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Updated: Sep 18, 2025

Kinase Inhibitor Screening In Self-assembled Human Protein Microarrays
Published on: October 23, 2019
Integrative machine learning and structure-based drug repurposing for identifying potent inhibitors of human SYK
Muhammad Waleed Iqbal1, Xinxiao Sun1, Raghul Subin Sasidharan2
1State Key Laboratory of Chemical Resources Engineering, Beijing University of Chemical Technology, Beijing 100029, PR China.
Abstract:
Overexpression of the spleen tyrosine kinase (SYK) has been found associated with different cancer types. Despite the investigation of inhibitors of SYK including fostamatinib, entospletinib, cerdulatinib, and TAK-659 for cancer therapy, their lack of specificity and potential off-target effects remain significant concerns. Addressing the need for targeted and non-toxic SYK inhibitors, this study integrates machine learning with structure-based drug design. Using bioactivity data, we employed machine learning algorithm, random forest, to screen an FDA-approved drug library. Molecular docking and dynamics simulations were then conducted to assess binding affinities and stability of identified compounds. Rifabutin, darunavir, and sildenafil were found as promising SYK inhibitors, showing strong interactions and stable conformations. Analysis of RMSD, RMSF, RoG, hydrogen bonding, PCA, and MMGBSA/MM-PBSA supported their efficacy as safer alternatives to current inhibitors. Our findings underscore the value of computational methods in drug discovery and advocate for further experimental validation of these compounds as SYK-targeted therapies. This study aims to advance the development of more effective and safer treatments for cancers associated with SYK overexpression.
Insights
Researchers identified novel spleen tyrosine kinase (SYK) inhibitors, rifabutin, darunavir, and sildenafil, using machine learning and computational drug design. These compounds show promise as safer cancer therapies with reduced off-target effects.
Area of Science:
- Biochemistry
- Computational Biology
- Pharmacology
Background:
- Spleen tyrosine kinase (SYK) overexpression is linked to various cancers.
- Current SYK inhibitors face challenges with specificity and off-target effects.
Purpose of the Study:
- To identify novel, targeted, and non-toxic SYK inhibitors for cancer therapy.
- To leverage machine learning and structure-based drug design for drug discovery.
Main Methods:
- Machine learning (Random Forest) screened an FDA-approved drug library based on bioactivity data.
- Molecular docking and dynamics simulations assessed binding affinity and stability.
- Analysis included RMSD, RMSF, RoG, hydrogen bonding, PCA, and MMGBSA/MM-PBSA.
Main Results:
- Rifabutin, darunavir, and sildenafil emerged as promising SYK inhibitors.
- These compounds demonstrated strong interactions and stable conformations.
- Computational analyses supported their potential as safer alternatives to existing inhibitors.
Conclusions:
- Computational methods are valuable for discovering targeted and safer SYK inhibitors.
- Rifabutin, darunavir, and sildenafil warrant further experimental validation for cancer therapy.
- This approach can advance the development of effective treatments for SYK-overexpressing cancers.
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