Area of research
Cellular and Molecular Neuroscience · Biomedical Engineering
Research interest
Research interests include Neuroscience and Neural Engineering, Neural dynamics and brain function, Analytical Chemistry and Sensors, and 3D Printing in Biomedical Research.
Preconfigured neuronal firing sequences in human brain organoids.
A perfused, parallelized blood brain barrier-tumor platform for compound permeation and efficacy investigations.
Engineering Neuronal Network Connectivity Through Precise and Scalable Electrical Modulation.
Functional Cell-Type Identification in Neuronal Networks Using High-Density Microelectrode Arrays
Monitoring intracellular antibiotic concentrations in real-time using allosteric biosensors
In-sensor cryptographic signature generation to link a physical process and an immutable digital entity
Direct-Print 3D Electrodes for Large-Scale, High-Density, and Customizable Neural Interfaces.
Homophilic wiring principles underpin neuronal network topology in vitro.
Advances in large-scale electrophysiology with high-density microelectrode arrays.
Seamless integration of CMOS microsensors into open microfluidic systems.
Synchronization of visual perception within the human fovea.
Perfusable 3D human urothelial model for real-time analysis of bacterial infection dynamics and therapeutic interventions
A microfluidic platform for the co-culturing of microtissues with continuously recirculating suspension cells.
A Low-Cost Multimodal Testbed for Array-Based Electrophysiological Microelectrodes.
PHIROS: Integrated microfluidic platform for multi-day high-resolution imaging of organotypic slices
Author response: Homophilic wiring principles underpin neuronal network topology in vitro
A model of human neural networks reveals NPTX2 pathology in ALS and FTLD.
Revitalizing antibiotic discovery and development through in vitro modelling of in-patient conditions.
Mechanical stimulation and electrophysiological monitoring at subcellular resolution reveals differential mechanosensation of neurons within networks.
A Versatile Intestine-on-Chip System for Deciphering the Immunopathogenesis of Inflammatory Bowel Disease.
DeePhys: A machine learning-assisted platform for electrophysiological phenotyping of human neuronal networks.
Ensemble learning and ground-truth validation of synaptic connectivity inferred from spike trains.
RT-Sort: An action potential propagation-based algorithm for real time spike detection and sorting with millisecond latencies
A 4096 channel event-based multielectrode array with asynchronous outputs compatible with neuromorphic processors.
CardioMEA: comprehensive data analysis platform for studying cardiac diseases and drug responses.
A Multimodal Fitting Approach to Construct Single-Neuron Models With Patch Clamp and High-Density Microelectrode Arrays.
High-throughput platform for label-free sorting of 3D spheroids using deep learning.
RT-Sort: An action potential propagation-based algorithm for real time spike detection and sorting with millisecond latencies.
Microfluidic Platform for Real-Time Impedance Profiling of Transwell-Based Barrier Models.
Action potential propagation speed compensates for traveling distance in the human retina