DNA polymerase catalyzes the replication of DNA, one of the key steps in cell division. The control and understanding of this reaction owns great potential for the fundamental study of DNA-enzyme interactions. In this context, we developed a label-free microfluidic biosensor platform based on the principle of localized surface plasmon resonance (LSPR) to detect the DNA-polymerase reaction in real-time. Our microfluidic LSPR chip integrates a polydimethylsiloxane (PDMS) channel bonded with a nanoplasmonic substrate, which consists of densely packed mushroom-like nanostructures with silicon dioxide stems (~40nm) and gold caps (~22nm), with an average spacing of 19nm. The LSPR chip was functionalized with single-stranded DNA (ssDNA) template (...
We report on a novel approach to identify genetic variations based on the detection of specific poly...
Our goal is to develop signal enhancement strategies that could increase the sensitivity in DNA rec...
Thesis (Ph. D.)--University of Rochester. Dept. of Biomedical Engineering, 2011.The development of r...
Summary Biosensors have been successfully applied to study DNA hybridization reactions for several ...
We have constructed a nanoplasmonic molecular ruler, which can perform label-free and real-time moni...
DNA microarrays are invaluable tools for biosensing applications such as diagnostic detection of DNA...
In the framework of bioanalytics and multiple array detection, we developed a fully portable and low...
DNA nanotechnology has a great potential in biosensor design including nanostructuring of the biosen...
Different assays have been developed in the past years to meet point-of-care diagnostic tests requir...
We developed a versatile DNA assay and framework for monitoring polymerization of DNA in real time ...
This work presents several high throughput imaging and analysis techniques performed by fluorescence...
We report on the development of a new platform technology for the detection of genetic variations by...
AbstractWe present a portable surface plasmon resonance (SPR) sensor based on spectroscopy of surfac...
The advances in genomics and proteomics have unveiled an exhaustive catalogue of biomarkers that can...
The detection of DNA hybridization in medical diagnostics ought to be rapid, sensitive and specific....
We report on a novel approach to identify genetic variations based on the detection of specific poly...
Our goal is to develop signal enhancement strategies that could increase the sensitivity in DNA rec...
Thesis (Ph. D.)--University of Rochester. Dept. of Biomedical Engineering, 2011.The development of r...
Summary Biosensors have been successfully applied to study DNA hybridization reactions for several ...
We have constructed a nanoplasmonic molecular ruler, which can perform label-free and real-time moni...
DNA microarrays are invaluable tools for biosensing applications such as diagnostic detection of DNA...
In the framework of bioanalytics and multiple array detection, we developed a fully portable and low...
DNA nanotechnology has a great potential in biosensor design including nanostructuring of the biosen...
Different assays have been developed in the past years to meet point-of-care diagnostic tests requir...
We developed a versatile DNA assay and framework for monitoring polymerization of DNA in real time ...
This work presents several high throughput imaging and analysis techniques performed by fluorescence...
We report on the development of a new platform technology for the detection of genetic variations by...
AbstractWe present a portable surface plasmon resonance (SPR) sensor based on spectroscopy of surfac...
The advances in genomics and proteomics have unveiled an exhaustive catalogue of biomarkers that can...
The detection of DNA hybridization in medical diagnostics ought to be rapid, sensitive and specific....
We report on a novel approach to identify genetic variations based on the detection of specific poly...
Our goal is to develop signal enhancement strategies that could increase the sensitivity in DNA rec...
Thesis (Ph. D.)--University of Rochester. Dept. of Biomedical Engineering, 2011.The development of r...