• Title/Summary/Keyword: directed assembly

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Fabrication of a nanowire diluter using electrical fields (전기장을 이용한 나노와이어 희석기 제작)

  • Yang, Jin-Ho;Yoon, Hyeun-Joong;Yang, Eui-Hyeok;Yang, Sang-Sik
    • Proceedings of the KIEE Conference
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    • 2008.07a
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    • pp.1484-1485
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    • 2008
  • The control of the number and dimension of nanowires is essential for dielectrophoretic(DEP) nanoscale assembly process. However, it is difficult to control the number of nanowires assembled between the electrodes. We have developed a nanowire diluter device, which consists of a glass substrate with gold electrodes and a PDMS layer with microchannel. The diluter device is fabricated by the conventional and soft lithographies using a SU-8 mold. Nickel nanowires (30${\mu}m$-long) are fabricated by a template-directed electrodeposition process using nanoporous alumina templates. A solution containing nanowires is injected into an inlet whereby pulsed voltages are applied to 16 pairs of electrodes in this experiment. The nanowires are trapped or released depending on the pulsed electric field from inlet to outlet (the channel). Therefore, the number of nanowires can be decreased correspondingly if the fixed frequency at each electrode is decreased from electrode to electrode.

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Amyloid Polymorphism of α-Synuclein Induced by Active Firefly Luciferase

  • Yang, Jee Eun;Hong, Je Won;Kim, Jehoon;Paik, Seung R.
    • Bulletin of the Korean Chemical Society
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    • v.35 no.2
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    • pp.425-430
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    • 2014
  • Amyloidogenic proteins often exhibit fibrillar polymorphism through alternative assembly processes, which has been considered to have possible pathological implications. Here, firefly luciferase (LUC) is shown to induce amyloid polymorphism of ${\alpha}$-synuclein, the major constituent of Lewy bodies found in Parkinson's disease, by acting as a novel template. The drastically accelerated fibrillation kinetics of ${\alpha}$-synuclein with LUC required the nucleation center produced by the active enzyme of LUC. Fluorescent dye binding, transmission electron microscopy, and Fourier transformed infrared spectroscopy revealed the morphologically distinctive amyloid fibrils of ${\alpha}$-synuclein prepared in the absence or presence of LUC. As the altered morphological characteristics became inherent to the mature fibrils, those properties were inherited to next-generations via nucleation-dependent fibrillation process. The seed control, therefore, would be an effective means to modify amyloid fibrils with different biochemical characteristics. In addition, the LUC-directed amyloid fibrillar polymorphism also suggests that other cellular biomolecules including enzymes in general are able to diversify amyloid fibrils, which could be self-propagated with diversified biological activities, if any, inside cells.

Electrodeposition of AuPt Alloy Nanostructures on a Biotemplate with Hierarchically Assembled M13 Virus Film Used for Methanol Oxidation Reaction

  • Manivannan, Shanmugam;Seo, Yeji;Kim, Kyuwon
    • Journal of Electrochemical Science and Technology
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    • v.10 no.3
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    • pp.284-293
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    • 2019
  • Herein, we report an electrode surface with a hierarchical assembly of wild-type M13 virus nanofibers (M13) to nucleate the AuPt alloy nanostructures by electrodeposition. M13 was pulled on the electrode surface to produce a virus film, and then a layer of sol-gel matrix (SSG) was wrapped over the surface to protect the film, thereby a bio-template was constructed. Blending of metal binding domains of M13 and amine groups of the SSG of the bio-template were effectively nucleate and directed the growth of nanostructures (NSs) such as Au, Pt and AuPt alloy onto the modified electrode surface by electrodeposition. An electrocatalytic activity of the modified electrode toward methanol oxidation in alkaline medium was investigated and found an enhanced mass activity ($534mA/mg_{Pt}$) relative to its controlled experiments. This bio-templated growth of NSs with precise composition could expedite the intention of new alloy materials with tuneable properties and will have efficacy in green energy, catalytic, and energy storage applications.

