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Van Herck, B.

Publications and source records attributed to Van Herck, B..

2 recordsLinked to original sources

Dilatable DNA origami nanopores as nuclear pore mimics

The nuclear pore complex (NPC) is a massive protein system that controls all nucleocytoplasmic transport via a dynamic network of intrinsically disordered proteins called FG-Nups. We developed an NPC-mimicking DNA origami nanostructure that self-assembles into a tetrameric, octagonal nanopore with an inner diameter that, through addition of DNA oligonucleotides, can be tuned in a user-defined fashion from 57 to 66 nm - mimicking the contracted and dilated states of NPCs. We demonstrated that these origami nanopores can dilate within minutes and recontract at slower timescales. Both contracted and dilated pores can be inserted into lipid bilayers, where they maintain their conformation and allow transmembrane transport of fluorescent proteins. With outer diameters up to 87 nm, these are, to our knowledge, the largest DNA origami nanopores inserted into lipid membranes. Functionalization of the pores with the FG-Nup Nsp1 reduces non-specific cargo diffusion across the lipid membrane while facilitating translocation of the transport receptor Kap95, demonstrating transport selectivity much like biological NPCs. The work establishes a size-tunable platform to dissect nuclear transport mechanisms, with potential applications for engineering programmable artificial channels.

biophysics↗

Lipid-conjugated DNA enables on-demand delivery of lipids and proteins to synthetic cells

The bottom-up construction of synthetic cells based on giant unilamellar vesicles (GUVs) is a central goal in synthetic biology. Achieving targeted changes in membrane and cytoplasmic composition with temporal control remains challenging however. DNA-mediated fusion with small vesicles ([~]100 nm large unilamellar vesicles; LUVs) has been proposed as a strategy to deliver lipids and cytosolic contents in a programmable manner. However, in vitro, membrane fusion is generally found to be inefficient and poorly controllable for reasons that are poorly understood. Here, we present an approach based on lipid-conjugated DNA (LiNA) to mediate programmable fusion between LUVs and micron-sized GUVs, which we quantitatively monitor with confocal microscopy at the single-GUV level. We show that lipid and content mixing both occur with high efficiency over a wide range of LiNA concentrations, demonstrating that LiNAs indeed induce robust membrane fusion. Furthermore, we show that LiNA-mediated fusion provides a powerful tool to deliver cytosolic biomolecules, enabling control over internal activities. Our findings establish a quantitative framework for studying fusion-driven processes in synthetic cells and provide a versatile platform for the programmable delivery of lipids and cytosolic cargoes - thus advancing the development of synthetic cells that can grow and adapt through fusion-based uptake of molecular building blocks.

synthetic biology↗