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Uncovering a membrane-distal conformation of KRAS available to recruit RAF to the plasma membrane

  1. Author:
    Van,Que [ORCID]
    López, Cesar A [ORCID]
    Tonelli, Marco [ORCID]
    Taylor,Troy [ORCID]
    Niu, Ben [ORCID]
    Stanley, Christopher B [ORCID]
    Bhowmik, Debsindhu [ORCID]
    Tran,Tim [ORCID]
    Frank,Peter [ORCID]
    Messing,Simon [ORCID]
    Alexander,Patrick [ORCID]
    Scott, Daniel [ORCID]
    Ye, Xiaoying [ORCID]
    Drew,Matt [ORCID]
    Chertov,Oleg [ORCID]
    Lösche, Mathias [ORCID]
    Ramanathan, Arvind [ORCID]
    Gross, Michael L [ORCID]
    Hengartner, Nicolas W [ORCID]
    Westler, William M [ORCID]
    Markley, John L [ORCID]
    Simanshu,Dhirendra [ORCID]
    Nissley,Dwight [ORCID]
    Gillette, William K [ORCID]
    Esposito,Dom [ORCID]
    McCormick, Frank [ORCID]
    Gnanakaran, S [ORCID]
    Heinrich, Frank [ORCID]
    Stephen, Andrew G [ORCID]
  2. Author Address

    National Cancer Institute RAS Initiative, Cancer Research Technology Program, Frederick National Laboratory for Cancer Research, Leidos Biomedical Research, Inc., Frederick, MD 21702., Theoretical Biology and Biophysics Group, Los Alamos National Laboratory, Los Alamos, NM 87545., National Magnetic Resonance Facility at Madison, Biochemistry Department, University of Wisconsin-Madison, Madison, WI 53706., National Mass Spectrometry Resource, Department of Chemistry, Washington University in St. Louis, St. Louis, MO 63130., Computational Sciences and Engineering Division, Oak Ridge National Laboratory, Oak Ridge, TN 37831., Department of Biomedical Engineering, Carnegie Mellon University, Pittsburgh, PA 15213., Department of Physics, Carnegie Mellon University, Pittsburgh, PA 15213., Center for Neutron Research, National Institute of Standards and Technology, Gaithersburg, MD 20899., Data Science and Learning Division, Argonne National Laboratory, Lemont, IL 60439., National Cancer Institute RAS Initiative, Cancer Research Technology Program, Frederick National Laboratory for Cancer Research, Leidos Biomedical Research, Inc., Frederick, MD 21702; frank.mccormick@ucsf.edu stephena@mail.nih.gov.,
    1. Year: 2020
    2. Date: SEP 29
    3. Epub Date: 2020 09 10
  1. Journal: Proceedings of the National Academy of Sciences of the United States of America
    1. 117
    2. 39
    3. Pages: 24258-24268
  2. Type of Article: Article
  3. ISSN: 0027-8424
  1. Abstract:

    The small GTPase KRAS is localized at the plasma membrane where it functions as a molecular switch, coupling extracellular growth factor stimulation to intracellular signaling networks. In this process, KRAS recruits effectors, such as RAF kinase, to the plasma membrane where they are activated by a series of complex molecular steps. Defining the membrane-bound state of KRAS is fundamental to understanding the activation of RAF kinase and in evaluating novel therapeutic opportunities for the inhibition of oncogenic KRAS-mediated signaling. We combined multiple biophysical measurements and computational methodologies to generate a consensus model for authentically processed, membrane-anchored KRAS. In contrast to the two membrane-proximal conformations previously reported, we identify a third significantly populated state using a combination of neutron reflectivity, fast photochemical oxidation of proteins (FPOP), and NMR. In this highly populated state, which we refer to as "membrane-distal" and estimate to comprise ~90% of the ensemble, the G-domain does not directly contact the membrane but is tethered via its C-terminal hypervariable region and carboxymethylated farnesyl moiety, as shown by FPOP. Subsequent interaction of the RAF1 RAS binding domain with KRAS does not significantly change G-domain configurations on the membrane but affects their relative populations. Overall, our results are consistent with a directional fly-casting mechanism for KRAS, in which the membrane-distal state of the G-domain can effectively recruit RAF kinase from the cytoplasm for activation at the membrane.

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External Sources

  1. DOI: 10.1073/pnas.2006504117
  2. PMID: 32913056
  3. WOS: 000576672700007
  4. PII : 2006504117

Library Notes

  1. Fiscal Year: FY2020-2021
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