Sepsis: Early Recognition and Optimized Treatment

  • Kim, Hwan Il;Park, Sunghoon
    • Tuberculosis and Respiratory Diseases
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    • v.82 no.1
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    • pp.6-14
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    • 2019
  • Sepsis is a life-threatening condition caused by infection and represents a substantial global health burden. Recent epidemiological studies showed that sepsis mortality rates have decreased, but that the incidence has continued to increase. Although a mortality benefit from early-goal directed therapy (EGDT) in patients with severe sepsis or septic shock was reported in 2001, three subsequent multicenter randomized studies showed no benefits of EGDT versus usual care. Nonetheless, the early administration of antibiotics and intravenous fluids is considered crucial for the treatment of sepsis. In 2016, new sepsis definitions (Sepsis-3) were issued, in which organ failure was emphasized and use of the terms "systemic inflammatory response syndrome" and "severe sepsis" was discouraged. However, early detection of sepsis with timely, appropriate interventions increases the likelihood of survival for patients with sepsis. Also, performance improvement programs have been associated with a significant increase in compliance with the sepsis bundles and a reduction in mortality. To improve sepsis management and reduce its burden, in 2017, the World Health Assembly and World Health Organization adopted a resolution that urged governments and healthcare workers to implement appropriate measures to address sepsis. Sepsis should be considered a medical emergency, and increasing the level of awareness of sepsis is essential.

A Study on Polymer Replica Materials for Nanotransfer Printing (패턴전사프린팅용 고분자 복제 소재 연구)

  • Kang, Young Lim;Park, Woon Ik
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.34 no.4
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    • pp.262-268
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    • 2021
  • For the past several decades, various next-generation patterning methods have been developed to obtain well-designed nano-to-micro structures, such as imprint lithography, nanotransfer printing (nTP), directed self-assembly (DSA), E-beam lithography, and so on. Especially, nTP process has much attention due to its low processing cost, short processing time, and good compatibility with other patterning techniques in achieving the formation of high-resolution functional patterns. To transfer functional patterns onto desirable substrates, the use of soft materials is required for precise replication of master mold. Here, we introduce a simple and practical nTP method to create highly ordered structures using various polymeric replica materials. We found that polymethyl methacrylate (PMMA), polystyrene (PS), and polyvinylpyridine (PVP) are possible candidates for replica materials for reliable duplication of Si master mold based on systematic analysis of pattern visualization. Furthermore, we successfully obtained well-defined metal and oxide nanostructures with functionality on target substrates by using replica patterns, through deposition and transfer process. We expect that the several candidates of replica materials can be exploited for effective nanofabrication of complex electronic devices.

Optical Design of a 2-kW-Level Laser Head for Metal 3D-Printing Systems (금속 3D 프린팅 시스템 구축을 위한 2 kW 급 레이저헤드 광학설계)

  • Lee, Joohyung
    • Journal of the Korean Society of Manufacturing Process Engineers
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    • v.21 no.1
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    • pp.90-94
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    • 2022
  • Metal 3D-printing technology enables the manufacture of complex features or internal structures, which is not possible in fabrication by conventional cutting methods. The most successful types of metal 3D printing have been powder bed diffusion and directed energy deposition, which use laser heads exploiting high-power laser sintering metal powder. In this study, a cost-effective optical design was proposed for a 2-kW-level fiber laser head. Only two commercial lenses, a beamsplitter and a window, are used in the laser head, satisfying the technological requirements. According to the optical design, the spot size was 2.54 mm, and the stand-off distance from the laser head was 295 mm. The intensity distribution was Gaussian. Thus, smooth power sintering was possible without any laser spot marks. Monte Carlo analysis was employed to verify the consistency of the optical performance under conventional assembly tolerance.

