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Yeon-hee Choi

Seoul National University · Agricultural and Biological Sciences

About the Lab

Professor Yeon-hee Choi's research lab focuses on epigenetic regulation in plant development, particularly the molecular mechanisms underlying DNA methylation, demethylation, and chromatin remodeling during gametogenesis and embryogenesis in *Arabidopsis thaliana*. The lab investigates key epigenetic regulators such as DEMETER (DME), MET1, and ASF1, exploring their roles in genomic imprinting, transposon silencing, and developmental plasticity. A central theme is how epigenetic reprogramming in the gametes and early embryo ensures proper gene expression and viability, with broader implications for plant reproduction and regeneration. The lab integrates molecular genetics, genomics, and live imaging to dissect epigenetic dynamics across the plant life cycle.

epigeneticsDNA demethylationgenomic imprintingplant developmentgametogenesis

Research Overview

Papers
75
Total Citations
4,572
Papers (5y)
16
Primary Field
Agricultural and Biological Sciences

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
16total
2022
2023
2024
2025
2026
Citations per year (5y)
84total
20222023202420252026

Selected Papers

15
1
Article|794 citations·2002
DEMETER, a DNA Glycosylase Domain Protein, Is Required for Endosperm Gene Imprinting and Seed Viability in Arabidopsis
Yeonhee Choi, Mary Gehring, Lianna M. Johnson, Mike Hannon, John J. Harada, Robert B. Goldberg, Steven E. Jacobsen, Robert L. Fischer
SJR Q1CellOA
Plant ScienceAgricultural and Biological Sciences
2
Article|153 citations·2008
Resetting and regulation of FLOWERING LOCUS C expression during Arabidopsis reproductive development
Jean Choi, Y. Hyun, Min Jeong Kang, Hye In Yun, Jae‐Young Yun, Clare Lister, Caroline Dean, Richard M. Amasino, Bosl Noh, Yoo‐Sun Noh, Yeonhee Choi
SJR Q1The Plant JournalOA

The epigenetic regulation of the floral repressor Flowering Locus C (FLC) is one of the critical factors that determine flowering time in Arabidopsis thaliana. Although many FLC regulators, and their effects on FLC chromatin, have been extensively studied, the epigenetic resetting of FLC has not yet been thoroughly characterized. Here, we investigate the FLC expression during gametogenesis and embryogenesis using FLC::GUS transgenic plants and RNA analysis. Regardless of the epigenetic state in

Plant ScienceAgricultural and Biological Sciences
3
Article|66 citations·2004
An invariant aspartic acid in the DNA glycosylase domain of DEMETER is necessary for transcriptional activation of the imprinted MEDEA gene
Yeonhee Choi, John J. Harada, Robert B. Goldberg, Robert L. Fischer
SJR Q1Proceedings of the National Academy of SciencesOA

Helix-hairpin-helix DNA glycosylases are typically small proteins that initiate repair of DNA by excising damaged or mispaired bases. An invariant aspartic acid in the active site is involved in catalyzing the excision reaction. Replacement of this critical residue with an asparagine severely reduces catalytic activity but preserves enzyme stability and structure. The Arabidopsis DEMETER (DME) gene encodes a large 1,729-aa polypeptide with a 200-aa DNA glycosylase domain. DME is expressed primar

Molecular BiologyBiochemistry, Genetics and Molecular Biology
4
Article|45 citations·2008
Temporal and Spatial Downregulation of Arabidopsis MET1 Activity Results in Global DNA Hypomethylation and Developmental Defects
Minhee Kim, Hyonhwa Ohr, Jee Woong Lee, Y. Hyun, Robert L. Fischer, Yeonhee Choi
SJR Q1Molecules and CellsOA

DNA methylation is an epigenetic mechanism for gene silencing. In Arabidopsis, MET1 is the primary DNA methyltransferase that maintains CG DNA methylation. Plants having an overall reduction of MET1 activity, caused by a met1 mutation or a constitutively expressed MET1 antisense gene, display genome hypomethylation, inappropriate gene and transposon transcription, and developmental abnormalities. However, the effect of atransient reduction in MET1 activity caused by inhibiting MET1 expression in

Plant ScienceAgricultural and Biological Sciences
5
Article|41 citations·2021
The DME demethylase regulates sporophyte gene expression, cell proliferation, differentiation, and meristem resurrection
Seohyun Kim, Jin-Sup Park, Jaehoon Lee, Kiseok Keith Lee, Ok‐Sun Park, Hee-Seung Choi, Pil Joon Seo, Hyung‐Taeg Cho, Jennifer M. Frost, Robert L. Fischer, Yeonhee Choi
SJR Q1Proceedings of the National Academy of SciencesOA

The flowering plant life cycle consists of alternating haploid (gametophyte) and diploid (sporophyte) generations, where the sporophytic generation begins with fertilization of haploid gametes. In Arabidopsis , genome-wide DNA demethylation is required for normal development, catalyzed by the DEMETER (DME) DNA demethylase in the gamete companion cells of male and female gametophytes. In the sporophyte, postembryonic growth and development are largely dependent on the activity of numerous stem ce

Plant ScienceAgricultural and Biological Sciences
6
Article|33 citations·2011
Identification of regulators required for the reactivation of FLOWERING LOCUS C during Arabidopsis reproduction
Hyein Yun, Y. Hyun, Min‐Jeong Kang, Yoo‐Sun Noh, Bosl Noh, Yeonhee Choi
SJR Q1Planta
Plant ScienceAgricultural and Biological Sciences
7
Article|20 citations·2024
Insights into plant regeneration: cellular pathways and DNA methylation dynamics
Seunga Lee, Y. S. Park, Ji Hoon Rhee, Hyojeong Chu, Jennifer M. Frost, Yeonhee Choi
SJR Q1Plant Cell ReportsOA

