• 제목/요약/키워드: Bioactive scaffolds

검색결과 28건 처리시간 0.022초

조직공학적 연골재생을 위한 In Vitro 환경에서의 탈미네랄화 골분용액을 함유한 PLGA 지지체의 효과 (Effect of PLGA Scaffold Containing Demineralized Bone Solution for Articular Cartilage Tissue Engineering: In Vitro Test)

  • 안우영;김혜린;송정은;이동원;강길선
    • 폴리머
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    • 제35권6호
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    • pp.499-504
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    • 2011
  • 본 연구팀은 탈미네랄화 골분(DBP)이라는 천연재료를 졸(sol)화시켜 poly(lactide-co-glycolide) (PLGA)에 함침시킨 지지체를 개발하였다. DBP를 함침시킨 PLGA 지지체 상의 세포증식과 모폴로지를 평가하기 위해 MTT 분석과 SEM을 측정하였다. 또한 sGAG와 콜라겐 함량 측정과 파종된 연골 세포의 표현형 유지에 미치는 영향을 확인하였다. 그 결과 PLGA에 DBP를 함침시킨 지지체가 PLGA 지지체보다 높은 세포 증식률을 보였다. 또한 파종된 연골세포의 표현형 유지에도 긍정적인 영향을 미치는 것을 확인하였다. 이번 연구 결과를 토대로 PLGA에 DBP를 이용한 용액을 함침시킴으로써 DBP내의 성장인자와의 상호작용을 통해 연골세포의 성장에 긍정적 영향을 미쳐 안정되게 연골을 조직화할 수 있는 연골조직공학 지지체로 적합할 것으로 예상된다.

조직공학적 골재생을 위한 탈미넬화된 골분을 함유한 다공성 지지체의 제조 및 그 특성 (Preparation and Characterization of Demineralized Bone Particle-loaded PLGA Scaffold for Tissue Engineered Bone)

  • 장지욱;이봉;한창환;김문석;조선행;이해방;강길선
    • 폴리머
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    • 제28권5호
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    • pp.382-390
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    • 2004
  • 생체적합성 천연재료 중 하나인 탈미네랄화된 골분 (demineralized bone particle, DBP)은 골형성단백질 (BMP)을 함유하고 있어 골수간엽줄기세포 (BMSCs)의 분화를 유도한다. 본 연구에서는 DBP를 함유한 폴리 락타이드 (PLA)와 락타이드-글리콜라이드 공중합체 (PLGA) 다공성 지지체를 용매 캐스팅/염추출법으로 제조하였고, 수은다공측정계 및 전자주사현미경을 이용하여 특성결정 하였다. BMSCs는 골분화 배지를 이용하여 조골세포로 분화시켜 Wright-Giemsa, Alizarin red, von Kossa 및 ALP 염색으로 확인하였다. DBP가 함유된 지지체와 DBP가 함유되지 않은 지지체에 BMSCs를 파종한 후 면역결핍 누드마우스의 피하에 삽입하여 이들의 골형성 정도를 비교하여 보았다. 제조한 지지체의 다공도는 $90.2\%$ 이상이었고 평균 다공크기도 69.1$\mu$m 이상이었다. BMSCs는 Wright-Giemsa, Alizarin red, von Kossa 및 ALP 염색결과 조골세포로 분화가 가능했으며, 동물실험을 수행한 결과 DBP가 함유된 지지체에서 칼슘침착 영역을 확인할 수 있었지만 DBP가 함유되지 않은 지지체에서는 칼슘침착 영역을 확인하지 못하였다. 결론적으로 DBP를 함유한 지지체에서 DBP와 BMSCs가 골형성에 중요한 요인으로 작용한다고 사료된다.

Three-dimensional bio-printing and bone tissue engineering: technical innovations and potential applications in maxillofacial reconstructive surgery