Identification of Small GTPases That Phosphorylate IRF3 through TBK1 Activation Using an Active Mutant Library Screen

  • Jae-Hyun Yu;Eun-Yi Moon;Jiyoon Kim;Ja Hyun Koo
    • Biomolecules & Therapeutics
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    • v.31 no.1
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    • pp.48-58
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    • 2023
  • Interferon regulatory factor 3 (IRF3) integrates both immunological and non-immunological inputs to control cell survival and death. Small GTPases are versatile functional switches that lie on the very upstream in signal transduction pathways, of which duration of activation is very transient. The large number of homologous proteins and the requirement for site-directed mutagenesis have hindered attempts to investigate the link between small GTPases and IRF3. Here, we constructed a constitutively active mutant expression library for small GTPase expression using Gibson assembly cloning. Small-scale screening identified multiple GTPases capable of promoting IRF3 phosphorylation. Intriguingly, 27 of 152 GTPases, including ARF1, RHEB, RHEBL1, and RAN, were found to increase IRF3 phosphorylation. Unbiased screening enabled us to investigate the sequence-activity relationship between the GTPases and IRF3. We found that the regulation of IRF3 by small GTPases was dependent on TBK1. Our work reveals the significant contribution of GTPases in IRF3 signaling and the potential role of IRF3 in GTPase function, providing a novel therapeutic approach against diseases with GTPase overexpression or active mutations, such as cancer.

자기조립 특성을 이용한 공정 및 응용소자 개발

  • Lee, Jae-Gap
    • Proceedings of the Materials Research Society of Korea Conference
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    • 2012.05a
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    • pp.52-52
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    • 2012
  • 최근 선진국을 중심으로 제조기술의 산업혁명이라고 불릴 정도로 큰 파급효과가 기대되는 자기조립기반의 산업공정기술을 확보하기 위한 많은 노력과 연구들이 활발하게 진행되고 있다. 자기조립(Self-Assembly) 현상은 자연에서 일어나는 자발적인 힘으로 원자 또는 분자 단위까지 구조물을 제어하고 bottom-up 방식(상향식: 원자/분자 스케일의 나노구조를 배열/조립하여 원하는 형태의 패턴을 만들어 내는 방식)으로 원하는 구조물을 설계/제작할 수 있는 능력을 가지고 있다. 기초적인 과학으로부터 출발한 자기조립기술은 최근 자기조립 응용개발에서 많은 성과를 이루어내면서 산업화 가능성을 크게 하고, 과학계와 산업계의 많은 관심을 불러일으키고 있다. 반도체 산업기술을 예측하는 ITRS 로드맵(2005년)에 의하면 directed self-assembly 방법이 새로운 미래 패터닝 기술로 개발되어 2016년경에 사용되고, 자기조립소재로 제작된 다양한 응용소자들은 새로운 미래소자로 개발될 것으로 예상하고 있다. 이에 맞추어 국내 기업들도 diblock copolymer를 이용한 나노패터닝 기술 확보를 위한 연구를 진행하고 있다. 또한 IBM은 자기조립기술을 반도체공정에 실험적으로 적용하여 자기조립기술이 생산 공정에 부분적으로 적용될 가능성이 크다는 것을 보여주었다. 산업계와 함께 학계의 연구센터에서는 산업화를 위한 자기조립 집적화 공정(Integrated process) 개발을 이루기 위하여 체계적으로 연구를 실시하고 있다. 미국의 Northeastern 대학의 CHN(Center for high-rate Nanomanufacturing) 연구센터는 자기조립 집적화에 용이한 새로운 개념의 소자를 제안하고 이를 집적화하기 위한 다양한 공정을 개발하고 있으며, Wisconsin 대학의 NSEC(Nanosacle Science and Engineering Center) 연구센터는 diblock copolymer를 이용한 나노패터닝 기술 개발에서 획기적인 결과를 도출하여 산업계에 적용될 가능성을 높이고 있다. 이와 같은 결과들로부터 앞으로의 자기조립기술에 대한 연구는 3차원 구조물을 제작할 수 있는 집적화 공정에 집중될 것이고, 이를 위하여 새로운 개념의 단순한 구조의 응용소자개발도 함께 추진될 것으로 판단된다. 또한 실용 가능성이 큰 집적화 공정으로 개발하기 위하여 기존의 top-down 방식을 접목한 bottom-up 방식의 자기조립 집적화 공정이 개발될 것으로 예상하고 있다. 이와 함께 자기조립공정은 반복되는 구조를 쉽게 제작할 수 있는 장점을 가지고 있어 다양한 응용소자 [태양전지(solar cell), 연료전지(fuel cell), 유연성 있는 전자기기(flexible electronics), 화면표시 장치(display device)] 제작에 쉽게 이용되어 새로운 산업을 창출할 수 있는 가능성을 보이고 있다. 본 자기조립 연구 센터에서는 이와 같은 자기조립 특성을 제조공정에 적용하여 혁신적인 제조공정기술을 확보하고자 연구를 진행하고 있다. 그러므로 본 발표에서 이와 같은 연구 흐름과 함께 본 센터에서 진행하고 있는 자기조립 제조방법을 소개하고자 한다. 이와 함께 자기조립방법을 이용하여 제작된 다양한 응용소자 개발 결과를 발표하고, 이를 top-down 방식과 접목하여 집적화공정으로 개발하는 전략을 함께 소개하고자 한다.

