Noo Li Jeon
Seoul National University · 工学
研究室紹介
Professor Noo Li Jeon's research lab specializes in microfluidic technologies and bioengineering, focusing on creating advanced in vitro models that closely mimic physiological environments. The lab develops microfluidic platforms to generate precise chemical and topographical gradients, enabling controlled study of cell behavior in 3D microenvironments. Key research directions include engineering perfusable 3D vascular networks, optimizing stem cell differentiation through dynamic media control, and constructing complex in vitro models such as the blood-brain barrier with spatially regulated co-cultures. The lab integrates microfabrication, cell biology, and tissue engineering to advance regenerative medicine and disease modeling.
Research Overview
Research Output Trend
Figures are computed from collected data and may differ slightly.
Selected Papers
15This paper describes a simple, versatile method of generating gradients in composition in solution or on surfaces using microfluidic systems. This method is based on controlled diffusive mixing of species in solutions that are flowing laminarly, at low Reynolds number, inside a network of microchannels. We demonstrate the use of this procedure to generate (1) gradients in the compositions of solutions, measured directly by colorimetric assays and (2) gradients in topography of the surfaces produ
This paper describes the generation of gradients having complex shapes in solution using microfluidic networks. Flowing multiple streams of fluid each carrying different concentrations of substances laminarly and side-by-side generated step concentration gradients perpendicular to the direction of the flow. Appropriately designed networks of microchannels for controlled diffusive mixing of substances generated a range of shapes for the gradients, including linear, parabolic, and periodic. The la
Three-dimensional microfluidic systems were fabricated and used to pattern proteins and mammalian cells on a planar substrate. The three-dimensional topology of the microfluidic network in the stamp makes this technique a versatile one with which to pattern multiple types of proteins and cells in complex, discontinuous structures on a surface. The channel structure, formed by the stamp when it is in contact with the surface of the substrate, limits migration and growth of cells in the channels.
This paper describes a simple plasma-based dry etching method that enables patterned cell culture inside microfluidic devices by allowing patterning, fluidic bonding and sterilization steps to be carried out in a single step. This plasma-based dry etching method was used to pattern cell-adhesive and non-adhesive areas on the glass and polystyrene substrates. The patterned substrate was used for selective attachment and growth of human umbilical vein endothelial cells, MDA-MB-231 human breast can
Abstract A novel three dimensional blood brain barrier (BBB) platform was developed by independently supplying different types of media to separate cell types within a single device. One channel (vascular channel, VC) is connected to the inner lumen of the vascular network while the other supplies media to the neural cells (neural channel, NC). Compared to co-cultures supplied with only one type of medium (or 1:1 mixture), best barrier properties and viability were obtained with culturing HUVECs
The field of microfluidics-based three-dimensional (3D) cell culture system is rapidly progressing from academic proof-of-concept studies to valid solutions to real-world problems. Polydimethylsiloxane (PDMS)-based platform has been widely adopted as in vitro platforms for mimicking tumor microenvironment. However, PDMS has not been welcomed as a standardized commercial application for preclinical screening due to inherent material limitations that make it difficult to scale-up production. Here,
Many chemical and biological processes are dependent on molecular gradients. We describe a new microfluidic approach that can be used to produce spatiotemporal gradients across two-dimensional surfaces and three-dimensional gels under flow-free conditions. Free diffusion between dynamically replenished flow channels acting as a sink and source is utilized to give rise to stable steady-state gradient profiles. The gradient profile is dictated by the engineered design of the device's gradient-gene
Adoptive cell transfer against solid tumors faces challenges to overcome tumor microenvironment (TME), which plays as a physical barrier and provides immuno-suppressive conditions. Classical cytotoxicity assays are widely used to measure killing ability of the engineered cytotoxic lymphocytes as therapeutics, but the results cannot represent the performance in clinical application due to the absence of the TME. This paper describes a 3D cytotoxicity assay using an injection molded plastic array
We introduce a novel microfluidic device to co-culture a blood vessel network and cell tissues in an in vivo-like niche. Our "open-top" microfluidic device is composed of microchannels with micropores in the ceiling, which provides direct fluid access from reservoir to microchannel. Fluid connections through micropores afford novel advantages, including: i) the long-term culture of large-scale microvessel network, ii) access of different fluids to inner and exterior sides of the microvessel, and
Rapid micropatterning of polymers on rigid and flexible substrates can be achieved by the method—vacuum-assisted micromolding in capillaries (MIMIC)—introduced here. The Figure shows an oblique-view SEM image of a single hexagonal cell of a pattern produced by vacuum-assisted MIMIC. The use of vacuum reduced the time taken to fill the pattern with UV-curable polyurethane from ∼30 min to ∼15 s.
High-purity platinum and palladium thin films can be deposited selectively by combining microcontact printing (μCP) and metal−organic chemical vapor deposition (MOCVD). Printed patterns of octadecyltrichlorosilane thin films are used to direct the selective deposition of the metallic thin films from bis(hexafluoroacetylacetonato)platinum(II), Pt(hfac) 2, and bis(hexafluoroacetylacetonato)palladium(II), Pd(hfac) 2, in the presence of hydrogen. This process has been used successfully to fabricate
We describe a non-lithographic monolayer based patterning process for depositing copper thin film microstructures by chemical vapor deposition (CVD). The technique combines the microcontact printing of octadecyltrichlorosilane (OTS) monolayers, nonselective copper CVD, and mild (abrasive-free) mechanical polishing to fabricate thin film microstructures on both planar and nonplanar substrates. This technique has been used successfully to deposit copper features with sizes ranging from 5 to 250 μm
We present a novel approach for assembling 3D tissue by layer-by-layer stacking of cell sheets formed on aligned nanofiber mesh. A rigid frame was used to repeatedly collect aligned electrospun PCL (polycaprolactone) nanofiber to form a mesh structure with average distance between fibers 6.4 µm. When human umbilical vein endothelial cells (HUVECs), human foreskin dermal fibroblasts, and skeletal muscle cells (C2C12) were cultured on the nanofiber mesh, they formed confluent monolayers and could
The rapid recruitment of osteoblasts in bone defects is an essential prerequisite for efficient bone repair. Conventionally, osteoblast recruitment to bone defects and subsequent bone repair has been achieved using growth factors. Here, we present a methodology that can guide the recruitment of osteoblasts to bone defects with topographically defined implants (TIs) for efficient in vivo bone repair. We compared circular TIs that had microgrooves in parallel or radial arrangements with nonpattern