Effects of Nanoplastics
on Lipid Membranes and Vice
Versa: Insights from All-Atom Molecular Dynamics Simulations
Posted on 2025-02-13 - 14:09
We compute the potential of mean force (PMF) between
semicrystalline
polyethylene (PE) nanoplastics (NPLs) and model POPC and DPPC bilayers,
which approximate in vivo membranes, using atomistic simulations.
Our work shows that atomistic resolution is required to characterize
the NPL and lipid interactions. By analyzing the PMF, we demonstrate
that the mechanical properties of membranes, rather than NPL semicrystalline
morphologies, govern NPL–membrane interactions. Resistance
to NPL penetration arises from the elastic energy of the membrane
deformation. The flexible POPC membranes resist NPL translocation,
and the brittle DPPC membranes fracture under stress. Using an elastic
free energy model, we approximate effective repulsions between lipid
membranes and NPLs of various sizes. Our mean first-passage time analysis
shows that even small, bare NPLs cannot easily penetrate brittle lipid
membranes via passive diffusion, even at high concentrations. However,
eco-coronas or other mechanisms, such as endocytosis, may still facilitate
the cellular uptake of NPLs and MPLs. While semicrystalline morphologies
do not directly impact NPL translocation, they do influence NPL behavior
within lipid membranes upon translocation. Semicrystalline NPLs remain
intact within lipid membranes, whereas amorphous NPLs can dissolve
into the hydrophobic core and alter the elastic properties of the
membrane.
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Duraes, Anderson
D. S.; Jiao, Elaine L.; Zhang, Wenlin (2025). Effects of Nanoplastics
on Lipid Membranes and Vice
Versa: Insights from All-Atom Molecular Dynamics Simulations. ACS Publications. Collection. https://doi.org/10.1021/acs.jpcb.4c08361