  • Salah, Muhja;Tayebi, Lobat;Moharamzadeh, Keyvan;Naini, Farhad B.
    • Maxillofacial Plastic and Reconstructive Surgery
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    • 제42권
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    • pp.18.1-18.9
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    • 2020
  • Background: Bone grafting has been considered the gold standard for hard tissue reconstructive surgery and is widely used for large mandibular defect reconstruction. However, the midface encompasses delicate structures that are surrounded by a complex bone architecture, which makes bone grafting using traditional methods very challenging. Three-dimensional (3D) bioprinting is a developing technology that is derived from the evolution of additive manufacturing. It enables precise development of a scaffold from different available biomaterials that mimic the shape, size, and dimension of a defect without relying only on the surgeon's skills and capabilities, and subsequently, may enhance surgical outcomes and, in turn, patient satisfaction and quality of life. Review: This review summarizes different biomaterial classes that can be used in 3D bioprinters as bioinks to fabricate bone scaffolds, including polymers, bioceramics, and composites. It also describes the advantages and limitations of the three currently used 3D bioprinting technologies: inkjet bioprinting, micro-extrusion, and laserassisted bioprinting. Conclusions: Although 3D bioprinting technology is still in its infancy and requires further development and optimization both in biomaterials and techniques, it offers great promise and potential for facial reconstruction with improved outcome.

In Vitro and In Vivo Evaluation of Composite Scaffold of BCP, Bioglass and Gelatin for Bone Tissue Engineering

  • Kim, Woo Seok;Nath, Subrata Deb;Bae, Jun Sang;Padalhin, Andrew;Kim, Boram;Song, Myeong Jin;Min, Young Ki
    • 한국재료학회지
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    • 제24권6호
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    • pp.310-318
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    • 2014
  • In this experiment, a highly porous scaffold of biphasic calcium phosphate (BCP) was prepared using the spongereplica method. The BCP scaffold was coated with 58S bioactive glass (BG) and sintered for a second time. The resulting scaffold was coated with gelatin (Gel) and cross-linked with [3-(3-dimethyl aminopropyl) carbodiimide] and N-Hydroxysuccinamide (EDC-NHS). The initial average pore size of the scaffold ranged from 300 to $700{\mu}m$, with more than 85 % porosity. The coating of BG and Gel had a significant effect on the scaffold-pore size, decreasing scaffold porosity while increasing mechanical strength. The material and surface properties were evaluated by means of several experiments involving scanning electron microscopy (SEM), energy-dispersive X-ray (EDX) and X-ray diffraction (XRD). Cytotoxicity was evaluated using MTT assay and confocal imaging of MC3T3-E1 pre-osteoblast cells cultured in vitro. Three types of scaffold (BCP, BCP-BG and BCP-BG-Gel) were implanted in a rat skull for in vivo evaluation. After 8 weeks of implantation, bone regeneration occurred in all three types of sample. Interestingly, regeneration was found to be greater (geometrically and physiologically) for neat BCP scaffolds than for two other kinds of composite scaffolds. However, the other two types of scaffolds were still better than the control (i.e., defect without treatment).

Induction of Angiogenesis by Matrigel Coating of VEGF-Loaded PEG/PCL-Based Hydrogel Scaffolds for hBMSC Transplantation

  • Jung, Yeon Joo;Kim, Kyung-Chul;Heo, Jun-Young;Jing, Kaipeng;Lee, Kyung Eun;Hwang, Jun Seok;Lim, Kyu;Jo, Deog-Yeon;Ahn, Jae Pyoung;Kim, Jin-Man;Huh, Kang Moo;Park, Jong-Il
    • Molecules and Cells
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    • 제38권7호
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    • pp.663-668
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    • 2015
  • hBMSCs are multipotent cells that are useful for tissue regeneration to treat degenerative diseases and others for their differentiation ability into chondrocytes, osteoblasts, adipocytes, hepatocytes and neuronal cells. In this study, biodegradable elastic hydrogels consisting of hydrophilic poly(ethylene glycol) (PEG) and hydrophobic poly(${\varepsilon}$-caprolactone) (PCL) scaffolds were evaluated for tissue engineering because of its biocompatibility and the ability to control the release of bioactive peptides. The primary cultured cells from human bone marrow are confirmed as hBMSC by immunohistochemical analysis. Mesenchymal stem cell markers (collagen type I, fibronectin, CD54, $integrin1{\beta}$, and Hu protein) were shown to be positive, while hematopoietic stem cell markers (CD14 and CD45) were shown to be negative. Three different hydrogel scaffolds with different block compositions (PEG:PCL=6:14 and 14:6 by weight) were fabricated using the salt leaching method. The hBMSCs were expanded, seeded on the scaffolds, and cultured up to 8 days under static conditions in Iscove's Modified Dulbecco's Media (IMDM). The growth of MSCs cultured on the hydrogel with PEG/PCL= 6/14 was faster than that of the others. In addition, the morphology of MSCs seemed to be normal and no cytotoxicity was found. The coating of the vascular endothelial growth factor (VEGF) containing scaffold with Matrigel slowed down the release of VEGF in vitro and promoted the angiogenesis when transplanted into BALB/c nude mice. These results suggest that hBMSCs can be supported by a biode gradable hydrogel scaffold for effective cell growth, and enhance the angiogenesis by Matrigel coating.