Plants, known for their immobility, employ various mechanisms against stress and damage. A prominent feature is the formation of callus tissue-a cellular growth phenomenon that remains insufficiently explored, despite its distinctive cellular plasticity compared to vertebrates. Callus formation involves dedifferentiated cells, with a subset attaining pluripotency. Calluses exhibit an extraordinary capacity to reinitiate cellular division and undergo structural transformations, generating de novo

Plant ScienceAgricultural and Biological Sciences
8
Article|18 citations·2019
Nuclear Chaperone ASF1 is Required for Gametogenesis in Arabidopsis thaliana
Yunsook Min, Jennifer M. Frost, Yeonhee Choi
SJR Q1Scientific ReportsOA

Sexual reproduction in flowering plants is distinct from that in animals since gametogenesis requires production of haploid spores, which divide and differentiate into specialised gametophyte structures. Anti-Silencing Function 1 (ASF1) is a histone H3/H4 chaperone involved in chromatin remodeling during cell division, which we have found plays a critical role in gametophyte development in Arabidopsis thaliana. Using mutant alleles for the two ASF1 homologs, asf1a and asf1b, we show that ASF1 is

Molecular BiologyBiochemistry, Genetics and Molecular Biology
9
Article|17 citations·2023
Distinct regulatory pathways contribute to dynamic CHH methylation patterns in transposable elements throughout Arabidopsis embryogenesis
Jaehoon Lee, Seunga Lee, Kyunghyuk Park, Sangyoon Shin, Jennifer M. Frost, Ping-Hung Hsieh, Chanseok Shin, Robert L. Fischer, Tzung‐Fu Hsieh, Yeonhee Choi
SJR Q1Frontiers in Plant ScienceOA

CHH methylation (mCHH) increases gradually during embryogenesis across dicotyledonous plants, indicating conserved mechanisms of targeting and conferral. Although it is suggested that methylation increase during embryogenesis enhances transposable element silencing, the detailed epigenetic pathways underlying this process remain unclear. In <i>Arabidopsis</i>, mCHH is regulated by both small RNA-dependent DNA methylation (RdDM) and RNA-independent Chromomethylase 2 (CMT2) pathways. Here, we cond

Plant ScienceAgricultural and Biological Sciences
10
Article|15 citations·2008
Antimicrobial activity of γ-thionin-like soybean SE60 in E. coli and tobacco plants
Yeonhee Choi, Yang Do Choi, Jong Seob Lee
SJR Q2Biochemical and Biophysical Research Communications
Molecular BiologyBiochemistry, Genetics and Molecular Biology
11
Article|11 citations·2007
Identification of putative Arabidopsis DEMETER target genes by GeneChip analysis
Hyonhwa Ohr, Anhthu Q. Bui, Brandon H. Le, Robert L. Fischer, Yeonhee Choi
SJR Q2Biochemical and Biophysical Research CommunicationsOA
Plant ScienceAgricultural and Biological Sciences
12
Article|10 citations·1995
Tissue-specific and developmental regulation of a gene encoding a low molecular weight sulfur-rich protein in soybean seeds
Yeonhee Choi, Ji Hoon Ahn, Yang Do Choi, Jong Seob Lee
Molecular and General Genetics MGG
Plant ScienceAgricultural and Biological Sciences
13
Review|9 citations·2024
Dynamics of DNA methylation and its impact on plant embryogenesis
Jennifer M. Frost, Ji Hoon Rhee, Yeonhee Choi
SJR Q1Current Opinion in Plant BiologyOA

Flowering plants exhibit unique DNA methylation dynamics during development. Particular attention can be focused on seed development and the embryo, which represents the starting point of the sporophytic life cycle. A build-up of CHH methylation is now recognized as highly characteristic of embryo development. This process is thought to occur in order to silence potentially harmful transposable element expression, though roles in promoting seed dormancy and dessication tolerance have also been r

Plant ScienceAgricultural and Biological Sciences
14
Article|9 citations·2015
Control of Paternally Expressed Imprinted UPWARD CURLY LEAF1, a Gene Encoding an F-Box Protein That Regulates CURLY LEAF Polycomb Protein, in the Arabidopsis Endosperm
Cheol Woong Jeong, Guen Tae Park, Hyein Yun, Tzung‐Fu Hsieh, Yang Do Choi, Yeonhee Choi, Jong Seob Lee
SJR Q1PLoS ONEOA

Genomic imprinting, an epigenetic process in mammals and flowering plants, refers to the differential expression of alleles of the same genes in a parent-of-origin-specific manner. In Arabidopsis, imprinting occurs primarily in the endosperm, which nourishes the developing embryo. Recent high-throughput sequencing analyses revealed that more than 200 loci are imprinted in Arabidopsis; however, only a few of these imprinted genes and their imprinting mechanisms have been examined in detail. Where

Plant ScienceAgricultural and Biological Sciences
15
Article|9 citations·2020
DEMETER-mediated DNA Demethylation in Gamete Companion Cells and the Endosperm, and its Possible Role in Embryo Development in Arabidopsis
Kyunghyuk Park, Seunga Lee, Hyunjin Yoo, Yeonhee Choi
SJR Q2Journal of Plant Biology
Plant ScienceAgricultural and Biological Sciences

Research Areas

Plant ScienceMolecular BiologyBiochemistryFood ScienceInsect ScienceAnimal Science and Zoology

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