Femtosecond laser ablation enhances cell infiltration into three-dimensional electrospun scaffolds.
暂无分享,去创建一个
Jian Yu | Aijun Wang | Costas Grigoropoulos | C. Grigoropoulos | Aijun Wang | Song Li | Jian Yu | H. Jeon | Hojeong Jeon | Song Li | Zhiqiang Yan | Benjamin Li-Ping Lee | Benjamin L. Lee | Zhiqiang Yan | Jian Yu | Benjamin L. Lee
[1] Silvano Sozzani,et al. The chemokine system in diverse forms of macrophage activation and polarization. , 2004, Trends in immunology.
[2] A. Tünnermann,et al. Femtosecond, picosecond and nanosecond laser ablation of solids , 1996 .
[3] R. W. Tock,et al. Electrospinning of nanofibers , 2005 .
[4] Lauran R. Madden,et al. Proangiogenic scaffolds as functional templates for cardiac tissue engineering , 2010, Proceedings of the National Academy of Sciences.
[5] Kerry A. Daly,et al. Macrophage phenotype as a predictor of constructive remodeling following the implantation of biologically derived surgical mesh materials. , 2012, Acta biomaterialia.
[6] Hae Woon Choi,et al. Structuring electrospun polycaprolactone nanofiber tissue scaffolds by femtosecond laser ablation , 2007 .
[7] Benjamin Chu,et al. Antithrombogenic property of bone marrow mesenchymal stem cells in nanofibrous vascular grafts , 2007, Proceedings of the National Academy of Sciences.
[8] William P King,et al. Hot embossing for micropatterned cell substrates. , 2004, Biomaterials.
[9] David G Simpson,et al. Nanofiber technology: designing the next generation of tissue engineering scaffolds. , 2007, Advanced drug delivery reviews.
[10] Cato T Laurencin,et al. Electrospun nanofibrous structure: a novel scaffold for tissue engineering. , 2002, Journal of biomedical materials research.
[11] Buddy D. Ratner,et al. Biomaterials with tightly controlled pore size that promote vascular in-growth , 2004 .
[12] S. Badylak,et al. Macrophage phenotype as a determinant of biologic scaffold remodeling. , 2008, Tissue engineering. Part A.
[13] M. Kotaki,et al. Systematic parameter study for ultra-fine fiber fabrication via electrospinning process , 2005 .
[14] Krishnendu Roy,et al. Laser-layered microfabrication of spatially patterned functionalized tissue-engineering scaffolds. , 2005, Journal of biomedical materials research. Part B, Applied biomaterials.
[15] A. Khademhosseini,et al. Controlling the porosity of fibrous scaffolds by modulating the fiber diameter and packing density. , 2011, Journal of biomedical materials research. Part A.
[16] Jennifer S. Park,et al. The effect of matrix stiffness on the differentiation of mesenchymal stem cells in response to TGF-β. , 2011, Biomaterials.
[17] Seeram Ramakrishna,et al. Potential of nanofiber matrix as tissue-engineering scaffolds. , 2005, Tissue engineering.
[18] B. Pourdeyhimi,et al. Laser Ablation Imparts Controlled Micro-Scale Pores in Electrospun Scaffolds for Tissue Engineering Applications , 2011, Annals of Biomedical Engineering.
[19] Hanry Yu,et al. Cellular responses to a nanofibrous environment , 2006 .
[20] Younan Xia,et al. Electrospinning of Nanofibers: Reinventing the Wheel? , 2004 .
[21] J. Olerud,et al. Epidermal and dermal integration into sphere-templated porous poly(2-hydroxyethyl methacrylate) implants in mice. , 2010, Journal of biomedical materials research. Part A.
[22] Hae Woon Choi,et al. Micropatterning and characterization of electrospun poly(ε‐caprolactone)/gelatin nanofiber tissue scaffolds by femtosecond laser ablation for tissue engineering applications , 2011, Biotechnology and bioengineering.
[23] C. Grigoropoulos. Transport in Laser Microfabrication: Fundamentals and Applications , 2009 .
[24] Buddy D Ratner,et al. Degradable, thermo-sensitive poly(N-isopropyl acrylamide)-based scaffolds with controlled porosity for tissue engineering applications. , 2010, Biomacromolecules.
[25] Song Li,et al. Antithrombogenic Modification of Small-Diameter Microfibrous Vascular Grafts , 2010, Arteriosclerosis, thrombosis, and vascular biology.
[26] Ross A. Marklein,et al. The potential to improve cell infiltration in composite fiber-aligned electrospun scaffolds by the selective removal of sacrificial fibers. , 2008, Biomaterials.
[27] Marc M. Takeno,et al. Quantifying the effect of pore size and surface treatment on epidermal incorporation into percutaneously implanted sphere-templated porous biomaterials in mice. , 2011, Journal of biomedical materials research. Part A.
[28] A. Mikos,et al. Electrospinning of polymeric nanofibers for tissue engineering applications: a review. , 2006, Tissue engineering.
[29] Sudha Agarwal,et al. Improved cellular infiltration in electrospun fiber via engineered porosity. , 2007, Tissue engineering.
[30] Buddy D. Ratner,et al. A paradigm shift: biomaterials that heal , 2007 .
[31] Benjamin Chu,et al. Functional electrospun nanofibrous scaffolds for biomedical applications. , 2007, Advanced drug delivery reviews.
[32] Casey K. Chan,et al. Degradation of electrospun nanofiber scaffold by short wave length ultraviolet radiation treatment and its potential applications in tissue engineering. , 2008, Tissue engineering. Part A.