So‐Jung Park
Ewha Womans University Materials Science · 材料科学
So-Jung Park 교수의 연구실은 DNA 기반 나노소재의 설계 및 응용에 초점을 맞추고 있으며, 특히 DNA를 이용한 나노입자 조립, 플라즈몬 나노입자의 정밀 조립 제어, 그리고 생체 분자 인식 기반 센서 기술 개발을 핵심 연구 방향으로 삼고 있습니다. 나노입자와 DNA의 상호작용을 이용한 고감도 생물학적 감지 기술과, 바이러스의 핵심 단백질 합성 메커니즘을 타겟으로 한 약물 디자인 전략도 함께 진행하고 있습니다. 특히, DNA의 정밀한 기하학적 설계 원리를 바탕으로 한 나노결정성 나노소재의 형성 메커니즘에 대한 기초 연구도 활발히 수행되고 있습니다.
Figures are computed from collected data and may differ slightly.
A DNA array detection method is reported in which the binding of oligonucleotides functionalized with gold nanoparticles leads to conductivity changes associated with target-probe binding events. The binding events localize gold nanoparticles in an electrode gap; silver deposition facilitated by these nanoparticles bridges the gap and leads to readily measurable conductivity changes. An unusual salt concentration-dependent hybridization behavior associated with these nanoparticle probes was expl
DNA hybridization enables the three-dimensional assembly of Au nanoparticles and streptavidin. The high-density DNA-modified Au nanoparticles were stable to nonspecific binding of streptavidin. Structural and melting investigations on the assemblies showed their formation was reversible.
Programmed -1 ribosomal frameshifting (-1 RF) is an essential regulating mechanism of translation used by SARS-CoV (severe acute respiratory syndrome coronavirus) to synthesize the key replicative proteins encoded by two overlapping open reading frames. The integrity of RNA pseudoknot stability and structure in the -1 RF site is important for efficient -1 RF. Thus, small molecules interacting with high affinity and selectivity with the RNA pseudoknot in the -1 RF site of SARS-CoV (SARS-pseudokno
The spatial arrangement of plasmonic nanoparticles can dramatically affect their interaction with electromagnetic waves, which offers an effective approach to systematically control their optical properties and manifest new phenomena. To this end, significant efforts were made to develop methodologies by which the assembly structure of metal nanoparticles can be controlled with high precision. Herein, recent advances in bottom-up chemical strategies toward the well-controlled assembly of plasmon
If a solution of DNA-coated nanoparticles is allowed to crystallize, the thermodynamic structure can be predicted by a set of structural design rules analogous to Pauling’s rules for ionic crystallization. The details of the crystallization process, however, have proved more difficult to characterize as they depend on a complex interplay of many factors. This chapter describes that this crystallization process is dictated by the individual DNA bonds and that the effect of changing structural or
The complex, coupled mechanisms of charge transfer and oxidative damage in organic electronic devices (such as organic light-emitting diodes (OLED), solar cells, etc.) have been elucidated by a new technique that combines single-molecule spectroscopy with charge injection from a metal electrode. The experiments employed a sandwich device architecture (Au/TPD/MEH-PPV:PMMA/SiO2/ITO), essentially a modified OLED with a charge-blocking layer (SiO2) to suppress charge injection at the ITO electrode.
DNA-conjugated metal nanoparticles have attracted enormous attention for biological and medical applications, owing to their unusual DNA melting characteristics as well as unique optical and catalytic properties. The combination of these unique properties has not only led to the development of DNA-detection technologies with remarkably high selectivity and sensitivity, but also to the development of gene therapeutic agents with high efficacy and efficiency. In this review, we present a comprehen
Nuclear receptors (NRs) are ligand dependent transcriptional factors and play a key role in reproduction, development, and homeostasis of organism. NRs are potential targets for treatment of cancer and other diseases such as inflammatory diseases, and diabetes. In this study, we present a comprehensive library of pocket conformational ensembles of thirteen human nuclear receptors (NRs), and test the ability of these ensembles to recognize their ligands in virtual screening, as well as predict th
Conjugated polymers have been actively studied as an alternative to inorganic semiconductors for their unique optical and electrical properties and low-cost solution processability. However, typical conjugated polymer films contain numerous defects that negatively affect their transport properties, which remains a major issue despite much effort to develop ways to improve the molecular packing structure. In principle, conjugated block copolymers (BCPs) composed of a rod-type conjugated polymer a
Powder samples of were prepared at 1000°C by the combustion method. The emission spectrum of showed two kinds of emissions, which could be assigned to ions in the Sr site and the Y site. Reducing brought a broad band emission around 470 nm, which could be attributed to crystal defects introduced by the reduction. The energy transfer from defects to ions was observed to be more effective to the Sr site than to the Y site. © 1999 The Electrochemical Society. All rights reserved.
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