Dong Hyun Shin
Kyung Hee University
研究室紹介
Professor Dong Hyun Shin's research lab specializes in developmental biology and gene regulation in *Drosophila melanogaster*, focusing on the molecular mechanisms underlying embryonic patterning. The lab investigates how transcription factors such as Dorsal, Zelda, and Single-minded dynamically control gene expression through context-specific enhancers, particularly in dorsal-ventral and anteroposterior axis formation. A central theme is the dual functionality of enhancers—such as the *sog* shadow and primary enhancers—that drive sequential gene expression in distinct tissues like the neurogenic ectoderm and ventral midline. The lab combines computational genomics, transgenic assays, and molecular genetics to decode the logic of enhancer architecture and transcriptional regulation.
Research Overview
Research Output Trend
Figures are computed from collected data and may differ slightly.
Selected Papers
4The maternal transcription factor Dorsal (Dl) functions as bothan activator and a repressor in a context-dependent manner tocontrol dorsal-ventral patterning in the Drosophila embryo. Previous studies have suggested that Dl is an intrinsic activatorand its repressive activity requires additional corepressors thatbind corepressor-binding sites near Dl-binding sites. However,the molecular identities of the corepressors have yet to beidentified. Here, we present evidence that Capicua (Cic) isinvolv
The sog, a fly homologue of the vertebrate chordin, is expressed in the presumptive neurogenic ectoderm and also the ventral midline during Drosophila embryogenesis. Previously, two enhancers, called the primary and shadow enhancer, respectively, were found to direct sog expression in the neurogenic ectoderm. However, efforts to identify an enhancer that directs sog expression in the ventral midline have failed. Here, we present evidence that the sog shadow enhancer has dual activities to direct
The short gastrulation (sog) shadow enhancer directs early and late sog expression in the neurogenic ectoderm and the ventral midline of the developing Drosophila embryo, respectively. Here, evidence is presented that the sog primary enhancer also has both activities, with the late enhancer activity dependent on the early activity. Computational analyses showed that the sog primary enhancer contains five Dorsal (Dl)-, four Zelda (Zld)-, three Bicoid (Bcd)-, and no Single-minded (Sim)-binding sit
The shadow enhancer of the short gastrulation (sog) gene directs its sequential expression in the neurogenic ectoderm and the ventral midline of the developing Drosophila embryo. Here, we characterize three unusual features of the shadow enhancer midline activity. First, the minimal regions for the two different enhancer activities exhibit high overlap within the shadow enhancer, meaning that one developmental enhancer possesses dual enhancer activities. Second, the midline enhancer activity rel