This work studied the membrane curvature generated by anchored proteins lacking amphipathic helices and intrinsic morphologies, including the Epsin N-terminal homology domain, intrinsically disordered C-terminal domain, and truncated C-terminal fragments, by using coarse-grained molecular dynamics simulations. We found that anchored proteins can stabilize the thermal undulation of membranes at a wavelength five times the protein's binding size. This proportional connection is governed by the membrane bending rigidity and protein density. Extended intrinsically disordered proteins with relatively high hydrophobicity favor colliding with the membrane, leading to a much larger binding size, and show superiority in generating membrane curvature at low density over folded proteins.
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Univ Calif San Francisco, Cardiovasc Res Inst, Dept Pharmaceut Chem, San Francisco, CA 94143 USAUniv Calif San Francisco, Cardiovasc Res Inst, Dept Pharmaceut Chem, San Francisco, CA 94143 USA
Argudo, David
Bethel, Neville P.
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Univ Calif San Francisco, Cardiovasc Res Inst, Dept Pharmaceut Chem, San Francisco, CA 94143 USAUniv Calif San Francisco, Cardiovasc Res Inst, Dept Pharmaceut Chem, San Francisco, CA 94143 USA
Bethel, Neville P.
Marcoline, Frank V.
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Univ Calif San Francisco, Cardiovasc Res Inst, Dept Pharmaceut Chem, San Francisco, CA 94143 USAUniv Calif San Francisco, Cardiovasc Res Inst, Dept Pharmaceut Chem, San Francisco, CA 94143 USA
Marcoline, Frank V.
Wolgemuth, Charles W.
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Univ Arizona, Dept Mol & Cellular Biol, Tucson, AZ 85721 USA
Univ Arizona, Dept Phys, Tucson, AZ 85721 USAUniv Calif San Francisco, Cardiovasc Res Inst, Dept Pharmaceut Chem, San Francisco, CA 94143 USA
Wolgemuth, Charles W.
Grabe, Michael
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Univ Calif San Francisco, Cardiovasc Res Inst, Dept Pharmaceut Chem, San Francisco, CA 94143 USAUniv Calif San Francisco, Cardiovasc Res Inst, Dept Pharmaceut Chem, San Francisco, CA 94143 USA