박기영 교수
Kiyoung Park
KAIST 화학과 · 공학
연구실 소개
박기영 교수의 연구실은 생체막대기반 금속 효소의 기질 특이성과 반응 메커니즘을 전기화학적·분광학적·계산화학적 접근을 융합하여 규명하고 있습니다. 특히 산소 활성화, 수소 원자 탈리화, C-H 결합 활성화 등 복잡한 산화환원 반응을 촉매하는 비헤모 페로산화제의 기능과 구조를 중심으로 연구를 전개하고 있으며, 알츠하이머병 관련 단백질 분해를 위한 금속 기반 촉매 개발과도 연계된 응용 연구를 함께 진행하고 있습니다. 이는 생물학적 반응의 정밀한 이해와 신약 개발, 에너지 변환 촉매 설계에 이르는 다각적 응용을 목표로 합니다.
연구 현황
연구 성과 추이
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주요 논문
15Binuclear non-heme iron enzymes activate O 2 for diverse chemistries that include oxygenation of organic substrates and hydrogen atom abstraction. This process often involves the formation of peroxo-bridged biferric intermediates, only some of which can perform electrophilic reactions. To elucidate the geometric and electronic structural requirements to activate peroxo reactivity, the active peroxo intermediate in 4-aminobenzoate N -oxygenase (AurF) has been characterized spectroscopically and c
An amyloidogenic peptide, amyloid-β (Aβ), has been implicated as a contributor to the neurotoxicity of Alzheimer’s disease (AD) that continues to present a major socioeconomic burden for our society. Recently, the use of metal complexes capable of cleaving peptides has arisen as an efficient tactic for amyloid management; unfortunately, little has been reported to pursue this strategy. Herein, we report a novel approach to validate the hydrolytic cleavage of divalent metal complexes toward two m
Molybdenum sulfides have attracted widespread attention as promising nonprecious-metal catalysts for the hydrogen evolution reaction (HER). Since the MoS2 edge was proposed as a major active site, molecular and polymeric analogues to the MoS2 edge have been widely explored as the HER catalysts. In particular, amorphous MoSx coordination polymers have been considered as active HER catalysts because they are rich in unsaturated Mo–S coordination, which is the characteristic of the active MoS2 edge
Methanotrophic bacteria utilize the nonheme diiron enzyme soluble methane monooxygenase (sMMO) to convert methane to methanol in the first step of their metabolic cycle under copper-limiting conditions. The structure of the sMMO Fe(IV)<sub>2</sub> intermediate Q responsible for activating the inert C-H bond of methane (BDE = 104 kcal/mol) remains controversial, with recent studies suggesting both "open" and "closed" core geometries for its active site. In this study, we employ nuclear resonance
Strongly emissive cuprous complexes containing a stable σ-SiH-Cu motif were prepared. These complexes serve as a proof of principle that σ-complexation can be utilized as a design principle for engineering responsive light emitting materials. Their excited state lifetimes were found to be long (∼20 μs) with high quantum yields (φ = 0.40-0.59).
The PduO-type ATP:corrinoid adenosyltransferase from Lactobacillus reuteri ( LrPduO) catalyzes the formation of the essential Co-C bond of adenosylcobalamin (coenzyme B 12) by transferring the adenosyl group from cosubstrate ATP to a transient Co (1+)corrinoid species generated in the enzyme active site. While PduO-type enzymes have previously been believed to be capable of adenosylating only Co (1+)cobalamin (Co (1+)Cbl (-)), our kinetic data obtained in this study provide in vitro evidence tha
While the geometric and electronic structures of vitamin B12 (cyanocobalamin, CNCbl) and its reduced derivatives Co(2+)cobalamin (Co(2+)Cbl) and Co(1+)cobalamin (Co(1+)Cbl(-)) are now reasonably well established, their vibrational properties, in particular their resonance Raman (rR) spectra, have remained quite poorly understood. The goal of this study was to establish definitive assignments of the corrin-based vibrational modes that dominate the rR spectra of vitamin B12 in its Co(3+), Co(2+),
The reaction of Li[(TAML)Co III ]·3H 2 O (TAML = tetraamido macrocyclic tetraanionic ligand) with iodosylbenzene at 253 K in acetone in the presence of redox-innocent metal ions (Sc(OTf) 3 and Y(OTf) 3 ) or triflic acid affords a blue species 1, which is converted reversibly to a green species 2 upon cooling to 193 K. The electronic structures of 1 and 2 have been determined by combining advanced spectroscopic techniques (X-band electron paramagnetic resonance (EPR), electron nuclear double reso
times enhancement for the C-S bond-forming reductive elimination reaction upon Ni-centered ligand-field transitions. The effects of excitation energy and ancillary ligands on photoactivity have been investigated with 17 different nickelacycle species in combination with four corresponding acyclic complexes. Spectroscopic and computational electronic structural characterizations reveal that, regardless of coordinated species, d-d transitions can induce Ni-C bond homolysis, and that the reactivity
High-valent Ni complexes have proven to be good platforms for diverse cross-coupling reactions that are otherwise difficult to be achieved with conventional low-valent catalysts. However, their reductive elimination (RE) activities are still significantly variable by up to 5 orders of magnitude, depending on the supporting ligand and oxidation state of the Ni center. To elucidate frontier molecular orbitals (FMOs) that determine the RE activity of the Ni center, the electronic structures of cycl
High-valent intermediates of binuclear nonheme iron enzymes are structurally unknown despite their importance for understanding enzyme reactivity. Nuclear resonance vibrational spectroscopy combined with density functional theory calculations has been applied to structurally well-characterized high-valent mono- and di-oxo bridged binuclear Fe model complexes. Low-frequency vibrational modes of these high-valent diiron complexes involving Fe motion have been observed and assigned. These are indep
An unexpected anion effect leads to the direct and selective preparation of the <italic>trans</italic>-III-[Cu(TMC)]<sup>2+</sup> complex that is fully characterized by X-ray crystallography, UV-visible spectroscopy, advanced EPR spectroscopy, and computational studies.
Regeneration of nicotinamide adenine dinucleotide (NADH) has been the primary interest in the field of enzymatic transformation, especially associating oxidoreductases given the stoichiometric consumption. The synthesized carbene-ligated rhodium complex [(η<sup>5</sup>-Cp*)Rh(MDI)Cl]<sup>+</sup> [Cp* = pentamethylcyclopentadienyl; MDI = 1,1'-methylenebis(3,3'-dimethylimidazolium)] acts as an exceptional catalyst in the reduction of NAD<sup>+</sup> to NADH with a turnover frequency of 1730 h<sup>
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