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Comparative Atomistic Insights on Apo and ATP-I1171N/S/T in Nonsmall-Cell Lung Cancer
Ambritha Balasundaram1, George Priya C Doss1
1Laboratory of Integrative Genomics, Department of Integrative Biology, School of BioSciences and Technology, Vellore Institute of Technology, Vellore, Tamil Nadu 632014, India.
Abstract:
Anaplastic lymphoma kinase (ALK) rearrangements occur in about 5% of nonsmall cell lung cancer (NSCLC) patients. Despite being first recognized as EML4-ALK, fusions with several additional genes have been identified, all of which cause constitutive activation of the ALK kinase and subsequently lead to tumor development. ALK inhibitors first-line crizotinib, second-line ceritinib, and alectinib are effective against NSCLC patients with these rearrangements. Patients progressing on crizotinib had various mutations in the ALK kinase domain. ALK fusion proteins are activated by oligomerization through the fusion partner, which leads to the autophosphorylation of the kinase's domain and consequent downstream activation. The proposed computational study focuses on understanding the activation mechanism of ALK and ATP binding of wild-type (WT) and I1171N/S/T mutations. We analyzed the conformational change of ALK I1171N/S/T mutations and ATP binding using molecular docking and molecular dynamics simulation approaches. According to principal component analysis and free energy landscape, it is clear that I1171N/S/T mutations in Apo and ATP showed different energy minima/unstable structures compared to WT-Apo. The results revealed that I1171N/S/T mutations and ATP binding significantly supported a change toward an active-state conformation, whereas WT-Apo remained inactive. We demonstrated that I1171N/S/T mutations are persistent in an active state and independent of ATP. The I1171S/T mutations showed greater intermolecular H-bonds with ATP than WT-ATP. The molecular mechanics Poisson-Boltzmann surface area analysis revealed that the I1171N/S/T mutation binding energy was similar to that of WT-ATP. This study shows that I1171N/S/T can form stable bonds with ATP and may contribute to a constitutively active kinase. Based on the Y1278-C1097 H-bond and E1167-K1150 salt bridge interaction, I1171N strongly promotes the constitutively active kinase independent of ATP. This structural mechanism study will aid in understanding the oncogenic activity of ALK and the basis for improving the ALK inhibitors.
Insights
Anaplastic lymphoma kinase (ALK) mutations I1171N/S/T promote a constitutively active kinase, independent of ATP binding. This structural insight aids in understanding ALK oncogenic activity and developing improved ALK inhibitors for non-small cell lung cancer.
Area of Science:
- Oncology
- Molecular Biology
- Computational Chemistry
Background:
- Anaplastic lymphoma kinase (ALK) rearrangements are found in approximately 5% of non-small cell lung cancer (NSCLC) patients, driving tumor development.
- While ALK inhibitors like crizotinib are effective, resistance often arises due to mutations in the ALK kinase domain.
- Understanding the structural mechanisms of ALK activation and drug resistance is crucial for developing next-generation therapies.
Purpose of the Study:
- To investigate the activation mechanism of wild-type (WT) anaplastic lymphoma kinase (ALK) and its I1171N/S/T mutated variants.
- To analyze the impact of these mutations on Adenosine triphosphate (ATP) binding and kinase conformation using computational methods.
- To elucidate the structural basis for constitutively active ALK kinase in the context of drug resistance.
Main Methods:
- Employed molecular docking and molecular dynamics simulations to analyze ALK conformational changes and ATP binding.
- Utilized principal component analysis (PCA) and free energy landscape analysis to assess structural stability and energy minima.
- Performed molecular mechanics Poisson-Boltzmann surface area (MM/PBSA) calculations to determine binding energies.
Main Results:
- I1171N/S/T mutations in ALK promote a shift towards an active kinase conformation, distinct from the inactive WT-Apo state.
- These mutations maintain the active kinase state independently of ATP binding, with I1171S/T showing enhanced intermolecular hydrogen bonds with ATP.
- MM/PBSA analysis indicated comparable binding energies between mutated ALK and WT-ALK with ATP, suggesting stable interactions.
Conclusions:
- The I1171N/S/T mutations confer a constitutively active ALK kinase phenotype, potentially contributing to drug resistance in NSCLC.
- Specific interactions, such as the Y1278-C1097 H-bond and E1167-K1150 salt bridge in the I1171N mutation, stabilize the active state independent of ATP.
- This structural understanding provides a foundation for designing more effective ALK inhibitors targeting resistant mutations.
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