TY - JOUR
T1 - Structural effects of clinically observed mutations in JAK2 exons 13-15
T2 - Comparison with V617F and exon 12 mutations
AU - Lee, Tai Sung
AU - Ma, Wanlong
AU - Zhang, Xi
AU - Kantarjian, Hagop
AU - Albitar, Maher
N1 - Funding Information:
We are greatly thankful to Dr. Romano Kroemer and Dr. Thomas Loerting for providing the atomic coordinates of their homology model of JAK2. This work was partially supported by the computational resources of Minnesota Supercomputing Institute (MSI) and the National Center for Supercomputing Applications under MCB090117 through NCSA's TeraGrid mechanism. The funders had no role in study design, data collection and analysis, decision to publish, or preparation of the manuscript.
PY - 2009
Y1 - 2009
N2 - Background. The functional relevance of many of the recently detected JAK2 mutations, except V617F and exon 12 mutants, in patients with chronic myeloproliferative neoplasia (MPN) has been significantly overlooked. To explore atomic-level explanations of the possible mutational effects from those overlooked mutants, we performed a set of molecular dynamics simulations on clinically observed mutants, including newly discovered mutations (K539L, R564L, L579F, H587N, S591L, H606Q, V617I, V617F, C618R, L624P, whole exon 14-deletion) and control mutants (V617C, V617Y, K603Q/N667K). Results. Simulation results are consistent with all currently available clinical/experimental evidence. The simulation-derived putative interface, not possibly obtained from static models, between the kinase (JH1) and pseudokinase (JH2) domains of JAK2 provides a platform able to explain the mutational effect for all mutants, including presumably benign control mutants, at the atomic level. Conclusion. The results and analysis provide structural bases for mutational mechanisms of JAK2, may advance the understanding of JAK2 auto-regulation, and have the potential to lead to therapeutic approaches. Together with recent mutation profiling results demonstrating the breadth of clinically observed JAK2 mutations, our findings suggest that molecular testing/diagnostics of JAK2 should extend beyond V617F and exon 12 mutations, and perhaps should encompass most of the pseudo-kinase domain-coding region.
AB - Background. The functional relevance of many of the recently detected JAK2 mutations, except V617F and exon 12 mutants, in patients with chronic myeloproliferative neoplasia (MPN) has been significantly overlooked. To explore atomic-level explanations of the possible mutational effects from those overlooked mutants, we performed a set of molecular dynamics simulations on clinically observed mutants, including newly discovered mutations (K539L, R564L, L579F, H587N, S591L, H606Q, V617I, V617F, C618R, L624P, whole exon 14-deletion) and control mutants (V617C, V617Y, K603Q/N667K). Results. Simulation results are consistent with all currently available clinical/experimental evidence. The simulation-derived putative interface, not possibly obtained from static models, between the kinase (JH1) and pseudokinase (JH2) domains of JAK2 provides a platform able to explain the mutational effect for all mutants, including presumably benign control mutants, at the atomic level. Conclusion. The results and analysis provide structural bases for mutational mechanisms of JAK2, may advance the understanding of JAK2 auto-regulation, and have the potential to lead to therapeutic approaches. Together with recent mutation profiling results demonstrating the breadth of clinically observed JAK2 mutations, our findings suggest that molecular testing/diagnostics of JAK2 should extend beyond V617F and exon 12 mutations, and perhaps should encompass most of the pseudo-kinase domain-coding region.
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U2 - 10.1186/1472-6807-9-58
DO - 10.1186/1472-6807-9-58
M3 - Article
C2 - 19744331
AN - SCOPUS:70349658849
SN - 1472-6807
VL - 9
JO - BMC Structural Biology
JF - BMC Structural Biology
M1 - 58
ER -