Biological nanopores are emerging as powerful and low-cost sensors for real-time analysis of biological samples. Proteins can be incorporated inside the nanopore, and ligand binding to the protein adaptor yields changes in nanopore conductance. In order to understand the origin of these conductance changes and develop sensors for detecting metabolites, we tested the signal originating from 13 different protein adaptors. We found that the quality of the protein signal depended on both the size and charge of the protein. The engineering of a dipole within the surface of the adaptor reduced the current noise by slowing the protein dynamics within the nanopore. Further, the charge of the ligand and the induced conformational changes of the adap...
Proteins are structurally dynamic macromolecules, and it is challenging to quantify the conformation...
Nanopores have been used to detect molecules, to sequence DNA, or to investigate chemical reactions ...
Solid-state nanopore sensors have attracted considerable attraction as a tool for solution-based sin...
Biological nanopores are emerging as powerful and low-cost sensors for real-time analysis of biologi...
Proteins are the active workhorses in our body. These biomolecules perform all vital cellular functi...
Proteins are the active workhorses in our body. These biomolecules perform all vital cellular functi...
International audienceProteins subjected to an electric field and forced to pass through a nanopore ...
Abstract Electrical current recordings through electrolyte-filled nanopores (so called resistive pul...
Protein conformations play crucial roles in most, if not all, biological processes. Here we show tha...
Nanopores are powerful sensors capable of directly measuring the physical characteristics of single ...
The use of pore-forming proteins (PFPs) in nanopore sensing has been fruitful largely due to their n...
nanopores, have been previously used for investigating the translocation machineries of proteins [7]...
This paper demonstrates that high-bandwidth current recordings in combination with low-noise silicon...
Nanopore technology has been developed for detecting properties of proteins through monitoring of io...
Proteins are structurally dynamic macromolecules, and it is challenging to quantify the conformation...
Nanopores have been used to detect molecules, to sequence DNA, or to investigate chemical reactions ...
Solid-state nanopore sensors have attracted considerable attraction as a tool for solution-based sin...
Biological nanopores are emerging as powerful and low-cost sensors for real-time analysis of biologi...
Proteins are the active workhorses in our body. These biomolecules perform all vital cellular functi...
Proteins are the active workhorses in our body. These biomolecules perform all vital cellular functi...
International audienceProteins subjected to an electric field and forced to pass through a nanopore ...
Abstract Electrical current recordings through electrolyte-filled nanopores (so called resistive pul...
Protein conformations play crucial roles in most, if not all, biological processes. Here we show tha...
Nanopores are powerful sensors capable of directly measuring the physical characteristics of single ...
The use of pore-forming proteins (PFPs) in nanopore sensing has been fruitful largely due to their n...
nanopores, have been previously used for investigating the translocation machineries of proteins [7]...
This paper demonstrates that high-bandwidth current recordings in combination with low-noise silicon...
Nanopore technology has been developed for detecting properties of proteins through monitoring of io...
Proteins are structurally dynamic macromolecules, and it is challenging to quantify the conformation...
Nanopores have been used to detect molecules, to sequence DNA, or to investigate chemical reactions ...
Solid-state nanopore sensors have attracted considerable attraction as a tool for solution-based sin...