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Vreeker, E.

Publications and source records attributed to Vreeker, E..

2 recordsLinked to original sources

β-barrel nanopores designed for insertion into thick block copolymer membranes

Efficient integration of proteins into amphiphilic polymer membranes offers new opportunities in synthetic biology and nanotechnology. Long-term protein reconstitution into artificial membranes remains challenging due to a lack of stabilising protein-membrane interactions found in native lipid bilayers. Here, we redesigned the transmembrane region of a CytK-4D {beta}-barrel nanopore for stable insertion into 3.5-6.6 nm thick PBD-PEO (poly(1,2-butadiene)-b-poly(ethylene oxide)) bilayers. PBD-PEO membranes offer high mechanical and chemical stability and low electrical noise, but the thick membrane hinders anchoring of biological nanopores. By systematically investigating the elongation of the {beta}-barrel, we engineered nanopore constructs suitable for PBD11PEO8 and PBD22PEO14 membranes. Efficient insertions were observed by adding amino acids that stabilised the transmembrane {beta}-barrel structure and enhanced anchoring of the nanopore into the membrane. Molecular dynamics simulations and single-molecule assays revealed that nanopores folded naturally into PBD-PEO bilayers, enabling successful detection of cyclodextrins and translocation of polypeptides and full-length proteins. Our study offers important lessons for the reconstitution of membrane proteins into artificial membranes. Moreover, these highly robust nanopore-membrane interfaces can be readily integrated into biosensing devices, enabling peptide and protein analysis directly from complex solutions.

biophysics↗

Hybrid lipid-block copolymer membranes enable stable reconstitution of a wide range of nanopores and robust sampling of serum

Biological nanopores are powerful tools for detecting biomolecules at the single-molecule level, making them appealing as sensors for biological samples. However, the lipid membranes in which nanopores reside can be unstable in the presence of biological fluids. Here, membranes formed with the amphiphilic polymers PMOXA-PDMS-PMOXA and PBD-PEO are tested as potential alternatives for nanopore sensing. We demonstrate that polymer membranes can possess increased stability towards applied potentials and high concentrations of human serum, but that the stable insertion of a wide range of biological nanopores is most often compromised. Alternatively, hybrid polymer-lipid membranes comprising a 1:1 w/w mixture of PBD11PEO8 and DPhPC showed high electrical and biochemical stability while creating a suitable environment for all tested nanopores. Analytes such as proteins, DNA and sugars were efficiently sampled, indicating that in hybrid membranes nanopores showed native-like properties. Molecular dynamics simulations revealed that lipids form [~]12 nm domains interspersed by a polymer matrix. Nanopores partitioned into these lipid nanodomains and sequestered lipids possibly offering the same binding strength as in a native bilayer. This work shows that single-molecule analysis with nanopores in [PBD11PEO8 + DPhPC] membranes is feasible and present stable recordings in the presence of human serum. These results pave the way towards novel nanopore-based biosensors.

biophysics↗