Jin-Ju Han
Korea Advanced Institute of Science and Technology · Biochemistry, Genetics and Molecular Biology
About the Lab
Professor Jin-Ju Han's research lab focuses on the molecular mechanisms of microRNA biogenesis and function, with a particular emphasis on RNase III enzymes such as Drosha and Dicer in gene regulation. The lab investigates the roles of microRNAs and their regulatory networks in neurogenesis, stem cell differentiation, and developmental processes, especially in the context of neural progenitor cell fate and brain function. Using integrative approaches combining molecular biology, genomics, and functional studies, the lab explores how post-transcriptional regulation by microRNAs and their interacting partners influences cellular identity and tissue development. Recent work also extends to the identification and characterization of microRNAs in non-model organisms, such as wheat, highlighting translational and agricultural applications of miRNA research.
Research Overview
Research Output Trend
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Selected Papers
15RNase III proteins play key roles in microRNA (miRNA) biogenesis. The nuclear RNase III Drosha cleaves primary miRNAs (pri-miRNAs) to release hairpin-shaped pre-miRNAs that are subsequently cut by the cytoplasmic RNase III Dicer to generate mature miRNAs. While Dicer (class III) and other simple RNase III proteins (class I) have been studied intensively, the class II enzyme Drosha remains to be characterized. Here we dissected the action mechanism of human Drosha by generating mutants and by cha
RNA interference mediated by small interfering RNAs (siRNAs) has been exploited for the development of therapeutics. siRNAs can be a powerful therapeutic tool because the working mechanisms of siRNAs are straightforward. siRNAs determine targets based on their sequence and specifically regulate the gene expression of the target gene. However, efficient delivery of siRNAs to the target organ has long been an issue that needs to be solved. Tremendous efforts regarding siRNA delivery have led to si
Mitochondria are ubiquitous and multi-functional organelles involved in diverse metabolic processes, namely energy production and biomolecule synthesis. The intracellular mitochondrial morphology and distribution change dynamically, which reflect the metabolic state of a given cell type. A dramatic change of the mitochondrial dynamics has been observed in early development that led to further investigations on the relationship between mitochondria and the process of development. A significant de
Differentiation of multipotent stem cells occurs through the highly coordinated control of gene expression. Repressor element 1 (RE1) silencing transcription factor (REST), a master transcriptional regulator in neuronal stem cells, restricts neuronal gene expression. REST activity is context-dependent and is modified by its cofactors, such as Ctdsp2. In this issue of Genes & Development, Dill and colleagues (pp. 25-30) report on the microRNA-mediated regulation of neural differentiation. Interes
MicroRNAs (miRNAs) are a newly discovered class of noncoding small RNAs that regulate gene expression by directing target mRNA cleavage or translational inhibition. A large number of miRNAs have been identified in plants. Increasing evidence has shown that miRNAs play multiple roles in plant biological processes. So far, identification of miRNAs has been limited to a few model plant species, whose genomes have been sequenced. Wheat (Triticum aestivum L.) is one of the most important cereal crops
The latest miRNA database (Release 21) annotated 2588 and 1915 miRNAs in the human and mouse genomes, respectively.Citation1 However, the biological roles of miRNAs in vivo remain largely unknown. In particular, the physiological and pathological roles of individual microRNAs in the brain have not been investigated extensively although expression profiles of microRNAs have been reported in many given conditions. In a recent study,Citation2 we identified miR-19, which is enriched in adult hippoca
Metabolic dysregulation of neurons is associated with diverse human brain disorders. Metabolic reprogramming occurs during neuronal differentiation, but it is not fully understood which molecules regulate metabolic changes at the early stages of neurogenesis. In this study, we report that miR-124 is a driver of metabolic change at the initiating stage of human neurogenesis. Proteome analysis has shown the oxidative phosphorylation pathway to be the most significantly altered among the differenti
Abstract Intracellular C ‐terminal cleavage of the amyloid precursor protein (APP) is elevated in the brains of Alzheimer's disease (AD) patients and produces a peptide labeled APP‐C31 that is suspected to be involved in the pathology of AD. But details about the role of APP‐C31 in the development of the disease are not known. Here, this work reports that APP‐C31 directly interacts with the N ‐terminal and self‐recognition regions of amyloid‐β 40 (Aβ 40 ) to form transient adducts, which facilit
Autism spectrum disorder (ASD) is linked to ion channel dysfunction, including chloride voltage-gated channel-4 (CLCN4). We generated Clcn4 knockout (KO) mice by deleting exon 5 of chromosome 7 in the C57BL/6 mice. Clcn4 KO exhibited reduced social interaction and increased repetitive behaviors assessed using three-chamber and marble burying tests. Surprisingly, these symptoms were improved by Risperidone treatment, a drug commonly used to treat ASD. RNA sequencing data from mouse neural progeni
Research Areas
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