Area of research
Biomedical Engineering · Biomaterials
Research interest
Research focused on Cell biology and Embryonic stem cell, with related work in Mechanotransduction, Self-healing hydrogels, Neurite. Notable publications include 'Nanotopography Modulates Mechanotransduction of Stem Cells and Induces Differentiation through Focal Adhesion Kinase', 'From nano to micro: topographical scale and its impact on cell adhesion, morphology and contact guidance', and 'Sequentially-crosslinked bioactive hydrogels as nano-patterned substrates with customizable stiffness and degradation for corneal tissue engineering applications'.
<i>In vivo</i> evaluation of compliance mismatch on intimal hyperplasia formation in small diameter vascular grafts
Effect of Ethylene Oxide Sterilization on Polyvinyl Alcohol Hydrogel Compared with Gamma Radiation
Nanoscale Architecture of the Cortical Actin Cytoskeleton in Embryonic Stem Cells
Correlation and Comparison of Cortical and Hippocampal Neural Progenitor Morphology and Differentiation through the Use of Micro- and Nano-Topographies
From nano to micro: topographical scale and its impact on cell adhesion, morphology and contact guidance
Sequentially-crosslinked bioactive hydrogels as nano-patterned substrates with customizable stiffness and degradation for corneal tissue engineering applications
Planar and tubular patterning of micro and nano-topographies on poly(vinyl alcohol) hydrogel for improved endothelial cell responses
Cell contractility arising from topography and shear flow determines human mesenchymal stem cell fate
Mechanical confinement triggers glioma linear migration dependent on formin FHOD3
Fibers by interfacial polyelectrolyte complexation – processes, materials and applications
In vitro and ex vivo hemocompatibility of off-the-shelf modified poly(vinyl alcohol) vascular grafts
Micro- and nano-topography to enhance proliferation and sustain functional markers of donor-derived primary human corneal endothelial cells
Extending neurites sense the depth of the underlying topography during neuronal differentiation and contact guidance
Micro- and nanotopography with extracellular matrix coating modulate human corneal endothelial cell behavior
Nanotopography Modulates Mechanotransduction of Stem Cells and Induces Differentiation through Focal Adhesion Kinase
Force-dependent cell signaling in stem cell differentiation
Substrate topography and size determine the fate of human embryonic stem cells to neuronal or glial lineage
Microarray with Micro‐ and Nano‐topographies Enables Identification of the Optimal Topography for Directing the Differentiation of Primary Murine Neural Progenitor Cells