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Updated: Sep 26, 2026

Co-Translational Insertion of Membrane Proteins into Preformed Nanodiscs
Published on: November 19, 2020
Amphiphilic Peptide Fusion Promotes Endocytic Uptake of Nanodiscs
Brandon S Pizarro Carbajal1, Trevin G Reinhardt1, Jason A Semenske2
1Mork Family Department of Chemical Engineering and Materials Science, University of Southern California, Los Angeles, California90089, United States.
Abstract:
A major limitation across nanoparticle delivery platforms is inefficient intracellular delivery following cellular uptake, often resulting from sequestration within endosomal compartments. Here, we show that peptide architecture can influence intracellular trafficking and reduce accumulation within early endosomal compartments in lipid-protein nanocarriers. Specifically, we fuse R6W3 (RRWWRRWRR), an amphipathic cell penetrating peptide, to the N- or C-terminus of the nanodisc scaffold proteins and systematically evaluate its impact on membrane interactions and cellular behavior. Structural and biophysical characterization confirms that R6W3 incorporation preserves nanodisc assembly and protein-lipid interactions, enabling direct attribution of functional differences to peptide-driven interfacial effects. R6W3-functionalized nanodiscs exhibit enhanced membrane binding and cellular uptake, with N-terminal fusion producing the strongest interfacial interactions. In live cells, R6W3 functionalization increases endocytic activity, evidenced by increased formation of clathrin-coated pits and intracellular colocalization with clathrin-coated vesicles. Notably, R6W3-functionalized nanodiscs display reduced accumulation in early endosomes relative to unmodified nanodiscs, consistent with altered intracellular trafficking following endocytic uptake. Functionally, doxorubicin-loaded, R6W3-functionalized nanodiscs produced a greater reduction in cell viability than unmodified controls at equivalent concentrations. Together, these results demonstrate that R6W3 functionalization is an important design consideration for modulating nanodisc-cell interactions, from membrane association and cellular uptake to intracellular trafficking. These findings provide a framework for engineering nanodisc-based delivery systems with improved intracellular access.
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