• Title/Summary/Keyword: 분자영상

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Feature values of DWT using MR general imaging and molecular imaging (DWT를 이용한 MR 일반영상과 분자영상 특징추출)

  • Pack, Dae-Sung;Choi, Gui-Rack;Han, Byung-Sung;Ahn, Byung-Ju
    • Journal of the Korean Society of Radiology
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    • v.6 no.5
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    • pp.409-414
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    • 2012
  • This study acquired molecular lmaging using nano-contrast agents, and the general condition of the same image acquisition to analyze the difference between molecular imaging and general imaging, two images are converted into DWT (Discrete Wavelet Transform). Nano-contrast agent imaging using MRI and molecular imaging using PET study of molecular imaging technology mainstream. DWT analysis of the same lesions using MRI imaging and molecular imaging block lesions are present in the lesions, illustrating the value of a high-frequency feature both highly general imaging and molecular imaging could know that. The high frequency region of the feature extraction values appear higher molecular imaging.

Application and Prospects of Molecular Imaging (분자영상의 적용분야 및 전망)

  • Choi, Guyrack;Lee, Sangbock
    • Journal of the Korean Society of Radiology
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    • v.8 no.3
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    • pp.123-136
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    • 2014
  • In this paper, we study to classify molecular imaging and applications to predict future. Molecular imaging in vivo at the cellular level and the molecular level changes taking place to be imaged, that is molecular cell biology and imaging technology combined with the development of the new field. Molecular imaging is used fluorescence, bioluminescence, SPECT, PET, MRI, Ultrasound and other imaging technologies. That is applied to monitoring of gene therapy, cell tracking and monitoring of cell therapy, antibody imaging, drug development, molecular interaction picture, the near-infrared fluorescence imaging of cancer using fluorescence, bacteria using tumor-targeting imaging, therapeutic early assessment, prediction and therapy. The future of molecular imaging would be developed through fused interdisciplinary research and mutual cooperation, which molecular cell biology, genetics, chemistry, physics, computer science, biomedical engineering, nuclear medicine, radiology, clinical medicine, etc. The advent of molecular imaging will be possible to early diagnosis and personalized treatment of disease in the future.

Feature Extraction of Molecular Images by DWT (DWT에 의한 분자영상의 특징 추출)

  • Choi, Guirack;Ahng, Byungju;Lee, Sangbock
    • Journal of the Korea Society of Computer and Information
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    • v.18 no.12
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    • pp.21-26
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    • 2013
  • In this paper, We are suggested methods of feature extraction in molecular images. The result of image transform DWT examination by suggested method, we are obtained as follows. 1-level and 2-levels of decomposition results showed the composition of the low frequency region. But, 3-level decomposition results did not appear in the data component is almost. Observed not with the naked eye is not, but the 3-level output data values of the results were decomposed. We are printed the horizontal and vertical directions of low-frequency region of the data, the high frequency region of the horizontal and vertical data, and diagonal high frequency region of the horizontal and vertical directions data. If the output data using molecular imaging and CT, PET, MR imaging will be compared with the data.

MR 분자영상용 후보물질의 탐색: 예비연구

  • 박지애;장용민;강봉석;이종민;강덕식
    • Proceedings of the KSMRM Conference
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    • 2003.10a
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    • pp.36-36
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    • 2003
  • 목적: 고형성 종양에 특이적으로 발현하는 MR 분자영상용 조영제의 후보물질을 분자생물학적 방법 및 in vitro 분자영상기법을 이용하여 탐색하고자 하였다. 대상 및 방법: 암이 진행됨에 따라 유전자가 과발현되는 세포표면 단백질인 CD44 와 세포막에 존재하는 단백질분해효소의 일종인 MTI-MMP를 일차 선정하여 유전자 수준 및 단백질 수준에서 분자생물학적 방법으로 종양특이성에 대해 검증하였고, 특히 각종 암세포에서 발현양이 증가하는 CD44의 변형인 CD44v6 항체를 이용하여 생세포에서의 표적화에 대한 광학적 검증을 위해 초상자성 나노입자 대신 형광입자(FITC)를 결합하여 confocal microscopy로 실시간 표적화에 대한 분자영상을 획득하였다.

