Korea University · Medicine
Professor Heemin Kang's research lab focuses on advancing nanomedicine and biomaterials for precision theranostics and regenerative medicine. The lab develops multifunctional nanomaterials—particularly magnetic and engineered nanoparticles—to overcome biological barriers in extracellular vesicle-based therapies, control cell adhesion through external stimuli like magnetic fields, and modulate the tumor microenvironment for targeted cancer treatment. A central theme is the design of smart biomaterials that dynamically interact with cellular systems to regulate cell fate, tissue repair, and disease progression.
Figures are computed from collected data and may differ slightly.
Extracellular vesicles (e.g., exosomes) carrying various biomolecules (e.g., proteins, lipids, and nucleic acids) have rapidly emerged as promising platforms for many biomedical applications. Despite their enormous potential, their heterogeneity in surfaces and sizes, the high complexity of cargo biomolecules, and the inefficient uptake by recipient cells remain critical barriers for their theranostic applications. To address these critical issues, multifunctional nanomaterials, such as magnetic
Cellular adhesion is regulated by the dynamic ligation process of surface receptors, such as integrin, to adhesive motifs, such as Arg-Gly-Asp (RGD). Remote control of adhesive ligand presentation using external stimuli is an appealing strategy for the temporal regulation of cell-implant interactions in vivo and was recently demonstrated using photochemical reaction. However, the limited tissue penetration of light potentially hampers the widespread applications of this method in vivo. Here, we
In the biological microenvironment, cells are surrounded by an extracellular matrix (ECM), with which they dynamically interact during various biological processes. Specifically, the physical and chemical properties of the ECM work cooperatively to influence the behavior and fate of cells directly and indirectly, which invokes various physiological responses in the body. Hence, efficient strategies to modulate cellular responses for a specific purpose have become important for various scientific
Nanotechnology is a fledgling field in cancer research, forging new opportunities to design and develop highly effective targeted therapies. By harnessing the unique properties of engineered precision nanoparticles (NPs), an arena of dual-purpose approach in nanomedicine called theranostics has emerged. Theranostics is a potential platform that integrates diagnosis and therapy within one nanosystem . For this system of approach, the tunability of engineered precision NPs and the potential to int
We investigated the differences in quantity and quality of skeletal muscle between metabolically healthy obese (MHO) and metabolically unhealthy obese (MUO) individuals using abdominal CT. One hundred and seventy-two people with morbid obesity who underwent bariatric surgery and 64 healthy control individuals participated in this retrospective study. We divided the people with morbid obesity into an MHO and MUO group. In addition, nonobese metabolic healthy people were included analysis to provi
Stenosis of the central veins is a common complication in hemodialysis patients. However, cerebral venous hypertension and neurological symptoms caused by central vein stenosis are relatively rare. We present a rare case of cerebral venous hypertension in a 63-year-old male who showed venous reflux into the dural sinuses due to central venous stenosis on time-of-flight MR angiography. After management for central venous stenosis, the venous reflux disappeared.
Neuromodulation is a highly promising technology for controlling neural circuits, treating nervous system diseases, and manipulating brain function. Conventional approaches, such as direct electrical stimulation or optogenetics, face challenges from their unstable therapeutic outcomes, invasive nature, and potential tissue damage. The emergence of stimuli-responsive nanomaterial-based wireless neuromodulation techniques offers tunability, minimal invasiveness, highly specific targeting, and long
Intracranial dural arteriovenous fistula (DAVF) is an abnormal arteriovenous shunt accounting for approximately 10%-15% of all intracranial vascular malformations. Most intracranial DAVFs are solitary, but multiple lesions at different sites can rarely occur. Most intracranial multiple DAVFs are synchronous types, whereas metachronous lesions are relatively uncommon. Herein, we report a rare case of metachronous DAVF occurring after the embolization of a preceding lesion in a 75-year-old female.
Open papers in the app to read, cite, and organize with AI.