• 제목/요약/키워드: Tissue Engineering

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Contrast Enhancement of Laser Speckle Contrast Image in Deep Vasculature by Reduction of Tissue Scattering

  • Son, Taeyoon;Lee, Jonghwan;Jung, Byungjo
    • Journal of the Optical Society of Korea
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    • 제17권1호
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    • pp.86-90
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    • 2013
  • Various methods have been proposed for enhancing the contrast of laser speckle contrast image (LSCI) in subcutaneous blood flow measurements. However, the LSCI still suffers from low image contrast due to tissue turbidity. Herein, a physicochemical tissue optical clearing (PCTOC) method was employed to enhance the contrast of LSCI. Ex vivo and in vivo experiments were performed with porcine skin samples and male ICR mice, respectively. The ex vivo LSCIs were obtained before and 90 min after the application of the PCTOC and in vivo LSCIs were obtained for 60 min after the application of the PCTOC. In order to obtain the skin recovery images, saline was applied for 30 min after the application of the PCTOC was completed. The visible appearance of the tubing under ex vivo samples and the in vivo vasculature gradually enhanced over time. The LSCI increased as a function of time after the application of the PCTOC in both ex vivo and in vivo experiments, and properly recovered to initial conditions after the application of saline in the in vivo experiment. The LSCI combined with the PCTOC was greatly enhanced even in deep vasculature. It is expected that similar results will be obtained in in vivo human studies.

3D 프린팅 기술의 조직공학 및 재생의학 분야 응용 (3D Printing Technology and Its Application on Tissue Engineering and Regenerative Medicine)

  • 이준희;박수아;김완두
    • 대한기계학회논문집 C: 기술과 교육
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    • 제1권1호
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    • pp.21-26
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    • 2013
  • 본 논문에서는 최근 미래 신산업 혁명을 주도할 유망기술로 각광 받고 있는 3D 프린팅 기술과 이를 이용한 조직공학 및 재생의학 분야의 응용 기술을 살펴보았다. 한국기계연구원에서는 3D 프린팅 기술을 바탕으로 독자적인 3D 바이오프린팅 장비를 설계 및 제작하였으며, 개발된 3D 바이오프린팅 장비를 이용하여 다양한 분야에 적용이 가능한 3D 형상의 조직공학용 스캐폴드를 제작하였다. 또한 세포와 생체재료를 3D로 직접 프린팅 할 수 있는 세포 프린팅 기술을 개발하였으며, 이는 인공장기 개발분야의 원천 기술로 조직공학 및 재생의학 분야에 3D 프린팅 기술이 활용될 수 있는 기반을 확립하였다.

임상가를 위한 특집 2 - 티타늄 임플란트 표면처리에서의 나노테크놀로지 (Nanotechnology in the Surface Treatment of Titanium Implant.)

  • 오승한
    • 대한치과의사협회지
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    • 제48권2호
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    • pp.106-112
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    • 2010
  • 아직까지 나노관련 기술이 티타늄 임플란트에 직접적으로 사용되는 부분이 상당히 미약하다. 하지만, 수직으로 정렬된 구조를 가지는 티타니아 나노튜브는 생체 내 대부분의 임플란트 재료로 사용되는 티타늄의 차세대 개발에 있어서 가장 중요한 영향을 미칠 것이다. 본문에 설명되어 있는 내용들 뿐 만이라, 티타니아 나노튜브는 파골세포의 골 흡수성 방지, 줄기세포의 특정 성체세포로의 분화, 연골세포의 재분화, 간세포를 이용한 생물 반응기(bio-reactor) 개발 등 생체재료의 여러 분야에서 많이 연구되고 있다. 특히, 줄기세포에 관한 연구는 차세대 임플란트 개발에 있어서 가장 중요한 연구 분야 중의 하나로서, 골을 형성하는 조골세포와 골을 파괴하는 피골세포 모두 줄기세포 로부터 만들어진다는 것을 유념해야 할 것이다. 만약, 티타니아 나노튜브의 독특한 나노구조를 이용하여 줄기세포의 조골세포로의 직접 분회를 제어하는 기술이 개발되어 상업화된다면, 이 기술을 기반으로 하여 현 재까지 개발된 모든 표면 증착 및 코팅 기술을 새롭게 이용하는 차세대 티타늄 임플란트의 개발을 위한 초석이 되리라고 본다.

사인 주기의 온도 변화가 가해지는 피부 조직의 생체열 방정식에 대한 해석 (Analysis of the Bioheat Equation Considering Tissue Layers with Sinusoidal Temperature Oscillation on the Skin)

  • 최우림;문상돈;윤석범;임익태
    • 대한기계학회논문집B
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    • 제35권8호
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    • pp.757-762
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    • 2011
  • 본 연구에서는 표면에 사인주기의 온도변화를 주었을 때 인체피부 조직의 온도변화에 대해 연구 하였다. 표피, 진피 및 피하조직으로 이루어진 피부 각 층의 서로 다른 물성치의 영향을 Pennes 열전달 방정식을 이용한 수치해석방법으로 풀이하여 조사하였다. 각 조직의 서로 다른 물성치가 온도분포에 미치는 영향에 대해 조사하였다. 또 물성치 변화의 영향을 많이 받는 진피부분에 대해서 관류율의 영향을 조사하였다. 해석 결과 동일한 물성치를 사용한 경우와 달리 서로 다른 물성치를 사용하였을 때, 피부깊이에 따른 온도분포가 불연속적으로 나타났다.

Biomaterials toward Future Medicine

  • Sakurai, Yasuhisa
    • 대한의용생체공학회:의공학회지
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    • 제7권2호
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    • pp.117-118
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    • 1986
  • It is well known that nonlinear propagation characteristics of the wave in the tissue may give very useful information for the medical diagnoisis. In this paper, a new method to detect nonlinear propagation characteristics of the internal vibration in the tissue for the low frequency mechanical vibration by using bispectral analysis is proposed. In the method, low frequency vibration of f0( = 100Hz) is applied on the surface of the object, and the waveform of the internal vibration x (t) is measured from Doppler frequency modulation of silmultaneously transmitted probing ultrasonic waves. Then, the bispectra of the signal x (t) at the frequencies (f0, f0) and (f0, 2f0) are calculated to estimate the nonlinear propagation characteristics as their magnitude ratio, w here since bispectrum is free from the gaussian additive noise we can get the value with high S/N. Basic experimental system is constructed by using 3.0 MHz probing ultrasonic waves and the several experiments are carried out for some phantoms. Results show the superiority of the proposed method to the conventional method using power spectrum and also its usefulness for the tissue characterization.

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Preparation of PHBV/Collagen Nanofibrous Mats and their Tissue Compatibility Compatibilscaffolds for tissue engineering

  • Meng, Wan;Kim, Se-Yong;Yuan, Jiang;Kim, Jung-Chul;Kwon, Oh-Hyeong;Ito, Yoshihiro;Kang, Inn-Kyu
    • 한국고분자학회:학술대회논문집
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    • 한국고분자학회 2006년도 IUPAC International Symposium on Advanced Polymers for Emerging Technologies
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    • pp.50-51
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    • 2006
  • The nanofibrous scaffolds were obtained by co-electrospinning PHBV and collagen Type I in HIFP. The resulting fiber diameters were in the range between 300 and 600 nm. The nanofiber surfaces were characterized by ATR-FTIR, ESCA and AFM. The PHBV and collagen components of the PHBV-Col nanofibrous scaffold were biodegraded by PHB depolymerase and a collagenase Type I aqueous solution, respectively. It was found, from the cell-culture experiment, that the PHBV-Col nanofibrous scaffold accelerated the adhesion of the NIH 3T3 cell compared to the PHBV nanofibrous scaffold, thus showing a good tissue engineering scaffold.

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Tissue and Immune Responses on Implanted Nanostructured Biomaterials

  • Khang, Dong-Woo;Kang, Sang-Soo;Nam, Tae-Hyun
    • 한국재료학회:학술대회논문집
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    • 한국재료학회 2009년도 춘계학술발표대회
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    • pp.47.1-47.1
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    • 2009
  • Nanostructured biomaterials have increased those potential for utilizing in many medical applications. In this study, benefit of nanotechnology for the response with biological targets will be described in terms of size, effective surface area and surface energy (physical aspect). Also, correlations between physical and biological interactions (greater protein adsorption on nano surface roughness) will be discussed for understanding biocompatibility of nanostructured biomaterials including carbon nanotube composites and nanostructured titanium surfaces. In the application parts, various major tissue cells, such as bone, cartilage, vascular and bladder cell responses will be discussed with suggested nanomaterials. Lastly, immune responses with macrophage (adhesion and several major cytokines) on nanostructured biomaterials will be described for evasive immune response.

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생체내 체적선택 자기공명분광법 OSIRIS 기법의 연구 (A Study of OSIRIS Technique in in vivo Localized NMR Spectroscopy)

  • 이윤;임태환;문치웅;이대근;오창현
    • 대한의용생체공학회:학술대회논문집
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    • 대한의용생체공학회 1993년도 추계학술대회
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    • pp.63-66
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    • 1993
  • Localized NMR spectra were obtained from phantom by OSIRIS technique. The selected volume, which can be controlled by frequency and its bandwidth, was 0.125cc out of 25cc and free of contamination from outer volume. With this technique NMR spectrum of a living tissue can be obtained without biopsy. i.e. in vivo state in which the metabolism of tissue may be quite different from in in vitro state. It is expected of this technique to be useful in the study of metabolism of living tissue as well as in diagnosis of deseases.

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An Optimized Mass-spring Model with Shape Restoration Ability Based on Volume Conservation

  • Zhang, Xiaorui;Wu, Hailun;Sun, Wei;Yuan, Chengsheng
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제14권4호
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    • pp.1738-1756
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    • 2020
  • To improve the accuracy and realism of the virtual surgical simulation system, this paper proposes an optimized mass-spring model with shape restoration ability based on volume conservation to simulate soft tissue deformation. The proposed method constructs a soft tissue surface model that adopts a new flexion spring for resisting bending and incorporates it into the mass-spring model (MSM) to restore the original shape. Then, we employ the particle swarm optimization algorithm to achieve the optimal solution of the model parameters. Besides, the volume conservation constraint is applied to the position-based dynamics (PBD) approach to maintain the volume of the deformable object for constructing the soft tissue volumetric model base on tetrahedrons. Finally, we built a simulation system on the PHANTOM OMNI force tactile interaction device to realize the deformation simulation of the virtual liver. Experimental results show that the proposed model has a good shape restoration ability and incompressibility, which can enhance the deformation accuracy and interactive realism.