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Jacobs, C. O.

Publications and source records attributed to Jacobs, C. O..

2 recordsLinked to original sources

Amphiphilic Peptide Fusion Promotes Endocytic Uptake of Nanodiscs

A major limitation across nanoparticle delivery platforms is sequestration within endosomal compartments, which restricts access to intracellular targets despite efficient cellular uptake. Here, we show that peptide architecture can be used to control intracellular trafficking and reduce endosomal accumulation 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 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-funtionalized nanodiscs display reduced accumulation in early endosomes relative to unmodified nanodiscs, indicating decreased endosomal sequestration following endosomal uptake. These trafficking differences translate to functional outcomes, as doxorubicin-loaded, R6W3-functionalized nanodiscs achieve greater cytotoxicity than unmodified controls at equivalent concentrations. Together, these results establish peptide architecture as a design parameter for controlling intracellular trafficking and overcoming endosomal bottlenecks, providing a broadly applicable strategy for improving nanocarrier- based delivery systems.

bioengineering↗

Clathrin is an Intrinsic Driver of Membrane Fission

Clathrin-mediated endocytosis is a primary internalization pathway where adaptor proteins recruit clathrin and bend the plasma membrane to form clathrin coated vesicles. Since clathrin does not bind membranes directly, its contributions to membrane remodeling remain unclear. Using an in vitro system that recruits clathrin directly to lipid membranes, we show that clathrin alone can drive end-to-end membrane budding and vesicle fission. Surprisingly, stronger clathrin assembly (i.e., higher membrane association) yields weaker membrane fission, indicating that membrane remodeling depends not simply on how much clathrin is recruited, but on how the resulting lattice is assembled. Brownian dynamics simulations, together with experimentally measured shifts in clathrin cage diameter, suggest that this counterintuitive behavior arises at least in part from assembly-dependent changes in intrinsic lattice curvature. This framework extends to adaptor-mediated recruitment, with clathrin either assisting or opposing membrane fission in an adaptor-dependent manner. Together, these findings support a mechanism by which coat protein mechanics regulate membrane remodeling.

biophysics↗