Hyun‐Woo Rhee
Seoul National University 화학과 · 生化学・遺伝学・分子生物学
Hyun-Woo Rhee 교수의 연구실은 생체 내 단백질의 미세한 sub-compartmental 위치를 고해상도로 규명하는 데 초점을 맞춘 생물화학적 도구 개발을 주요 연구 방향으로 삼고 있습니다. 특히, APEX 기반 proximity labeling 기술과 선택적 화학센서를 활용해 미토콘드리아 내부와 세포막 접합 부위 등의 국소 단백질 지도를 실시간으로 구축하고 있으며, 플라빈 및 (p)ppGpp와 같은 중요한 대사 분자의 생체 내 동적 모니터링도 수행하고 있습니다. 이는 세포 내 대사 경로와 기능적 상호작용을 이해하는 데 핵심적인 기초를 제공합니다.
Figures are computed from collected data and may differ slightly.
Deciphering the sub-compartmental location of a given protein of interest may help explain its physiological function, but it can be challenging to do using optical or biochemical methods. Imaging with electron microscopy (EM) can provide highly resolved mapping of proteins; however, EM requires complex sample preparation and a specialized facility. Here, we use engineered ascorbate peroxidase (APEX)-generated molecular labeling patterns to provide information regarding intracellular microenviro
We have developed the first selective fluorescent chemosensor (PyDPA) for (p)ppGpp, a bacterial and plant alarmone. By using pyrene-excimer fluorescence, PyDPA shows very good selectivity for (p)ppGpp from among other nucleotides in water. PyDPA was used for the real-time detection of in vitro ppGpp synthesis by bacterial ribosomal complexes.
Flavins, comprising flavin mononucleotide (FMN), flavin adenine dinucleotide (FAD), and riboflavin (RF, vitamin B(2)), play important roles in numerous redox reactions such as those taking place in the electron-transfer chains of mitochondria in all eukaryotes and of plastids in plants. A selective chemosensor for flavins would be useful not only in the investigation of metabolic processes but also in the diagnosis of diseases related to flavins; such a sensor is presently unavailable. Herein, w
Microscopy and mass spectrometry (MS) are complementary techniques: The former provides spatiotemporal information in living cells, but only for a handful of recombinant proteins at a time, whereas the latter can detect thousands of endogenous proteins simultaneously, but only in lysed samples. Here, we introduce technology that combines these strengths by offering spatially and temporally resolved proteomic maps of endogenous proteins within living cells. Our method relies on a genetically targ
Proximity labeling can be defined as an enzymatic "in-cell" chemical reaction that catalyzes the proximity-dependent modification of biomolecules in live cells. Since the modified proteins can be isolated and identified via mass spectrometry, this method has been successfully utilized for the characterization of local proteomes such as the sub-mitochondrial proteome and the proteome at membrane contact sites, or spatiotemporal interactome information in live cells, which are not "accessible" via
A novel fluorescent sensor based on the Zn2+-DPA complex shows selective detection of flavin adenine dinucleotide (FAD) from among other flavins in water, and it was used to detect FAD in eosinophils by fluorescence microscopy and FACS.
Turn off the light! A kinase assay system employs fluorescent peptides and a phosphate-selective fluorescence quencher probe, and can be placed on a microfluidic chip (see picture). The system can be used for real-time kinase monitoring, kinase inhibitor screening, and cancer diagnosis based on abnormal kinase activity observed in patients' samples. Detailed facts of importance to specialist readers are published as ”Supporting Information”. Such documents are peer-reviewed, but not copy-edited
We introduce UnaG as a green-to-dark photoswitching fluorescent protein capable of high-quality super-resolution imaging with photon numbers equivalent to the brightest photoswitchable red protein. UnaG only fluoresces upon binding of a fluorogenic metabolite, bilirubin, enabling UV-free reversible photoswitching with easily controllable kinetics and low background under Epi illumination. The on- and off-switching rates are controlled by the concentration of the ligand and the excitation light i
Alkyl halides are potentially mutagenic carcinogens. However, no efficient fluorescent sensor for alkyl halide detection in human-derived samples has been developed to date. Herein, we report a new protein-based fluorescent sensor for alkyl halides. Analysis of the HaloTag holo-crystal structure with its covalently attached ligand revealed an unexpected cavity, allowing for the design of a new fluorogenic ligand. This ligand showed the highest fluorescence response (300-fold) and fastest binding
EXD2 (3'-5' exonuclease domain-containing protein 2) is an essential protein with a conserved DEDDy superfamily 3'-5' exonuclease domain. Recent research suggests that EXD2 has two potential functions: as a component of the DNA double-strand break repair machinery and as a ribonuclease for the regulation of mitochondrial translation. Herein, electron microscope imaging analysis and proximity labeling revealed that EXD2 is anchored to the mitochondrial outer membrane through a conserved N-termina
A focused fluorescent probe library for metal cations was developed by combining metal chelators and picolinium/quinolinium moieties as combinatorial blocks connected through a styryl group. Furthermore, metal complexes derived from metal chelators having high binding affinities for metal cations were used to construct a focused probe library for phosphorylated biomolecules. More than 250 fluorescent probes were screened for identifying an ultraselective probe for dTTP.
Reactive oxygen species (ROS) are endogenously generated in live cells and essential for cell signaling. However, excess ROS generation can cause oxidative damage to biomolecules, which are implicated in various human diseases, including aging. Here, we developed an in vivo hydrogen peroxide monitoring method using a genetically encodable peroxidase (APEX2)-based system. We confirmed that APEX2 is activated by endogenous H<sub>2</sub>O<sub>2</sub> and generates phenoxyl radicals to produce bioti
Licht aus! Ein Mikrofluidiksystem für den Kinase-Nachweis verwendet fluoreszierende Peptide und eine phosphatselektive fluoreszenzlöschende Sonde (siehe Bild). Das System kann für die Echtzeitüberwachung von Kinasen, das Screening von Kinaseinhibitoren und, durch Detektion abnormer Kinaseaktivität in Patientenproben, für die Krebsdiagnose eingesetzt werden.
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