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Chae Un Kim

Ulsan National Institute of Science and Technology · Materials Science

About the Lab

Professor Chae Un Kim's research lab specializes in high-resolution structural biology, particularly using advanced X-ray crystallography techniques to investigate enzyme mechanisms at the atomic level. The lab focuses on metalloenzymes such as human carbonic anhydrase II, exploring how metal ion identity and coordination geometry influence catalytic activity and substrate binding. A key innovation in the lab is the development of high-pressure cryocooling methods that enable radiation-damage-free imaging of transient enzyme intermediates without traditional cryoprotectants. The lab also investigates the behavior of water under extreme conditions in protein crystals, revealing insights into amorphous ice phases and their implications for structural biology and biophysics.

high-resolution crystallographymetalloenzymescryocoolingtransient enzyme intermediatesamorphous ice

Research Overview

Papers
68
Total Citations
1,748
Papers (5y)
22
Primary Field
Materials Science

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
22total
2022
2023
2024
2025
2026
Citations per year (5y)
118total
20222023202420252026

Selected Papers

15
1
Article|227 citations·2008
Entrapment of Carbon Dioxide in the Active Site of Carbonic Anhydrase II
John F. Domsic, Balendu Sankara Avvaru, Chae Un Kim, Sol M. Grüner, Mavis Agbandje‐McKenna, David N. Silverman, Robert McKenna
SJR Q1Journal of Biological ChemistryOA

The visualization at near atomic resolution of transient substrates in the active site of enzymes is fundamental to fully understanding their mechanism of action. Here we show the application of using CO2-pressurized, cryo-cooled crystals to capture the first step of CO2 hydration catalyzed by the zinc-metalloenzyme human carbonic anhydrase II, the binding of substrate CO2, for both the holo and the apo (without zinc) enzyme to 1.1Å resolution. Until now, the feasibility of such a study was tho

Molecular BiologyBiochemistry, Genetics and Molecular Biology
2
Article|174 citations·2020
Elucidating the role of metal ions in carbonic anhydrase catalysis
Jin Kyun Kim, Cheol Lee, Seon Woo Lim, Aniruddha Adhikari, Jacob T. Andring, Robert McKenna, Cheol-Min Ghim, Chae Un Kim
SJR Q1Nature CommunicationsOA

Abstract Why metalloenzymes often show dramatic changes in their catalytic activity when subjected to chemically similar but non-native metal substitutions is a long-standing puzzle. Here, we report on the catalytic roles of metal ions in a model metalloenzyme system, human carbonic anhydrase II (CA II). Through a comparative study on the intermediate states of the zinc-bound native CA II and non-native metal-substituted CA IIs, we demonstrate that the characteristic metal ion coordination geome

Molecular BiologyBiochemistry, Genetics and Molecular Biology
3
Article|109 citations·2005
High-pressure cooling of protein crystals without cryoprotectants
Chae Un Kim, Raphael Kapfer, Sol M. Grüner
Acta Crystallographica Section D Biological Crystallography

Flash-cooling of protein crystals is the best known method to effectively mitigate radiation damage in macromolecular crystallography. To prevent physical damage to crystals upon cooling, suitable cryoprotectants must usually be found, a process that is time-consuming and in some cases unsuccessful. A method is described to cool protein crystals in high-pressure helium gas without the need for penetrative cryoprotectants. The method involves mounting protein crystals from the native mother liquo

Materials ChemistryMaterials Science
4
Article|82 citations·2009
Evidence for liquid water during the high-density to low-density amorphous ice transition
Chae Un Kim, Buz Barstow, Mark W. Täte, Sol M. Grüner
SJR Q1Proceedings of the National Academy of SciencesOA

Polymorphism of water has been extensively studied, but controversy still exists over the phase transition between high-density amorphous (HDA) and low-density amorphous (LDA) ice. We report the phase behavior of HDA ice inside high-pressure cryocooled protein crystals. Using X-ray diffraction, we demonstrate that the intermediate states in the temperature range from 80 to 170 K can be reconstructed as a linear combination of HDA and LDA ice, suggesting a first-order transition. We found evidenc

