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The Activation of C-Src Tyrosine Kinase: Conformational Transition Pathway and Free Energy Landscape

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Journal J Phys Chem B
Specialty Chemistry
Date 2016 Oct 8
PMID 27715044
Citations 26
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Abstract

Tyrosine kinases are important cellular signaling allosteric enzymes that regulate cell growth, proliferation, metabolism, differentiation, and migration. Their activity must be tightly controlled, and malfunction can lead to a variety of diseases, particularly cancer. The nonreceptor tyrosine kinase c-Src, a prototypical model system and a representative member of the Src-family, functions as complex multidomain allosteric molecular switches comprising SH2 and SH3 domains modulating the activity of the catalytic domain. The broad picture of self-inhibition of c-Src via the SH2 and SH3 regulatory domains is well characterized from a structural point of view, but a detailed molecular mechanism understanding is nonetheless still lacking. Here, we use advanced computational methods based on all-atom molecular dynamics simulations with explicit solvent to advance our understanding of kinase activation. To elucidate the mechanism of regulation and self-inhibition, we have computed the pathway and the free energy landscapes for the "inactive-to-active" conformational transition of c-Src for different configurations of the SH2 and SH3 domains. Using the isolated c-Src catalytic domain as a baseline for comparison, it is observed that the SH2 and SH3 domains, depending upon their bound orientation, promote either the inactive or active state of the catalytic domain. The regulatory structural information from the SH2-SH3 tandem is allosterically transmitted via the N-terminal linker of the catalytic domain. Analysis of the conformational transition pathways also illustrates the importance of the conserved tryptophan 260 in activating c-Src, and reveals a series of concerted events during the activation process.

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References
1.
Hubbard S, Till J . Protein tyrosine kinase structure and function. Annu Rev Biochem. 2000; 69:373-98. DOI: 10.1146/annurev.biochem.69.1.373. View

2.
E W, Ren W, Vanden-Eijnden E . Finite temperature string method for the study of rare events. J Phys Chem B. 2006; 109(14):6688-93. DOI: 10.1021/jp0455430. View

3.
Pan A, Sezer D, Roux B . Finding transition pathways using the string method with swarms of trajectories. J Phys Chem B. 2008; 112(11):3432-40. PMC: 2757167. DOI: 10.1021/jp0777059. View

4.
Meng Y, Roux B . Locking the active conformation of c-Src kinase through the phosphorylation of the activation loop. J Mol Biol. 2013; 426(2):423-35. PMC: 3947352. DOI: 10.1016/j.jmb.2013.10.001. View

5.
Xu W, Harrison S, Eck M . Three-dimensional structure of the tyrosine kinase c-Src. Nature. 1997; 385(6617):595-602. DOI: 10.1038/385595a0. View