This paper demonstrates that high-bandwidth current recordings in combination with low-noise silicon nitride nanopores make it possible to determine the molecular volume, approximate shape, and dipole moment of single native proteins in solution without the need for labeling, tethering, or other chemical modifications of these proteins. The analysis is based on current modulations caused by the translation and rotation of single proteins through a uniform electric field inside of a nanopore. We applied this technique to nine proteins and show that the measured protein parameters agree well with reference values but only if the nanopore walls were coated with a nonstick fluid lipid bilayer. One potential challenge with this approach is that ...
Biological nanopores are emerging as powerful tools for single-molecule analysis and sequencing. Her...
A nanopore is a tool in single-molecule sensing biotechnology that offers label-free identification ...
Abstract Electrical current recordings through electrolyte-filled nanopores (so called resistive pul...
Identifying the protein content in a cell in a fast and reliable manner has become a relevant goal i...
Proteins are structurally dynamic macromolecules, and it is challenging to quantify the conformation...
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...
The three-dimensional structure of a protein plays an important role in protein dynamics in the biol...
Nanopores are powerful sensors capable of directly measuring the physical characteristics of single ...
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...
This chapter is focused on the development of experiments and theory of using solid-state nanopores ...
Nanopore sensing is a single-molecule technique capable of detecting peptide and protein molecules b...
AbstractHigh-bandwidth measurements of the ion current through hafnium oxide and silicon nitride nan...
A nanopore is the ultimate analytical tool. It can be used to detect DNA, RNA, oligonucleotides, and...
Biological nanopores are emerging as powerful tools for single-molecule analysis and sequencing. Her...
A nanopore is a tool in single-molecule sensing biotechnology that offers label-free identification ...
Abstract Electrical current recordings through electrolyte-filled nanopores (so called resistive pul...
Identifying the protein content in a cell in a fast and reliable manner has become a relevant goal i...
Proteins are structurally dynamic macromolecules, and it is challenging to quantify the conformation...
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...
The three-dimensional structure of a protein plays an important role in protein dynamics in the biol...
Nanopores are powerful sensors capable of directly measuring the physical characteristics of single ...
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...
This chapter is focused on the development of experiments and theory of using solid-state nanopores ...
Nanopore sensing is a single-molecule technique capable of detecting peptide and protein molecules b...
AbstractHigh-bandwidth measurements of the ion current through hafnium oxide and silicon nitride nan...
A nanopore is the ultimate analytical tool. It can be used to detect DNA, RNA, oligonucleotides, and...
Biological nanopores are emerging as powerful tools for single-molecule analysis and sequencing. Her...
A nanopore is a tool in single-molecule sensing biotechnology that offers label-free identification ...
Abstract Electrical current recordings through electrolyte-filled nanopores (so called resistive pul...