Woo Dong Jang
Yonsei University · 材料科学
研究室紹介
Professor Woo Dong Jang's research lab specializes in supramolecular and materials chemistry, focusing on the design and application of functional molecular systems for biomedical and environmental sensing. The lab develops smart fluorescent probes, particularly those incorporating crown ethers and porphyrin derivatives, to detect metal ions, anions, and biomolecules with high selectivity and sensitivity. A key research direction involves the creation of self-assembled nanostructures—such as dendrimer-based micelles and fibrous gels—engineered for targeted drug delivery and photodynamic therapy. The lab also explores stimuli-responsive systems based on noncovalent interactions for advanced diagnostic and therapeutic applications.
Research Overview
Research Output Trend
Figures are computed from collected data and may differ slightly.
Selected Papers
15Crown ethers, discovered by the winner of the Nobel Prize Charles Pedersen, are cyclic chemical compounds that consist of a ring or multiple rings containing several ether groups that are capable of binding alkali ions. A smart fluorescent probe containing a crown ether moiety could be developed as a sensor for metal ions, anions and other bio-molecules and be further applied to monitor the relevant biological process in vivo. This review highlights recent advances which can be divided into seve
Porphyrin derivatives are ubiquitous in nature and have important biological roles, such as in light harvesting, oxygen transport, and catalysis. Owing to their intrinsic π-conjugated structure, porphyrin derivatives exhibit characteristic photophysical and electrochemical properties. In biological systems, porphyrin derivatives are associated with various protein molecules through noncovalent interactions. For example, hemoglobin, which is responsible for oxygen transport in most vertebrates, c
ADVERTISEMENT RETURN TO ISSUEPREVCommunicationNEXTDendritic Physical Gel: Hierarchical Self-Organization of a Peptide-Core Dendrimer to Form a Micrometer-Scale Fibrous AssemblyWoo-Dong Jang, Dong-Lin Jiang, and Takuzo AidaView Author Information Department of Chemistry and Biotechnology Graduate School of Engineering The University of Tokyo, 7-3-1 Hongo Bunkyo-ku, Tokyo 113-8656, Japan Cite this: J. Am. Chem. Soc. 2000, 122, 13, 3232–3233Publication Date (Web):March 17, 2000Publication History R
Photo finish: A polymeric micelle system is formed in aqueous media by electrostatic assembly of an anionic dendrimeric porphyrin and a poly(ethylene glycol)–poly(L-lysine) block copolymer (see picture). The micelles exhibit high photocytotoxicity and stability. The hydrodynamic size (ca. 60 nm) makes this polymeric micelle system suitable for intravenous administration in photodynamic tumor therapy.
Recent advances in supramolecular chemistry have had significant influence on the biomedical applications of materials chemistry. Supramolecular systems are based on weak and reversible non-covalent interactions, such as hydrogen bonding, metal coordination, hydrophobic attractions, van der Waals forces, π–π, and electrostatic interactions. Because of the weak and reversible nature of the molecular interactions in self-assembled supramolecular systems, they are excellent candidates for the desig
Turn on events: A molecular probe consisting of a boradiazaindacene unit conjugated with a dicyano-vinyl group has been designed for the selective and sensitive detection of cyanide by strong fluorescence enhancement in aqueous media (see scheme).
symmetry, which allows for the symmetrical introduction of self-assembling motifs. This review describes the fabrication of porphyrin-based supramolecular polymers and novel discoveries in supramolecular polymer growth. First, we summarise the (i) design concepts, (ii) growth mechanism and (iii) analytical methods of porphyrin-based supramolecular polymers. Then, the examples of porphyrin-based supramolecular polymers formed by (iv) hydrogen bonding, (v) metal coordination-based interaction, (vi
A new type of fluorescent probe (1) with two triazole groups that are conjugated with a carbazole moiety was synthesized by a Cu(I)-catalyzed alkyne-azide click reaction for the selective and sensitive detection of cyanide via fluorescence enhancement by ligand exchange and metal ion removal.
Many layers make light work: Layer-by-layer (LbL) self-assembly of a dendritic porphyrin (red; see picture) and poly(allylamine hydrochloride) (blue) on polystyrene nanoparticles followed by removal of the polystyrene core produces multifunctional hollow nanocapsules. These species can be both loaded with anticancer drugs and used in photodynamic therapy (PDT) and therefore have potential in combined cancer therapy.
A dendrimer porphyrin (DP)-coated gold nanoshell (AuNS-DP) was prepared for the synergistic combination of photodyanmic and photothermal therapy. The resultant AuNS-DP successfully exhibited the generation of reactive oxygen species (ROS) as well as photothermal effect for the simultaneous application of photodynamic therapy (PDT) and photothermal therapy (PTT).
Fully reversible emission color change is achieved by blending a thermoresponsive polymer with dye hybrids. The emission color can be tuned by changing the mixing ratio of each polymer-dye hybrid.