Mi Young Kim
Korea Advanced Institute of Science and Technology · Biochemistry, Genetics and Molecular Biology
About the Lab
Professor Mi Young Kim's research lab focuses on the molecular and epigenetic mechanisms underlying cancer progression, particularly in breast cancer and colorectal cancer. The lab investigates key regulators of metastasis, including epigenetic modifiers like histone demethylases and glycosyltransferases, as well as microbial metabolites that influence tumor growth. A central theme is understanding how tumor cells adapt to specific organ microenvironments—such as the lung or brain—through metabolic reprogramming, epigenetic remodeling, and evasion of microenvironmental suppression. The lab also explores synthetic lethal interactions and host-microbe crosstalk as potential therapeutic vulnerabilities in aggressive cancers.
Research Overview
Research Output Trend
Figures are computed from collected data and may differ slightly.
Selected Papers
15The human microbiome plays an essential role in the human immune system, food digestion, and protection from harmful bacteria by colonizing the human intestine. Recently, although the human microbiome affects colorectal cancer (CRC) treatment, the mode of action between the microbiome and CRC remains unclear. This study showed that propionate suppressed CRC growth by promoting the proteasomal degradation of euchromatic histone-lysine N-methyltransferase 2 (EHMT2) through HECT domain E3 ubiquitin
Some polypeptide N-acetyl-galactosaminyltransferases (GALNTs) are associated with cancer, but their function in organ-specific metastasis remains unclear. Here, we report that GALNT14 promotes breast cancer metastasis to the lung by enhancing the initiation of metastatic colonies as well as their subsequent growth into overt metastases. Our results suggest that GALNT14 augments the self-renewal properties of breast cancer cells (BCCs). Furthermore, GALNT14 overcomes the inhibitory effect of lung
Histone methylation is a key epigenetic mark that regulates gene expression. Recently, aberrant histone methylation patterns caused by deregulated histone demethylases have been associated with carcinogenesis. However, the role of histone demethylases, particularly the histone H3 lysine 27 (H3K27) demethylase JMJD3, remains largely uncharacterized in melanoma. Here, we used human melanoma cell lines and a mouse xenograft model to demonstrate a requirement for JMJD3 in melanoma growth and metasta
Brain metastasis in breast cancer is particularly deadly, but effective treatments remain out of reach due to insufficient information about the mechanisms underlying brain metastasis and the potential vulnerabilities of brain-metastatic breast cancer cells. Here, human breast cancer cells and their brain-metastatic derivatives (BrMs) were used to investigate synthetic lethal interactions in BrMs. First, it was demonstrated that c-MYC activity is increased in BrMs and is required for their brain
Surface energy and hydrophilicity of implant surfaces have been known to play an important role in subsequent cellular responses on the implant surface. The aim of the present study was to evaluate the effects of biomimetic deposition of anodized surfaces on surface wettability, surface energy, and osteoblast responses. Ti discs with 2 different surface topographies (machined and anodized) were immersed in Hanks' balanced salt solution (HBSS) and modified simulated body fluid (SBF) solution for
The intracellular delivery of proteins with high efficiency in a receptor-specific manner is of great significance in molecular medicine and biotechnology, but remains a challenge. Herein, we present the development of a highly efficient and receptor-specific delivery platform for protein cargos by combining the receptor binding domain of Escherichia coli Shiga-like toxin and the translocation domain of Pseudomonas aeruginosa exotoxin A. We demonstrated the utility and efficiency of the delivery
Poly (ADP-ribose) polymerase 1 (PARP1) and polycomb-repressive complex 2 (PRC2) are each known for their individual roles in cancer, but their cooperative roles have only been studied in the DNA damage repair process in the context of BRCA-mutant cancers. Here, we show that simultaneous inhibition of PARP1 and PRC2 in the MDA-MB-231 BRCA-proficient triple-negative breast cancer (TNBC) cell line leads to a synthetic viability independent of the mechanisms of DNA damage repair. Specifically, we fi
A compact and low-power digital-domain noise coupling technique is proposed for higher-order CT DSM implementation, exploiting the architectural advantage of a SAR ADC and a simple digital filter. With an 8b SAR ADC and a second-order digital noise coupling filter, a prototype fourth-order DSM achieves 74.4dB SNDR for 10MHz BW with an OSR of 16 in a 28nm CMOS, showing an FoM <inf xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">s_dr</inf> of 174.5dB.
A single-channel 10b pipelined SAR ADC with a gm-cell residue amplifier and a current-mode fine SAR ADC achieves a 500MS/s conversion rate in a 28nm CMOS process under a 1.0 V supply. With background offset and gain calibration, the prototype ADC achieves an SNDR of 56.6dB at Nyquist. With power consumption of 6mW, it obtains a FoM of 21.7fJ/conversion-step.
Research Areas
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