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Nano-scale Information Materials Using Organic/Inorganic Templates (유기/무기 나노 템플레이트를 이용한 나노 정보소재 합성 연구)

  • Lee, Jeon-Kook;Jeung, Won-Young
    • Journal of the Korean Magnetics Society
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    • v.14 no.4
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    • pp.149-161
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    • 2004
  • The fusion of nano technology and information technology is essential to sustain the present growth rate and to induce new industry in this ever-growing information age. Considering Korean industry whose competitiveness lies heavily on information related technologies, this field will be inevitable for future. Nano materials can be described as novel materials whose size of elemental structure has been engineered at the nanometer scale. Materials in the nanometer size range exhibit fundamentally new behavior, as their size falls below the critical length scale associated with any given property. " Bottom-up' techniques involve manipulating individual atoms and molecules. Bottom-up process usually implies controlled or directed self assembly of atoms and molecules into nano structures. It resembles more closely the processes of biology and chemistry, where atoms and molecules come together to create structures such as crystals or living cells. Nano scale sensors are included in the electronics area since the diverse sensing mechanisms are often housed on a semiconductor substrate and usually give rise to an electronic signal. The application of nano technology to the chemical sensors should allow improvements in functionality such as gas sensing. In this presentation, we will discuss about the nano scale information materials and devices fabricated by using the organic/inorganic nano templates.

Differential Subcellular Localization of Ribosomal Protein L7 Paralogs in Saccharomyces cerevisiae

  • Kim, Tae-Youl;Ha, Cheol Woong;Huh, Won-Ki
    • Molecules and Cells
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    • v.27 no.5
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    • pp.539-546
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    • 2009
  • In Saccharomyces cerevisiae, ribosomal protein L7, one of the ~46 ribosomal proteins of the 60S subunit, is encoded by paralogous RPL7A and RPL7B genes. The amino acid sequence identity between RPl7a and RPl7b is 97 percent; they differ by only 5 amino acid residues. Interestingly, despite the high sequence homology, Rpl7b is detected in both the cytoplasm and the nucleolus, whereas Rpl7a is detected exclusively in the cytoplasm. A site-directed mutagenesis experiment revealed that the change in the amino acid sequence of Rpl7b does not influence its subcellular localization. In addition, introns of RPL7A and RPL7B did not affect the subcellular localization of Rpl7a and Rpl7b. Remarkably, Rpl7b was detected exclusively in the cytoplasm in rpl7a knockout mutant, and overexpression of Rpl7a resulted in its accumulation in the nucleolus, indicating that the subcellular localization of Rpl7a and Rpl7b is influenced by the intracellular level of Rpl7a. Rpl7b showed a wide range of localization patterns, from exclusively cytoplasmic to exclusively nucleolar, in knockout mutants for some rRNA-processing factors, nuclear pore proteins, and large ribosomal subunit assembly factors. Rpl7a, however, was detected exclusively in the cytoplasm in these mutants. Taken together, these results suggest that although Rpl7a and Rpl7b are paralogous and functionally replaceable with each other, their precise physiological roles may not be identical.