Materials ChemistryMaterials Science
5
Article|40 citations·2022
Intra-instrument channel workable, optical-resolution photoacoustic and ultrasonic mini-probe system for gastrointestinal endoscopy
Min-Jae Kim, Kang Won Lee, KiSik Kim, Oleksandra Gulenko, Cheol Lee, Bora Keum, Hoon Jai Chun, Hyuk Soon Choi, Chae Un Kim, Joon-Mo Yang
SJR Q1PhotoacousticsOA

There has been a long-standing expectation that the optical-resolution embodiment of photoacoustic tomography could have a substantial impact on gastrointestinal endoscopy by enabling microscopic visualization of the vasculature based on the endogenous contrast mechanism. Although multiple studies have demonstrated the in vivo imaging capability of a developed imaging device over the last decade, the implementation of such an endoscopic system that can be applied immediately when necessary via t

Biomedical EngineeringEngineering
6
Article|39 citations·2016
Tracking solvent and protein movement during CO 2 release in carbonic anhydrase II crystals
Chae Un Kim, Hyojin Song, Balendu Sankara Avvaru, Sol M. Grüner, SangYoun Park, Robert McKenna
SJR Q1Proceedings of the National Academy of Sciences

Carbonic anhydrases are mostly zinc metalloenzymes that catalyze the reversible hydration/dehydration of CO2/HCO3 (-) Previously, the X-ray crystal structures of CO2-bound holo (zinc-bound) and apo (zinc-free) human carbonic anhydrase IIs (hCA IIs) were captured at high resolution. Here, we present sequential timeframe structures of holo- [T = 0 s (CO2-bound), 50 s, 3 min, 10 min, 25 min, and 1 h] and apo-hCA IIs [T = 0 s, 50 s, 3 min, and 10 min] during the "slow" release of CO2 Two active site

Molecular BiologyBiochemistry, Genetics and Molecular Biology
7
Article|35 citations·2011
Protein dynamical transition at 110 K
Chae Un Kim, Mark W. Täte, Sol M. Grüner
SJR Q1Proceedings of the National Academy of SciencesOA

Proteins are known to undergo a dynamical transition at around 200 K but the underlying mechanism, physical origin, and relationship to water are controversial. Here we report an observation of a protein dynamical transition as low as 110 K. This unexpected protein dynamical transition precisely correlated with the cryogenic phase transition of water from a high-density amorphous to a low-density amorphous state. The results suggest that the cryogenic protein dynamical transition might be direct

Materials ChemistryMaterials Science
8
Article|35 citations·2012
A high-pressure cryocooling method for protein crystals and biological samples with reduced background X-ray scatter
Chae Un Kim, Jennifer L. Wierman, Richard Gillilan, Enju Lima, Sol M. Grüner
SJR Q1Journal of Applied CrystallographyOA

High-pressure cryocooling has been developed as an alternative method for cryopreservation of macromolecular crystals and successfully applied for various technical and scientific studies. The method requires the preservation of crystal hydration as the crystal is pressurized with dry helium gas. Previously, crystal hydration was maintained either by coating crystals with a mineral oil or by enclosing crystals in a capillary which was filled with crystallization mother liquor. These methods are

Materials ChemistryMaterials Science
9
Article|33 citations·2008
Pressure-induced high-density amorphous ice in protein crystals
Chae Un Kim, Yi‐Fan Chen, Mark W. Täte, Sol M. Grüner
SJR Q1Journal of Applied Crystallography

Crystal cryocooling has been used in X-ray protein crystallography to mitigate radiation damage during diffraction data collection. However, cryocooling typically increases crystal mosaicity and often requires a time-consuming search for cryoprotectants. A recently developed high-pressure cryocooling method reduces crystal damage relative to traditional cryocooling procedures and eases or eliminates the need to screen for cryoprotectants. It has been proposed that the formation of high-density a

Materials ChemistryMaterials Science
10
Article|29 citations·2006
Solution of protein crystallographic structures by high-pressure cryocooling and noble-gas phasing
Chae Un Kim, Quan Hao, Sol M. Grüner
Acta Crystallographica Section D Biological Crystallography

Room-pressure flash-cryocooling of protein crystals is the standard way to reduce radiation damage during data collection. Typically, it is necessary to find cryoprotection conditions by trial and error, a process that is not always successful. Recently, a new method, high-pressure cryocooling, was developed that does not require penetrative cryoprotectants and typically yields very high quality diffraction. Since this method involves helium gas as a pressurizing medium, it was of great interest

