A structural model of a Ras–Raf signalosome

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作者
Venkatesh P. Mysore
Zhi-Wei Zhou
Chiara Ambrogio
Lianbo Li
Jonas N. Kapp
Chunya Lu
Qi Wang
Maxwell R. Tucker
Jeffrey J. Okoro
Gabriela Nagy-Davidescu
Xiaochen Bai
Andreas Plückthun
Pasi A. Jänne
Kenneth D. Westover
Yibing Shan
David E. Shaw
机构
[1] D. E. Shaw Research,Departments of Biochemistry and Radiation Oncology
[2] University of Texas Southwestern Medical Center,Department of Medical Oncology
[3] Dana-Farber Cancer Institute,Department of Molecular Biotechnology and Health Sciences, Molecular Biotechnology Center
[4] University of Turin,Department of Biochemistry
[5] University of Zürich,Department of Biophysics
[6] University of Texas Southwestern Medical Center,Department of Respiratory Medicine
[7] The First Affiliated Hospital of Zhengzhou University,Belfer Center for Applied Cancer Science
[8] Dana-Farber Cancer Institute,Department of Biochemistry and Molecular Biophysics
[9] Columbia University,undefined
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摘要
The protein K-Ras functions as a molecular switch in signaling pathways regulating cell growth. In the human mitogen-activated protein kinase (MAPK) pathway, which is implicated in many cancers, multiple K-Ras proteins are thought to assemble at the cell membrane with Ras effector proteins from the Raf family. Here we propose an atomistic structural model for such an assembly. Our starting point was an asymmetric guanosine triphosphate-mediated K-Ras dimer model, which we generated using unbiased molecular dynamics simulations and verified with mutagenesis experiments. Adding further K-Ras monomers in a head-to-tail fashion led to a compact helical assembly, a model we validated using electron microscopy and cell-based experiments. This assembly stabilizes K-Ras in its active state and presents composite interfaces to facilitate Raf binding. Guided by existing experimental data, we then positioned C-Raf, the downstream kinase MEK1 and accessory proteins (Galectin-3 and 14-3-3σ) on and around the helical assembly. The resulting Ras–Raf signalosome model offers an explanation for a large body of data on MAPK signaling.
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页码:847 / 857
页数:10
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