Area of research
Molecular Biology · Atomic and Molecular Physics, and Optics
Research interest
Research interests include Force Microscopy Techniques and Applications, Alzheimer's disease research and treatments, Lipid Membrane Structure and Behavior, and Supramolecular Self-Assembly in Materials.
The structure of tyrosine-10 favors ionic conductance of Alzheimer's disease-associated full-length amyloid-β channels.
In pursuit of degenerative brain disease diagnosis: Dementia biomarkers detected by DNA aptamer-attached portable graphene biosensor
Rapid self-test of unprocessed viruses of SARS-CoV-2 and its variants in saliva by portable wireless graphene biosensor
Bacterial surface interactions with organic colloidal particles: Nanoscale hotspots of organic matter in the ocean
Direct DNA Methylation Profiling with an Electric Biosensor.
Sub-nanowatt microfluidic single-cell calorimetry.
Advances in Translational Nanotechnology: Challenges and Opportunities
Lipid-Encapsulated Silica Nanobowls as an Efficient and Versatile DNA Delivery System.
DNA Nanotweezers and Graphene Transistor Enable Label‐Free Genotyping
DNA Hydrogel with Aptamer-Toehold-Based Recognition, Cloaking, and Decloaking of Circulating Tumor Cells for Live Cell Analysis
Real-time visualization of clustering and intracellular transport of gold nanoparticles by correlative imaging
In Situ Spatial Complementation of Aptamer‐Mediated Recognition Enables Live‐Cell Imaging of Native RNA Transcripts in Real Time
The diphenylpyrazole compound anle138b blocks Aβ channels and rescues disease phenotypes in a mouse model for amyloid pathology
Amyloid β Ion Channels in a Membrane Comprising Brain Total Lipid Extracts
Highly specific SNP detection using 2D graphene electronics and DNA strand displacement
Disordered amyloidogenic peptides may insert into the membrane and assemble into common cyclic structural motifs
High performance, LED powered, waveguide based total internal reflection microscopy
Heterogeneous elastic response of human lung microvascular endothelial cells to barrier modulating stimuli
Magnetic targeting of nanoparticles across the intact blood–brain barrier
Mechanisms for the Insertion of Toxic, Fibril-like β-Amyloid Oligomers into the Membrane
Atomic Force Microscopy and MD Simulations Reveal Pore-Like Structures of All-<scp>d</scp>-Enantiomer of Alzheimer’s β-Amyloid Peptide: Relevance to the Ion Channel Mechanism of AD Pathology