SIS/PLGA 담체와 근육유래 줄기세포를 이용한 생체조직공학적 골재생 (Effects of SIS/PLGA Porous Scaffolds and Muscle-Derived Stem Cell on the Formation of Tissue Engineered Bone)

  • 김순희;윤선중;장지욱;김문석;강길선;이해방
    • 폴리머
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    • 제30권1호
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    • pp.14-21
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    • 2006
  • 조직공학 기술은 in vitro와 in vivo에서 초기 세포 부착과 차후의 조직형성을 위해 3차원적인 지지체로서 다공성의 생분해성 담체의 사용이 필수적이다. 소장점막하조직(small intestinal submucosa, SIS)은 고유의 인장력과 생체적합성 때문에 생체물질로서 사용될 잠재력을 가지고 있는 콜라겐 조직이다. 근육유래 줄기세포는 배양조건에 따라 골세포, 연골세포, 및 근육세포 등으로 분화가 가능하다고 알려져 있다. 본 연구에서는 SIS를 함유한 락타이드-글리콜라이드 공중합체(PLGA) 다공성 지지체를 용매캐스팅/염추출법으로 제조하였고, 전자주사현미경 및 수은다공측정계를 이용하여 특성을 결정하였다 세포의 생존율과 성장률은 MTT(3-(4,5-dimethylthiazole-2-yl)-2,5-diphenyltetrazolium-bromide) 분석 방법을 이용하였고 골로 분화된 세포를 알칼라인 포스파테이즈(ALP) 활성을 측정하여 확인하였다. SIS가 함유된 지지체와 SIS가 함유되지 않은 지지체를 면역결핍 쥐의 피하에 삽입하여 이들의 골형성 정도를 비교하여 보았다. 조직을 파라핀으로 고정시켜 슬라이드를 제조한 후 hematoxylin과 eosin, 트라이크롬 및 본쿠사 염색을 실시하였다. 천연/합성 하이브리드 담체로서의 SIS/PLGA 담체가 PLGA 단독으로 사용하였을 때와 비교하여 볼 때 골형성이 우수하였는데 이는 SIS 내에 함유하고 있는 여러 생체활성분자에 기인한 것으로 추측되었다.

SIS로 개질된 PLGA 담체에서의 단백질의 서방화 (Sustained Release of Proteins Using Small Intestinal Submucosa Modified PLGA Scaffold)

  • 고연경;최명규;김순희;김근아;이해방;이종문;강길선
    • 폴리머
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    • 제32권3호
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    • pp.199-205
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    • 2008
  • 단백질 및 펩타이드의 서방형 약물전달체로서 소장점막하조직(SIS)으로 개질된 PLGA 담체를 제조하고자 하였으며, SIS/PLGA 담체는 용매 캐스팅/염 추출법에 의해 준비된 PLGA 담체에 SIS 용액을 첨가하여 단순 함침방법으로 제조하였다. 본 실험에서 사용된 돼지의 소장 점막층에서 유래된 SIS는 면역거부반응이 적어 생체재료로 널리 사용되고 있다. 제조된 PLGA 및 SIS/PLGA 담체를 SEM을 통한 표면 및 내부 관찰결과 두 담체 모두 열린 다공구조를 이루며, 특히 SIS/PLGA 담체는 PLGA 담체의 다공 내부에 SIS가 침투되어 작은 네트워크를 형성하고 있음을 확인하였다. 또한 단백질의 방출경향을 확인하기 위하여 형광이 결합된 소 혈청 알부민(FITC-BSA)을 PLGA 및 SIS/PLGA 담체에 담지시킨 후, 형광광도계를 통해 이들의 방출거동을 확인하였다. PLGA 담체와 비교할 때 SIS/PLGA 담체에서의 BSA의 방출은 초기방출량이 적고 지속적으로 일정량이 방출되는 거동을 확인할 수 있었으며 함량별 BSA 농도에 따른 SIS/PLGA 담체에서의 방출은 BSA의 양이 증가할수록 빠르고 많은 양이 방출되는 경향성 있는 방출패턴을 보임을 확인하였다. 결론적으로 PLGA 담체에 침투한 SIS 젤이 BSA의 급격한 초기방출을 억제하며, SIS로 개질된 PLGA 담체는 방출조절이 가능한 약물전달체로서 매우 유용할 것으로 사료된다.

