Area of research
Biomedical Engineering · Oncology
Research interest
Research interests include 3D Printing in Biomedical Research, CAR-T cell therapy research, Tissue Engineering and Regenerative Medicine, and Immune Cell Function and Interaction.
In vitro integration of a functional vasculature to model endothelial regulation of chemotherapy and T-cell immunotherapy in liver cancer
Unveiling the Influence of Tumor Microenvironment and Spatial Heterogeneity on Temozolomide Resistance in Glioblastoma Using an Advanced Human In Vitro Model of the Blood‐Brain Barrier and Glioblastoma
G9a/GLP inhibition during ex vivo lymphocyte expansion increases in vivo cytotoxicity of engineered T cells against hepatocellular carcinoma
Characterization of 3D heterocellular spheroids of pancreatic ductal adenocarcinoma for the study of cell interactions in the tumor immune microenvironment
Nanoparticle-Based Therapies for Turning Cold Tumors Hot: How to Treat an Immunosuppressive Tumor Microenvironment
Immunosuppressive Drug‐Resistant Armored T‐Cell Receptor T Cells for Immune Therapy of HCC in Liver Transplant Patients
Abstract A049: Three-dimensional microfluidic platform mimicking the tumor microenvironment
Characterizing the Role of Monocytes in T Cell Cancer Immunotherapy Using a 3D Microfluidic Model
Nonlytic Lymphocytes Engineered to Express Virus-Specific T-Cell Receptors Limit HBV Infection by Activating APOBEC3
MBNL1 alternative splicing isoforms play opposing roles in cancer
A combined microfluidic-transcriptomic approach to characterize the extravasation potential of cancer cells
A 3D microfluidic model for preclinical evaluation of TCR-engineered T cells against solid tumors
Human cardiac fibroblasts adaptive responses to controlled combined mechanical strain and oxygen changes in vitro
A 3D neurovascular microfluidic model consisting of neurons, astrocytes and cerebral endothelial cells as a blood–brain barrier
Advances in microfluidics in combating infectious diseases
Engineering a 3D microfluidic culture platform for tumor-treating field application
Microfluidic models for adoptive cell-mediated cancer immunotherapies
Controlled electromechanical cell stimulation on-a-chip
On‐chip assessment of human primary cardiac fibroblasts proliferative responses to uniaxial cyclic mechanical strain