Donyoung Kim
Sungkyunkwan University · Engineering
About the Lab
Professor Donyoung Kim's research lab specializes in DNA nanotechnology and biomolecular engineering, focusing on the rational design and computational modeling of DNA-based nanostructures. The lab develops predictive simulation frameworks to control the 3D shape, mechanical flexibility, and phase behavior of DNA origami and synthetic biomolecular condensates. By integrating multiscale modeling with experimental validation, the lab enables precise engineering of nanostructures for applications in synthetic biology, nanomaterials, and biomedicine. A key focus is on creating reusable, modular, and tunable DNA nanoarchitectures with programmable mechanical and dynamic properties.
Research Overview
Research Output Trend
Figures are computed from collected data and may differ slightly.
Selected Papers
15DNA nanotechnology enables the programmed synthesis of intricate nanometer-scale structures for diverse applications in materials and biological science. Precise control over the 3D solution shape and mechanical flexibility of target designs is important to achieve desired functionality. Because experimental validation of designed nanostructures is time-consuming and cost-intensive, predictive physical models of nanostructure shape and flexibility have the capacity to enhance dramatically the de
Biomolecular condensates participate in diverse cellular processes, ranging from gene regulation to stress survival. Bottom-up engineering of synthetic condensates advances our understanding of the organizing principle of condensates. It also enables the synthesis of artificial systems with novel functions. However, building synthetic condensates with a predictable organization and function remains challenging. Here, we use DNA as a building block to create synthetic condensates that are assembl
Structural DNA nanotechnology plays an ever-increasing role in advanced biomolecular applications. Here, we present a computational method to analyze structured DNA assemblies rapidly at near-atomic resolution. Both high computational efficiency and molecular-level accuracy are achieved by developing a multiscale analysis framework. The sequence-dependent relative geometry and mechanical properties of DNA motifs are characterized by the all-atom molecular dynamics simulation and incorporated int
Scaffolded DNA origami enables the bottom-up fabrication of diverse DNA nanostructures by designing hundreds of staple strands, comprised of complementary sequences to the specific binding locations of a scaffold strand. Despite its exceptionally high design flexibility, poor reusability of staples has been one of the major hurdles to fabricate assorted DNA constructs in an effective way. Here we provide a rational module-based design approach to create distinct bent shapes with controllable geo
As scaffolded DNA origami enables the construction of diverse DNA nanostructures with predefined shapes, precise modulation of their mechanical stiffness remains challenging. We demonstrate a modular design method to widely and precisely control the mechanical flexibility of scaffolded DNA origami nanostructures while maintaining their overall structural integrity and geometric characteristics. Individually engineered defects that are short single-stranded DNA (ssDNA) gaps could reduce up to 70%
The originally published version of this Article contained an error in Figure 5. In panel f, the right y-axis 'Strain energy (kbT)' was labelled 'Probability' and the left y-axis 'Probability' was labelled 'Strain energy (kbT)'. This error has now been corrected in both the PDF and HTML versions of the Article.
Auxetic materials with a negative Poisson's ratio show a unique lateral expansion under tension while their deformation under shear is similar to that of normal materials. Here, we present a novel method to design the stiffness of tubular structures by exploiting these load-dependent distinct deformation modes of auxetic materials. Auxetic cutting patterns are engraved on a tube whose bending and torsional stiffness values are predicted computationally for a comprehensive set of design parameter
Cryopreservation of cells is essential for the conservation and cold chain of bioproducts and cell-based medicines. Here, we demonstrate that self-assembled DNA origami nanostructures have a substantial ability to protect cells undergoing freeze-thaw cycles; thereby, they can be used as cryoprotectant agents, because their nanoscale morphology and ice-philicity are tailored. In particular, a single-layered DNA origami nanopatch functionalized with antifreezing threonine peptides enabled the viab
Research Areas
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