Yan Lee
Seoul National University 화학부 · 生化学・遺伝学・分子生物学
Yan Lee 교수의 연구실은 주로 생체 내에서 특정 환경(예: 내소좀의 산성 pH)에 반응하는 스마트 나노캐리어를 개발하는 데 초점을 맞추고 있습니다. 특히 단백질 및 유전자 치료제의 세포 내 효율적 도달을 위해 pH 민감성 또는 전하 전환 기반의 폴리이온 복합체(PIC) 마이셀을 설계하며, 높은 전환 효율과 낮은 세포 독성을 동시에 구현하는 데 성공했습니다. 이는 주로 암세포나 신경세포 등 정밀한 치료가 필요한 분야에서의 응용 가능성을 지닌 기술입니다.
Figures are computed from collected data and may differ slightly.
A new type of polyion complex (PIC) micelle was prepared from lysozyme and the block copolymer, PEG-pAsp(EDA-Cit), that can switch the charge from anionic to cationic at the endosomal pH. The charge-conversion was due to the degradation of the citraconic amide side chain at pH 5.5. This abrupt charge-conversion can make the PIC micelles promptly release the internal protein in response to the endosomal pH. This pH-sensitive charge-conversion polymer is promising for the future design of nanocarr
Abstract Special delivery! Polyionic complex (PIC) micelles that contain the charge‐conversional moieties citaconic amide or cis ‐aconitic amide were developed for cytoplasmic protein delivery. The increase of the charge density on the protein cargo helped the stability of the PIC micelles without cross‐linking, and the charge‐conversion in endosomes induced the dissociation of the PIC micelles to result in efficient endosomal release (see picture). magnified image
Wrapped for special delivery: A ternary polyplex, with an endosomal disruption moiety based on the charge-conversion polymer pAsp(DET-Aco), showed negative charges for serum stability and low cytotoxicity, but the charges became positive and the endosome disruption moiety was exposed (see picture). High transfection efficiency and minimal cytotoxicity were observed with primary cells.
Stand and deliver! Immunoglobulin G (IgG) can be delivered into the cytoplasm of living cells by charge-conversional modification followed by treatment with a cationic block copolymer to form polyion complex (PIC) micelles (see picture). The bioactivity of the IgG selectively recovers in the cell in a pH-dependent manner, thereby controlling the growth of human hepatoma cells through IgG binding to intracellular target molecules. Detailed facts of importance to specialist readers are published a
Polyethylenimine (PEI) shows high transfection efficiency and cytoxicity due to its high amine density. The new disulfide cationic polymer, linear poly(ethylenimine sulfide) (l-PEIS), was synthesized for efficient and safe gene delivery. As the amine density of l-PEIS increased, the transfection efficiency also increased. l-PEIS-6 and l-PEIS-8 show transfection efficiencies that are similar to that of PEI. However, cytotoxicity of l-PEIS was not observed due to the biodegradable disulfide bond.
The application of polyion complex (PIC) micelles into therapeutic fields is rapidly increasing due to simple and efficient encapsulation of biopharmaceuticals and outstanding biocompatibility among various polymer-based drug delivery carriers. Ionic biopharmaceuticals, such as DNA, RNA, and proteins can interact with ionic block copolymers to form PIC micelles with a core-shell structure. In this review, the development of smart PIC micelles that can respond to biosignals and the application of
Poly(ethylene oxide sulfide) (PEOS), polymers consisting of an internal ethylene oxide oligomer and disulfide linkage, were synthesized and characterized. The degree of polymerization was dependent upon temperature, dimethyl sulfoxide condition, and monomer hydrophobicity. The stability of PEOS was measured by the size exclusion chromatography method after the incubation both with and without 5 mM glutathione. The disulfide bond was stable in the extracellular condition but completely degraded i
This simple and effective gene therapy method may represent a powerful tool for the treatment of diabetic foot ulcers and other diseases that are refractory to treatment.
Spezialverpackung: Das Schema illustriert den Übergang eines ternären Polyplexes vom negativen, serumstabilen und wenig zytotoxischen Zustand in den positiven Zustand mit freigesetzter endosomaler Spaltungseinheit, der bei Primärzellen eine hohe Transfektionseffizienz bei sehr geringer Zytotoxizität aufweist.
Osmosis can be controlled reversibly and effectively by mild temperature changes based on novel thermosensitive solutes with LCST transition. The nBu-TAEA thermosensitive solution can draw fresh water from seawater at temperatures less than the phase separation temperature, and the osmotic flow was reversed at higher temperatures.
Abstract Schleuser und ihre Tricks: Polyionische komplexe (PIC) Micellen, die Citaconamid oder cis ‐Aconitamid enthalten, wurden entwickelt, um Proteine ins Zellplasma zu transportieren. Die erhöhte Ladungsdichte des transportierten Proteins stabilisierte die PIC‐Micellen, ohne dass eine Vernetzung nötig war; eine Ladungsänderung in Endosomen führte zur Dissoziation der PIC‐Micellen unter effizienter Freisetzung ihres Inhalts (siehe Bild). magnified image
Photothermal therapy (PTT) exploits nanomaterials with optimal heat conversion and cellular penetration using near-infrared (NIR) laser irradiation. However, current PTT agents suffer from inefficient heat conversion, poor intracellular delivery, and a high dose of probes along with excessive laser irradiation, causing limited therapeutic outcomes. Here, bumpy Au triangular nanoprisms (BATrisms) are developed for increasing the surface area, improving cell penetration, shifting the absorption pe
Lower critical solution temperature (LCST) phase transition of glycol ether (GE)-water mixtures induces an abrupt change in osmotic pressure driven by a mild temperature change. The temperature-controlled osmotic change was applied for the forward osmosis (FO) desalination. Among three GEs evaluated, di(ethylene glycol) n-hexyl ether (DEH) was selected as a potential FO draw solute. A DEH-water mixture with a high osmotic pressure could draw fresh water from a high-salt feed solution such as sea
Open papers in the app to read, cite, and organize with AI.