Materials ChemistryMaterials Science
11
Article|23 citations·2007
High-pressure cryocooling for capillary sample cryoprotection and diffraction phasing at long wavelengths
Chae Un Kim, Quan Hao, Sol M. Grüner
Acta Crystallographica Section D Biological Crystallography

Crystal cryocooling is usually employed to reduce radiation damage during X-ray crystallography. Recently, a high-pressure cryocooling method has been developed which results in excellent diffraction-quality crystals without the use of penetrative cryoprotectants. Three new developments of the method are presented here: (i) Xe-He high-pressure cryocooling for Xe SAD phasing, (ii) native sulfur SAD phasing and (iii) successful cryopreservation of crystals in thick-walled capillaries without addit

Materials ChemistryMaterials Science
12
Article|12 citations·2021
Getting to a feasible income equality
Jiwon Park, Chae Un Kim
SJR Q1PLoS ONEOA

Income inequality is known to have negative impacts on an economic system, thus has been debated for a hundred years past or more. Numerous ideas have been proposed to quantify income inequality, and the Gini coefficient is a prevalent index. However, the concept of perfect equality in the Gini coefficient is rather idealistic and cannot provide realistic guidance on whether government interventions are needed to adjust income inequality. In this paper, we first propose the concept of a more rea

Sociology and Political ScienceSocial Sciences
13
Article|11 citations·2015
Glass-to-cryogenic-liquid transitions in aqueous solutions suggested by crack healing
Chae Un Kim, Mark W. Täte, Sol M. Grüner
SJR Q1Proceedings of the National Academy of SciencesOA

Observation of theorized glass-to-liquid transitions between low-density amorphous (LDA) and high-density amorphous (HDA) water states had been stymied by rapid crystallization below the homogeneous water nucleation temperature (∼235 K at 0.1 MPa). We report optical and X-ray observations suggestive of glass-to-liquid transitions in these states. Crack healing, indicative of liquid, occurs when LDA ice transforms to cubic ice at 160 K, and when HDA ice transforms to the LDA state at temperatures

Materials ChemistryMaterials Science
14
Article|11 citations·2022
Creating Tunable Mesoporosity by Temperature‐Driven Localized Crystallite Agglomeration
Seok Jeong, Youjung Sim, Jin Kyun Kim, Sunyoung Shin, Jaewoong Lim, Junmo Seong, Seonghwan Lee, Dohyun Moon, Seung Bin Baek, Chae Un Kim, Ja‐Hyoung Ryu, Myoung Soo Lah
SJR Q1Small

A new synthetic approach for tunable mesoporous metal-organic frameworks (MeMs) is developed. In this approach, mesopores are created in the process of heat conversion of highly mosaic metal-organic framework (MOF) crystals with non-interpenetrated low-density nanocrystallites into MOF crystals with two-fold interpenetrated high-density nanocrystallites. The two-fold interpenetration reduces the volume of the nanocrystallites in the mosaic crystal, and the accompanying localized agglomeration of

Inorganic ChemistryChemistry
15
Article|8 citations·2025
Fast product release requires active-site water dynamics in carbonic anhydrase
Jin Kyun Kim, Seon Woo Lim, Hannah Jeong, Cheol Lee, Seoyoon Kim, Dong Woo Son, Rajeev Kumar, Jacob T. Andring, Carrie L. Lomelino, Jennifer L. Wierman, Aina E. Cohen, Tae Joo Shin
SJR Q1Nature CommunicationsOA

Water plays an essential role in enzyme structure, stability, and the substantial rate enhancement of enzyme catalysis. However, direct observations linking enzyme catalysis and active-site water dynamics pose a significant challenge due to experimental difficulties. By integrating an ultraviolet (UV) photolysis technique with temperature-controlled X-ray crystallography, we track the catalytic pathway of carbonic anhydrase II (CAII) at 1.2 Å resolution. This approach enables us to construct mol

Molecular BiologyBiochemistry, Genetics and Molecular Biology

Research Areas

Materials ChemistryMolecular BiologyBiomedical EngineeringEconomics and EconometricsSociology and Political ScienceInorganic Chemistry

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