现在的位置:主页 > 期刊导读 >

3D biofabrication of vascular networks for(11)

来源:现代制造技术与装备 【在线投稿】 栏目:期刊导读 时间:2020-10-28

【作者】网站采编

【关键词】

【摘要】[14],T.Chang,,et al.,Analyzing biological performance of 3D-printed,cell-impregnated hybrid constructs for cartilage tissue engineering,Tissue Eng.Part C Methods 22(2016)173–188. [15]F.You,X.Wu,N.Zh

[14],T.Chang,,et al.,Analyzing biological performance of 3D-printed,cell-impregnated hybrid constructs for cartilage tissue engineering,Tissue Eng.Part C Methods 22(2016)173–188.

[15]F.You,X.Wu,N.Zhu,et al.,3D printing of porous cell-laden hydrogel constructs for potential applications in cartilage tissue engineering,ACS (2016)1200–1210.

[16]M.Sarker,,,et al.,Influence of ionic crosslinkers(Ca2+/Ba2+/Zn2+)on the mechanical and biological properties of 3D bioplotted hydrogel scaffolds,(2018)1126–1154.

[17]T.Xu,W.Zhao,J.-M.Zhu,et al.,Complex heterogeneous tissue constructs containing multiple cell types prepared by inkjet printing technology,Biomaterials 34(2013)130–139.

[18]X.Cui,T.Boland,Human microvasculature fabrication using thermal inkjet printing technology,Biomaterials 30(2009)6221–6227.

[19],,,Hydrogel microfabrication technology toward three dimensional tissue engineering,(2016)45–57.

[20], Ravari,,et al.,Numerical investigation of the mechanical properties of the additive manufactured bone scaffolds fabricated by FDM:the effect of layer penetration and post-heating,(2016)241–250.

[21],,M.T.Yang,et al.,Rapid casting of patterned vascular networks for perfusable engineered three-dimensional tissues,(2012)768–774.

[22],,,et al.,3D bioprinting of vascularized,heterogeneous cell‐laden tissue constructs,(2014)3124–3130.

[23]Y.Zhang,Y.Yu,H.Chen,et al.,Characterization of printable cellular microfluidic channels for tissue engineering,Biofabrication 5(2013)0.

[24],M.Sarker,,et al.,Dispensing-based bioprinting of mechanically-functional hybrid scaffolds with vessel-like channels for tissue engineering applications–a brief review,(2018)298–314.

[25]Y.Zhang,Y.Yu,,Direct bioprinting of vessel-like tubular microfluidic channels,(2013)0.

[26]Y.Luo,A.Lode,,Direct plotting of three‐dimensional hollow fiber scaffolds based on concentrated alginate pastes for tissue engineering,(2013)777–783.

[27]Y.Yu,Y.Zhang,,et al.,Evaluation of cell viability and functionality in vessel-like bioprintable cell-laden tubular channels,(2013).

[28],Yin Yu,Bioprinting toward organ fabrication:challenges and future trends,IEEE (2013)691–699.

[29]Q.Gao,Y.He,J.Z.Fu,et al.,Coaxial nozzle-assisted 3D bioprinting with builtin microchannels for nutrients delivery,Biomaterials 61(2015)203–215,

[30],,,et al.,Scaffold-free vascular tissue engineering using bioprinting,Biomaterials 30(2009)5910–5917.

[31]N.Sadr,M.Zhu,T.Osaki,et al.,SAM-based cell transfer to photopatterned hydrogels for microengineering vascular-like structures,Biomaterials 32(2011)7479–7490.

[32]R.Gaebel,N.Ma,J.Liu,et al.,Patterning human stem cells and endothelial cells with laser printing for cardiac regeneration,Biomaterials 32(2011)9218–9230.

[33],,,et al.,Laser‐guided direct writing for three‐dimensional tissue engineering,(2005)129–136.

[34],J.Feijen,,A review on stereolithography and its applications in biomedical engineering,Biomaterials 31(2010)6121–6130.

[35],D.Samson,W.Pratt,et al.,Surgical planning using threedimensional imaging and computer modeling, Am.27(1994)875–889.

[36]R.Gauvin,Y.-C.Chen,J.W.Lee,et al.,Microfabrication of complex porous tissue engineering scaffolds using 3D projection stereolithography,Biomaterials 33(2012)3824–3834.

[37],X.Qu,P.Soman,et al.,Rapid fabrication of complex 3D extracellular microenvironments by dynamic optical projection stereolithography,(2012)4266–4270.

[38],X.Qin,Z.Li,et al.,Hydrogels for two‐photon polymerization:a toolbox for mimicking the extracellular matrix,(2013)4542–4554.

[39]J.W.Lee,G.Ahn,D.S.Kim,et al.,Development of nano-and microscale composite 3D scaffolds using PPF/DEF-HA and micro-stereolithography,(2009)1465–1467.

[40]J.F.Xing,,X.M.Duan,Two-photon polymerization microfabrication of hydrogels:an advanced 3D printing technology for tissue engineering and drug delivery,(2015)5031–5039.

[41],J.Coburn,,et al.,Laser-based three-dimensional multiscale micropatterning of biocompatible hydrogels for customized tissue engineering scaffolds, 112(2015)–.

[42]W.Meyer,,,et al.,Soft polymers for building up small and smallest blood supplying systems by stereolithography,(2012)257–268.

[43],S.Schlie,,et al.,Two‐photon polymerization technique for microfabrication of CAD‐designed 3D scaffolds from commercially available photosensitive materials,J.Tissue (2007)443–449.

[44]X.Zheng,H.Lee,,et al.,Ultralight,ultrastiff mechanical metamaterials,Science(80-)344(2014)1373–1377.

[45]C.P.Ng,C.-L.E.Helm,,Interstitial flow differentially stimulates blood and lymphatic endothelial cell morphogenesis in vitro,(2004)258–264.

[46]A.Ueda,M.Koga,M.Ikeda,et al.,Effect of shear stress on microvessel network formation of endothelial cells with in vitro three-dimensional model,(2004)H994–H1002.

[47],R.Sudo,M.Ikeda,et al.,Effects of the mechanical properties of collagen gel on the in vitro formation of microvessel networks by endothelial cells,Tissue Eng.13(2007)1443–1453.

文章来源:《现代制造技术与装备》 网址: http://www.xdzzjsyzb.cn/qikandaodu/2020/1028/666.html

上一篇:不锈钢复合板甲醇分离器制造
下一篇:探讨智能制造技术和智能化工厂

现代制造技术与装备投稿 | 现代制造技术与装备编辑部| 现代制造技术与装备版面费 | 现代制造技术与装备论文发表 | 现代制造技术与装备最新目录
Copyright © 2018 《现代制造技术与装备》杂志社 版权所有
投稿电话: 投稿邮箱: