• Title/Summary/Keyword: 인공지지체

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Application of Biosystems Engineering to Tissue Engineering - Electrospining Technology to Fabricate Scaffolds for Bioartificial Organs - (생체조직공학에 바이오시스템공학의 응용 -인공장기용 지지체 제조를 위한 전기방사기술 -)

  • 정종훈
    • Journal of Biosystems Engineering
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    • v.29 no.4
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    • pp.367-374
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    • 2004
  • 2004년부터 본 학회지의 명칭이 바이오시스템 공학으로 바뀌었으나, 바이오시스템 공학의 분야가 명확하게 정의되지 않은 채 사용되고 있는 것 같다. 필자가 이를 정의하자면 바이오시스템 공학은 식물자원, 동물자원, 식품 등의 농업생명공학과 의료생명공학을 포함한 생물산업 분야에 필요한 생물, 기계, 전기 및 전자 등의 공학적 기술을 제공하고 다루는 응용공학이라 할 수 있다. 이에 바이오시스템 공학을 인공장기와 생체조직을 제조하는 생체조직공학의 한 분야에 응용하는 예로서, 인공생체조직용 나노단위 지지체(scaffold) 제조에 사용하는 전기방사기술과 그 시스템을 소개하고자 한다.(중략)

나노 크기의 생체 재료를 이용한 골 재생 촉진용 지지체의 제작 및 특성 평가

  • Heo, Su-Jin;Jie, Wei;Kim, Dong-Hwa;Lee, Si-U;Kim, Seung-Eon;Sin, Jeong-Uk
    • Proceedings of the Materials Research Society of Korea Conference
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    • 2009.05a
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    • pp.46.1-46.1
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    • 2009
  • 우리 몸의 뼈를 재료적인 측면으로 보면, 주로 나노 크기의 콜라겐과 아파타이트로 이루어 져 있는 복합체이다. 때문에 최근 생체 모사적인 측면에서 나노 크기의 생체 활성 재료를 이용하여 골 재생 촉진이 우수한 지지체를 제작하고자 하는 많은 연구 들이 진행되고 있다. 이러한 나노 크기의 재료는 일반적인 마이크로 크기의 생체 재료에 비해 표면적이 월등히 크기 때문에 생체 활성 (bioactivity)이 우수하다고 알려져 있으며, 이를 골 재생용 지지체의 구성 재료로 사용하였을 경우 기계적 강도 또한 향상 시킬 수 있다고 알려져 있다. 따라서 본 연구에서는 나노 크기의 HA, CaSiO3 등 다양한 나노 생체 활성 입자들을 침전법 (precipitation method)을 통하여 제조하였으며, 이를 이용하여 골 재생 촉진을 위한 3차원 지지체를 제조 하였다. 또한 기존의 마이크로 크기의 생체 재료로 제작된 지지체와의 생물학적, 기계학적 비교 평가를 통하여 나노크기의 재료의 우수성을 입증하고자 하였다. 결론적으로, 나노 크기의 재료로 제작된 골 재생용 지지체의 경우 기존의 마이크로 크기의 재료로 제작된 지지체보다 골세포의 부착, 증식 및 분화능이 우수하였고, 지지체의 기계적 강도 또한 향상됨을 알 수 있었다. 이를 통하여 나노 크기의 생체 활성재료는 골 재생 촉진을 위한 지지체 제작에 응용 가능성이 높음을 확인 할 수 있었다.

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The development of biodegradable resin for scaffold fabrication using micro-stereolithography and curing characteristics analysis of the resin (마이크로 광 조형기술을 이용한 인공지지체의 제작을 위한 생분해성 수지의 개발 및 경화 특성 파악)

  • Lee J.W.;Cho D.W.
    • Proceedings of the Korean Society of Precision Engineering Conference
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    • 2006.05a
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    • pp.147-148
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    • 2006
  • A research on scaffold fabrication has been progressed in many research groups. However, the mechanical properties of existing biodegradable materials are still not satisfactory. But, PPF (poly (propylene fumarate)) has a good mechanical property in comparison to other biodegradable materials. Nevertheless, the viscosity of the synthesized PPF is too high to fabricate structures using micro-stereolithography. Therefore, the viscosity of the resin was made low by adding the diethyl fumarate and this material could be used in micro-stereolithography apparatus. Then, a photoinitiator was added for photo crosslinking of the DEF/PPF resin. 2.5D and 3D scaffolds were fabricated our system and curing characteristics of the resin were analyzed through the experiment.

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Development of Artificial Vessels with Autologous Bone Marrow Cells and Polymers (자기 골수세포와 고분자 폴리머를 이용한 인공 혈관의 개발)

  • Choi, Jin-Wook;Lim, Sang-Hyun;Hong, You-Sun;Kim, Byung-Soo
    • Journal of Chest Surgery
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    • v.41 no.2
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    • pp.160-169
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    • 2008
  • Bakcground: To treat anastomosis site stenosis and occlusion of the artificial vessels used in vascular surgery, tissue-engineered artificial vessels using autologous cells have been constructed. We developed artificial vessels using a polymer scaffold and autologous bone marrow cells and performed an in vivo evaluation. Material and Method: We manufactured a vascular scaffold using biodegradable PLCL (poly lactide-co-${\varepsilon}$-caprolactone) and PGA (poly glycolic acid) fibers. Then we seeded autologous bone marrow cells onto the scaffold. After implantation of the artificial vessel into the abdominal aorta, we performed an angiography 3 weeks after surgery. After the dogs were euthanized we retrieved the artificial vessels and performed histological analysis. Result: Among the six dogs, 2 dogs died of massive bleeding due to a crack in the vascular scaffold 10 days after the operation. The remaining four dogs lived for 3 weeks after the operation. In these dogs. the angiography revealed no stenosis or occlusion at 3 weeks after the operation. Gross examination revealed small thrombi on the inner surface of the vessels and the histological analysis showed three layers of vessel structure similar to the native vessel. Immunohistochemical analysis demonstrated regeneration of the endothelial and smooth muscle cell layers. Conclusion: A tissue engineered vascular graft was manufactured using a polymer scaffold and autologous bone marrow cells that had a structure similar to that of the native artery. Further research is needed to determine how to accommodate the aortic pressure.

Design and Fabrication of Nasal-Implant-Shaped Scaffold and Regeneration of Nasal Cartilage Tissue for Rhinoplasty (코 성형을 위한 코 보형물 형태의 인공지지체 설계 및 제작과 코 연골조직의 재생)

  • Jung, Jin-Woo;Jang, Jin-Ah;Shim, Jin-Hyung;Kim, Sung-Won;Cho, Dong-Woo
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.36 no.11
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    • pp.1111-1117
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    • 2012
  • Implants for rhinoplasty should ideally be biocompatible and possess long-term stability after implantation. Silicone implants are most widely used for rhinoplasty. However, these implants suffer from problems related to high extrusion and infection rates. To minimize these complications, we propose a novel augmentation rhinoplasty technique using tissue engineering. To demonstrate its feasibility, a nasal-implant-shaped scaffold was designed using commercialized CAD software and fabricated using a Multi-head Deposition System, which is a solid freeform fabrication system that dispenses material. In vitro cell proliferation and chondrogenic differentiation tests were carried out using nasal septal chondrocytes.

Fabrication and characterization of porous hydroxyapatite scaffolds with PMMA addition using tertiary-butyl alcohol based freeze casting method (삼차부틸알코올 기반 동결주조 공정을 이용한 PMMA 첨가 다공질 수산화아파타이트 지지체의 제조 및 특성 평가)

  • Kim, Tae-Rim;Yoon, Seog-Young;Heo, Jin-Young;Lee, Chi-Seung
    • Journal of the Korean Crystal Growth and Crystal Technology
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    • v.27 no.5
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    • pp.235-242
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    • 2017
  • In order to prepare porous scaffolds capable of pore control, PMMA powder serving as a pore-forming agent was added to HA powder to synthesize a slurry containing TBA as a solvent. And then, porous HA scaffolds where pillarshaped pore channels interconnected with each other were fabricated by freeze-casting and sintering. The crystal structure of the HA scaffolds according to the addition amount of PMMA powder was measured by XRD and the surface and inner cross section of the scaffolds were analyzed through SEM. It was found that removal of PMMA during sintering affects the internal structure of the scaffolds and the crystallinity of the HA powder. Furthermore, through evaluating the physical and mechanical properties of the scaffolds, it was confirmed that the porosity, pore size and compressive strength can be controlled by controlling the addition amount of the pore-forming agent. It was also found that the HA scaffolds produced in this study were similar in structure and properties to the natural cancellous bone. This suggests that porous HA scaffolds with PMMA can be used as an alternative to autogenous bone for tissue engineering as an artificial bone scaffold.

Three-Dimensional Printed 3D Structure for Tissue Engineering (3 차원 프린팅 기술로 제작된 조직공학용 3 차원 구조체)

  • Park, Jeong Hun;Jang, Jinah;Cho, Dong-Woo
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.38 no.10
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    • pp.817-829
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    • 2014
  • One of the main issues in tissue engineering has been the development of a three-dimensional (3D) structure, which is a temporary template that provides the structural support and microenvironment necessary for cell growth and differentiation into the target tissue. In tissue engineering, various biomaterials and their processing techniques have been applied for the fabrication of 3D structures. In particular, 3D printing technology enables the fabrication of a complex inner/outer architecture using a computer-aided design and manufacturing (CAD/CAM) system, and it has been widely applied to the fabrication of 3D structures for tissue engineering. Novel cell/organ printing techniques based on 3D printing have also been developed for the fabrication of a biomimetic structure with various cells and biomaterials. This paper presents a comprehensive review of the functional scaffold and cell-printed structures based on 3D printing technology and the application of this technology to various kinds of tissues regeneration.