Biomimetic Electrospun Fibers for Tissue Engineering Applications

  • 신흥수
    • 한국재료학회:학술대회논문집
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    • 한국재료학회 2011년도 추계학술발표대회
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    • pp.2.2-2.2
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    • 2011
  • The central strategy in tissue engineering involves a biomaterial scaffold as a delivery carrier of cells and a depot to deliver bioactive molecules. The ability of scaffolds to control cellular response to direct particular repair and regeneration processes is essential to obtain functional tissue engineering constructs. Therefore, many efforts have been made to understand local interactions of cells with their extracellular matrix (ECM) microenvironment and exploit these interactions for designing an ideal scaffold mimicking the chemical, physiological, and structural features of native ECM. ECM is composed of a number of biomacromolecules including proteins, glycosaminoglycans, and proteoglycans, which are assembled together to form complex 3-dimensional network. Electrospinning is a process to generate highly porous 3-dimensional fibrous structure with nano to micro scaled-diameter, which can closely mimic the structure of ECM. In this presentation, our approaches to develop biomimetic electrospun fibers for modulation of cell function will be discussed.

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Biomedical Application of Silk Sericin: Recent Research Trend

  • Seong-Gon Kim;Je-Yong Choi;HaeYong Kweon
    • International Journal of Industrial Entomology and Biomaterials
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    • 제48권1호
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    • pp.1-12
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    • 2024
  • Silk sericin, a natural protein from silkworm cocoons, is emerging as a multifunctional biomaterial in biomedicine, particularly in tissue engineering and wound healing. Recent studies have highlighted its biocompatibility, biodegradability, and potential for chemical modification, which allows it to be incorporated into various scaffold architectures. This review article synthesizes current research, including the development of sericin-based hydrogel scaffolds for tissue engineering and sericin's role in enhancing wound healing. Key findings demonstrate sericin's ability to refine scaffold porosity and mechanical strength, expedite tissue healing, and reduce bacterial load in wounds. The integration of sericin into novel bioactive dressings and its use in peripheral nerve injury repair are also discussed, showcasing its adaptability and efficacy. The convergence of these studies illustrates the broad applications of sericin, from scaffold design to clinical interventions, making it a promising material in regenerative medicine and tissue engineering, with the potential to improve patient outcomes significantly.

Injectable hydrogels delivering therapeutic agents for disease treatment and tissue engineering

  • Lee, Jin Hyun
    • 생체재료학회지
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    • 제22권4호
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    • pp.235-248
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    • 2018
  • Background: Injectable hydrogels have been extensively researched for the use as scaffolds or as carriers of therapeutic agents such as drugs, cells, proteins, and bioactive molecules in the treatment of diseases and cancers and the repair and regeneration of tissues. It is because they have the injectability with minimal invasiveness and usability for irregularly shaped sites, in addition to typical advantages of conventional hydrogels such as biocompatibility, permeability to oxygen and nutrient, properties similar to the characteristics of the native extracellular matrix, and porous structure allowing therapeutic agents to be loaded. Main body: In this article, recent studies of injectable hydrogel systems applicable for therapeutic agent delivery, disease/cancer therapy, and tissue engineering have reviewed in terms of the various factors physically and chemically contributing to sol-gel transition via which gels have been formed. The various factors are as follows: several different non-covalent interactions resulting in physical crosslinking (the electrostatic interactions (e.g., the ionic and hydrogen bonds), hydrophobic interactions, ${\pi}$-interactions, and van der Waals forces), in-situ chemical reactions inducing chemical crosslinking (the Diels Alder click reactions, Michael reactions, Schiff base reactions, or enzyme-or photo-mediated reactions), and external stimuli (temperatures, pHs, lights, electric/magnetic fields, ultrasounds, or biomolecular species (e.g., enzyme)). Finally, their applications with accompanying therapeutic agents and notable properties used were reviewed as well. Conclusion: Injectable hydrogels, of which network morphology and properties could be tuned, have shown to control the load and release of therapeutic agents, consequently producing significant therapeutic efficacy. Accordingly, they are believed to be successful and promising biomaterials as scaffolds and carriers of therapeutic agents for disease and cancer therapy and tissue engineering.