Ulsan National Institute of Science and Technology · 生化学・遺伝学・分子生物学
Professor Sebyung Kang's research lab specializes in the design and engineering of protein-based nanomaterials for biomedical applications, with a focus on viral and ferritin-like protein cages as versatile nanoplatforms. The lab develops advanced biosensing technologies using surface plasmon resonance and nanoscale imaging, while also pioneering innovative strategies for targeted drug delivery and multiplexed cellular imaging through site-specific protein modifications. Key research directions include the construction of multifunctional nanocages, the use of bioorthogonal ligation systems like SpyTag/SpyCatcher, and the application of chemical cross-linking coupled with mass spectrometry to probe protein structures and interactions. The lab integrates structural biology, bioconjugate chemistry, and nanobiotechnology to create smart, modular nanosystems for diagnostics and therapeutics.
Figures are computed from collected data and may differ slightly.
Surface plasmon resonance (SPR) is a label-free detection method which has emerged during the last two decades as a suitable and reliable platform in clinical analysis for biomolecular interactions. The technique makes it possible to measure interactions in real-time with high sensitivity and without the need of labels. This review article discusses a wide range of applications in optical-based sensors using either surface plasmon resonance (SPR) or surface plasmon resonance imaging (SPRI). Here
Viral capsids are dynamic macromolecular machines which self-assemble and undergo concerted conformational changes during their life cycle. We have taken advantage of the inherent structural flexibility of viral capsids and generated two morphologically different types of viral nanoplatforms from the bacteriophage P22 capsids. Their interior surfaces were genetically manipulated for site-specific attachment of a biotin linker. The extent of internal modifications in each capsid form was characte
The chimeric protein cages having dual functionalities inside and outside of LiDps are constructed by reassembling dissociated subunits with desired ratios and their compositions are monitored by noncovalent mass spectrometry at the molecular level. Binomial distribution analysis of mass spectra reveals that dissociated subunits reassemble randomly into a dodecameric cage.
The selective detection of specific cells of interest and their effective visualization is important but challenging, and fluorescent cell imaging with target-specific probes is commonly used to visualize cell morphology and components and to track cellular processes. Multiple displays of two or more targeting ligands on a polyvalent single template would make it possible to construct versatile multiplex fluorescent cell imaging probes that can visualize two or more target cells individually wit
Chemical cross-linking combined with mass spectrometry (MS) has been used to elucidate protein structures and protein-protein interactions. However, heterogeneity of the samples and the relatively low abundance of cross-linked peptides make this approach challenging. As an effort to overcome this hurdle, we have synthesized lysine-reactive homobifunctional cross-linkers with the biotin in the middle of the linker and used them to enrich cross-linked peptides. The reaction of biotin-tagged cross-
Protein cage nanoparticles are widely used as targeted delivery nanoplatforms, because they have well-defined symmetric architectures, high biocompatibility, and enough plasticity to be modified to produce a range of different functionalities. Targeting peptides and ligands are often incorporated on the surface of protein cage nanoparticles. In this research, we adopted the SpyTag/SpyCatcher protein ligation system to covalently display target-specific affibody molecules on the exterior surface
Lumazine synthase protein cage nanoparticle is developed as a modular delivery nanoplatform that delivers drugs to their target cancer cells.
Viral capsids are dynamic structures which self-assemble and undergo a series of structural transformations to form infectious viruses. The dsDNA bacteriophage P22 is used as a model system to study the assembly and maturation of icosahedral dsDNA viruses. The P22 procapsid, which is the viral capsid precursor, is assembled from coat protein with the aid of scaffolding protein. Upon DNA packaging, the capsid lattice expands and becomes a stable virion. Chemical cross-linking analyzed by mass spe
Protein cages have been used both as size-constrained reaction vessels for nanomaterials synthesis and as nanoscale building blocks for higher order nanostructures. We generated Janus-like protein cages, which are dual functionalized with a fluorescent and an affinity label, and demonstrated control over both the stoichiometry and spatial distribution of the functional groups. The capability to toposelectively functionalize protein cages has allowed us to manipulate hierarchical assembly using t
Protein cage nanoparticles have a unique spherical hollow structure that provides a modifiable interior space and an exterior surface. For full application, it is desirable to utilize both the interior space and the exterior surface simultaneously with two different functionalities in a well-combined way. Here, we genetically engineered encapsulin protein cage nanoparticles (Encap) as modular nanoplatforms by introducing a split-C-intein (Int<sup>C</sup>) fragment and SpyTag into the interior an
Loop regions on the external surface of the 420 coat protein molecules making up the icosahedral phage P22 procapsid (see figure) can be genetically modified to enable specific chemical modification. This makes it possible to symmetrically display organic and inorganic molecules on the surface of these ∼55 nm nanoparticles. Supporting information for this article is available on the WWW under http://www.wiley-vch.de/contents/jc_2268/2008/z700555_s.pdf or from the author. Please note: The publish
Matter of size: Platinum nanocluster formation inside protein cages (LiDps protein) was monitored by noncovalent mass spectrometry. The Pt clusters catalyze hydrogen formation in presence of an iridium photosensitizer (PS; see scheme, TEOA=triethanolamine), and their catalytic activity depends on the cluster size.
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