Molecular design of biosensors based on enzymatic processes taking place in nanofluidic elements is receiving increasing attention by the scientific community. In this work, we describe the construction of novel ultrasensitive enzymatic nanopore biosensors employing “reactive signal amplifiers” as key elements coupled to the transduction mechanism. The proposed framework offers innovative design concepts not only to amplify the detected ionic signal and develop ultrasensitive nanopore-based sensors but also to construct nanofluidic diodes displaying specific chemo-reversible rectification properties. The integrated approach is demonstrated by electrostatically assembling poly(allylamine) on the anionic pore walls followed by the assembly o...
Nanopore sensors are a new class of single-molecule biosensors that allow for the detection of DNA, ...
Nanopore sensors provide a unique platform to detect individual nucleic acids, proteins, and other b...
Development of sophisticated tools capable of manipulating molecules at their own length scale enabl...
Molecular design of biosensors based on enzymatic processes taking place in nanofluidic elements is ...
We present data concerning the electrical properties of a class of biosensor devices based on bio-fu...
In the recent years, track-etched nanopores became the major impulse in the development of nanofluid...
International audienceSolid-state nanopores can be used as electrical biosensors at the single molec...
International audienceSolid-state nanopores provide a powerful tool to electrically analyze nanopart...
The ability of living systems to respond to stimuli and process information has encouraged scientist...
Nanopore ionic current measurement is currently a prevailing readout and offers considerable opportu...
Hydrophobic gating in biological transport proteins is regulated by stimulus-specific switching betw...
The use of nanopores of well controlled geometry for sensing molecules in solution is reviewed. Focu...
The use of nanopores of well controlled geometry for sensing molecules in solution is reviewed. Focu...
Nature produces a plethora of nanochannels to carry out highly complex biological tasks in a sophist...
Nanopore sensors are a new class of single-molecule biosensors that allow for the detection of DNA, ...
Nanopore sensors provide a unique platform to detect individual nucleic acids, proteins, and other b...
Development of sophisticated tools capable of manipulating molecules at their own length scale enabl...
Molecular design of biosensors based on enzymatic processes taking place in nanofluidic elements is ...
We present data concerning the electrical properties of a class of biosensor devices based on bio-fu...
In the recent years, track-etched nanopores became the major impulse in the development of nanofluid...
International audienceSolid-state nanopores can be used as electrical biosensors at the single molec...
International audienceSolid-state nanopores provide a powerful tool to electrically analyze nanopart...
The ability of living systems to respond to stimuli and process information has encouraged scientist...
Nanopore ionic current measurement is currently a prevailing readout and offers considerable opportu...
Hydrophobic gating in biological transport proteins is regulated by stimulus-specific switching betw...
The use of nanopores of well controlled geometry for sensing molecules in solution is reviewed. Focu...
The use of nanopores of well controlled geometry for sensing molecules in solution is reviewed. Focu...
Nature produces a plethora of nanochannels to carry out highly complex biological tasks in a sophist...
Nanopore sensors are a new class of single-molecule biosensors that allow for the detection of DNA, ...
Nanopore sensors provide a unique platform to detect individual nucleic acids, proteins, and other b...
Development of sophisticated tools capable of manipulating molecules at their own length scale enabl...