Deciphering the molecular choreography of Janus kinase 2 inhibition via Gaussian accelerated molecular dynamics simulations: a dynamic odyssey

被引:1
|
作者
Sk, Md Fulbabu [1 ,2 ]
Samanta, Sunanda [1 ]
Poddar, Sayan [1 ]
Kar, Parimal [1 ]
机构
[1] Indian Inst Technol Indore, Dept Biosci & Biomed Engn, Khandwa Rd, Simrol 453552, MP, India
[2] Univ Illinois, Beckman Inst Adv Sci & Technol, Theoret & Computat Biophys Grp, NIH Resource Macromol Modeling & Visualizat, Urbana, IL 61801 USA
关键词
Janus kinase; Gaussian accelerated molecular dynamics; Conformational dynamics; Free energy surface; MM/PBSA; Type I/II kinase inhibitors; ACTIVATION-LOOP; STRUCTURAL MECHANISM; TYROSINE KINASE; PROTEIN-KINASES; JAK INHIBITORS; FREE-ENERGIES; BINDING MODE; PHOSPHORYLATION; STATES; CONFORMATION;
D O I
10.1007/s10822-023-00548-8
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The Janus kinases (JAK) are crucial targets in drug development for several diseases. However, accounting for the impact of possible structural rearrangements on the binding of different kinase inhibitors is complicated by the extensive conformational variability of their catalytic kinase domain (KD). The dynamic KD contains mainly four prominent mobile structural motifs: the phosphate-binding loop (P-loop), the alpha C-helix within the N-lobe, the Asp-Phe-Gly (DFG) motif, and the activation loop (A-loop) within the C-lobe. These distinct structural orientations imply a complex signal transmission path for regulating the A-loop's flexibility and conformational preference for optimal JAK function. Nevertheless, the precise dynamical features of the JAK induced by different types of inhibitors still remain elusive. We performed comparative, microsecond-long, Gaussian accelerated molecular dynamics simulations in triplicate of three phosphorylated JAK2 systems: the KD alone, type-I ATP-competitive inhibitor (CI) bound KD in the catalytically active DFG-in conformation, and the type-II inhibitor (AI) bound KD in the catalytically inactive DFG-out conformation. Our results indicate significant conformational variations observed in the A-loop and alpha C helix motions upon inhibitor binding. Our studies also reveal that the DFG-out inactive conformation is characterized by the closed A-loop rearrangement, open catalytic cleft of N and C-lobe, the outward movement of the alpha C helix, and open P-loop states. Moreover, the outward positioning of the alpha C helix impacts the hallmark salt bridge formation between Lys882 and Glu898 in an inactive conformation. Finally, we compared their ligand binding poses and free energy by the MM/PBSA approach. The free energy calculations suggested that the AI's binding affinity is higher than CI against JAK2 due to an increased favorable contribution from the total non-polar interactions and the involvement of the alpha C helix. Overall, our study provides the structural and energetic insights crucial for developing more promising type I/II JAK2 inhibitors for treating JAK-related diseases.
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页数:21
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