's significance and identifies potential candidates (NCI300395, ChemDiv-7997-0024, and ChemDiv-8020-2508) for developing cancer therapeutics targeting LIMK2. These findings open avenues for further investigations into the complex interplay between cytoskeletal dynamics and cancer progression.
Insights
This study identifies novel LIMK2 inhibitors, NCI300395 and ChemDiv compounds, that mimic LIMKi3's action to suppress cancer cell migration and metastasis by targeting actin cytoskeleton dynamics.
Area of Science:
- Biochemistry
- Molecular Biology
- Pharmacology
Background:
- LIMK2 is a key regulator of actin cytoskeleton dynamics, crucial for cancer cell proliferation, invasion, and metastasis.
- LIMKi3, a known inhibitor, suppresses LIMK2 activity by modulating actin polymerization, thus inhibiting cancer cell motility.
Purpose of the Study:
- To identify novel LIMK2 inhibitors with therapeutic potential against cancer.
- To explore compounds that share similar mechanisms of action with LIMKi3.
Main Methods:
- Molecular docking to understand LIMKi3's binding mode.
- Pharmacophore-based virtual screening to identify LIMK2 inhibitors.
- Molecular dynamics simulations to assess protein-inhibitor complex stability.
- Network analysis and binding free energy calculations to evaluate compound efficacy.
Main Results:
- LIMKi3 binds to LIMK2 via an ATP-mimetic hinge interaction at Ile408.
- Three compounds (NCI300395, ChemDiv-8020-2508, ChemDiv-7997-0024) exhibited similar pharmacophoric features to LIMKi3, with favorable ADMET properties and strong binding.
- Identified compounds formed more stable complexes with LIMK2 than LIMKi3, showing significant interactions with key LIMK2 residues.
- Binding free energy calculations ranked NCI300395 as the most potent inhibitor, followed by ChemDiv-7997-0024 and ChemDiv-8020-2508.
Conclusions:
- LIMKi3 is a significant benchmark for developing LIMK2 inhibitors.
- NCI300395, ChemDiv-7997-0024, and ChemDiv-8020-2508 are promising candidates for novel cancer therapeutics targeting LIMK2.
- Further research into these compounds could advance treatments for cancers driven by aberrant cytoskeletal dynamics.
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