DocumentCode
1760409
Title
Multiscale computational models in physical systems biology of intracellular trafficking
Author
Tourdot, Richard W. ; Bradley, Ryan P. ; Ramakrishnan, N. ; Radhakrishnan, Rathnakumar
Author_Institution
Dept. of Chem. & Biomol. Eng., Univ. of Pennsylvania, Philadelphia, PA, USA
Volume
8
Issue
5
fYear
2014
fDate
41913
Firstpage
198
Lastpage
213
Abstract
In intracellular trafficking, a definitive understanding of the interplay between protein binding and membrane morphology remains incomplete. The authors describe a computational approach by integrating coarse-grained molecular dynamics (CGMD) simulations with continuum Monte Carlo (CM) simulations of the membrane to study protein-membrane interactions and the ensuing membrane curvature. They relate the curvature field strength discerned from the molecular level to its effect at the cellular length-scale. They perform thermodynamic integration on the CM model to describe the free energy landscape of vesiculation in clathrin-mediated endocytosis. The method presented here delineates membrane morphologies and maps out the free energy changes associated with membrane remodeling due to varying coat sizes, coat curvature strengths, membrane bending rigidities, and tensions; furthermore several constraints on mechanisms underlying clathrin-mediated endocytosis have also been identified, Their CGMD simulations have revealed the importance of PIP2 for stable binding of proteins essential for curvature induction in the bilayer and have provided a molecular basis for the positive curvature induction by the epsin N-terminal homology (EIMTH) domain. Calculation of the free energy landscape for vesicle budding has identified the critical size and curvature strength of a clathrin coat required for nucleation and stabilisation of a mature vesicle.
Keywords
Monte Carlo methods; bending; biomembrane transport; cancer; free energy; molecular biophysics; molecular dynamics method; proteins; shear modulus; cancer; clathrin-mediated endocytosis; coarse-grained molecular dynamics simulations; coat curvature strengths; coat sizes; continuum Monte Carlo simulations; curvature fleld strength; free energy change; intracellular trafficking; membrane bending rigidities; membrane fluctuations; membrane morphology; membrane tension; multiscale computational models; phosphatidylinositol 4,5-bisphosphate; physical systems biology; protein binding; protein-membrane interactions; thermodynamic integration;
fLanguage
English
Journal_Title
Systems Biology, IET
Publisher
iet
ISSN
1751-8849
Type
jour
DOI
10.1049/iet-syb.2013.0057
Filename
6915829
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