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PET-Based Molecular Nuclear Neuro-Imaging

  • Kim, Jong-Ho
    • The Korean Journal of Nuclear Medicine
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    • v.38 no.2
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    • pp.161-170
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    • 2004
  • Molecular Nuclear Neuro-Imaging in "CNS" drug discovery and development tan be divided into four categories that are clearly inter-related.(1) Neuroreceptor mapping to examine the involvement of specific neurotransmitter system in CNS diseases, drug occupancy characteristics and perhaps examine mechanisms of action;(2) Structural and spectroscopic imaging to examine morphological changes and their consequences;(3) Metabolic mapping to provide evidence of central activity and "CNS fingerprinting" the neuroanatomy of drug effects;(4) Functional mapping to examing disease-drug interactions. In addition, targeted delivery of therapeutic agents could be achieved by modifying stem cells to release specific drugs at the site of transplantation('stem cell pharmacology'). Future exploitation of stem cell biology, including enhanced release of therapeutic factors through genetic stem cell engineering, might thus constitute promising pharmaceutical approaches to treating diseases of the nervous system. With continued improvements in instrumentation, identification of better imaging probes by innovative chemistry, molecular nuclear neuro-imaging promise to play increasingly important roles in disease diagnosis and therapy.

MR Contrast Agents and Molecular Imaging (MR조영제와 분자영상)

  • Moon, Woo-Kyung
    • The Korean Journal of Nuclear Medicine
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    • v.38 no.2
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    • pp.205-208
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    • 2004
  • The two major classes of magnetic resonance (MR) contrast agents are paramagnetic contrast agents, usually based on chelates of gadolinium generating T1 positive signal enhancement, and super-paramagnetic contrast agents that use mono- or polycrystalline iron oxide to generate strong T2 negative contrast in MR images. These paramagnetic or super-paramagnetic complexes are used to develop new contrast agents that can target the specific molecular marker of the cells or tan be activated to report on the physiological status or metabolic activity of biological systems. In molecular imaging science, MR imaging has emerged as a leading technique because it provides high-resolution three-dimension maps of the living subject. The future of molecular MR imaging is promising as advancements in hardware, contrast agents, and image acquisition methods coalesce to bring high resolution in vivo imaging to the biochemical sciences and to patient care.

Evaluation of UTE Signal Acquisition Efficacy in Molecular MRI (분자 MR영상에서 UTE 신호의 효용성 평가)

  • Lee, Sang-Bock;Choi, Gui-Rack
    • Journal of the Korean Society of Radiology
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    • v.6 no.4
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    • pp.305-311
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    • 2012
  • This study compares the TE and UTE is to evaluate. We was programming by DWT of Matlab Tool-box for evaluation. M-program used feature value extract between TE Images and UTE Images. Two images using the extracted feature values were compared. Comparison of similar features two images phase was found to have value.

Development of Web-Based Simulation Program Using the Randomwalk Theory (Randomwalk 이론을 이용한 Web 기반 동영상 프로그램의 개발)

  • Kim, Sung Geun;Kim, Ju Rae;Woo, Kyu Whan
    • Journal of the Korean Chemical Society
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    • v.43 no.4
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    • pp.469-474
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    • 1999
  • In this study, the simulation program using the randomwalk model is developed. Generally, students in the chemistry class have some difficulties to understand the motion of atomic particles or molecules. And then, they have many mis-conceptions about the motion of molecules. This program expressed by the computer simulations using the randomwalk theory may help students to understand visually the process of molecular motion. This program can be used easily, because it is based on Web by application of JAVA languages. The program consists of two parts. One is 'Diffusion' program, expressing the process of molecular diffusion as a computer simulation. Another is 'Randomwalk' program, expressing the trajectory of molecular motion to help the students to follow the random motion virtually.

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Development of Pre-Clinical Imaging System Using Hyper Spectral Imaging Technology (Hyper spectral imaging 기법을 이용한 전임상 영상장비에 대한 연구)

  • Lee, Kyeong-Hee;Choi, Young-Wook
    • Proceedings of the KIEE Conference
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    • 2007.11a
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    • pp.140-141
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    • 2007
  • 본 연구에서는 고분해능 및 고감도화된 시스템 개발을 위하여 AOTF를 이용하여 하이퍼스펙트럼 영상기법을 활용한 전임상 영상장비에 대한 연구를 수행하였다. 제작된 고감도 하이퍼스펙트럼 분자영상 시스템의 생물학적 적용을 위하여, AOTF의 파장 또는 진동수를 변화시키면서 GFP가 발현된 HEK 293 세포의 이미지를 촬영하였다. 또한, 제작된 실험 대상물 이미지화 시스템을 이용해서 실험용 쥐의 이미지를 촬영하였다. 실험용 쥐를 크세논 아크램프 사용 전 후 이미지를 촬영한 결과 크세논 아크 램프 사용 후에는 청색의 선명한 영상을 얻을 수 있었다.

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