Additive Manufacturing of Patient-Customizable Scaffolds for Tubular Tissues Using the Melt-Drawing Method
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Wai Yee Yeong | Shu Beng Tor | Yu Jun Tan | Xipeng Tan | W. Yeong | S. Tor | X. Tan | Y. Tan
[1] M. Budoff,et al. Normal thoracic aorta diameter on cardiac computed tomography in healthy asymptomatic adults: impact of age and gender. , 2008, Academic radiology.
[2] F. Han,et al. Cellular modulation by the elasticity of biomaterials. , 2016, Journal of materials chemistry. B.
[3] S. Ramakrishna,et al. Electrospinning of nano/micro scale poly(L-lactic acid) aligned fibers and their potential in neural tissue engineering. , 2005, Biomaterials.
[4] K. Leong,et al. Solid freeform fabrication of three-dimensional scaffolds for engineering replacement tissues and organs. , 2003, Biomaterials.
[5] K. Leong,et al. Solvent-free fabrication of three dimensionally aligned polycaprolactone microfibers for engineering of anisotropic tissues , 2012, Biomedical Microdevices.
[6] S. Ramakrishna,et al. Tubular Tissues and Organs of Human Body--Challenges in Regenerative Medicine. , 2016, Journal of nanoscience and nanotechnology.
[7] J. Kenny,et al. Synthesis and characterization of PCL–PLLA polyurethane with shape memory behavior , 2013 .
[8] Shoufeng Yang,et al. Extrusion-based additive manufacturing of PEEK for biomedical applications , 2015 .
[9] Margam Chandrasekaran,et al. Comparison of drying methods in the fabrication of collagen scaffold via indirect rapid prototyping. , 2007, Journal of biomedical materials research. Part B, Applied biomaterials.
[10] Lay Poh Tan,et al. Micropatterned matrix directs differentiation of human mesenchymal stem cells towards myocardial lineage. , 2010, Experimental cell research.
[11] C. Chua,et al. Geometry dependence of microstructure and microhardness for selective electron beam-melted Ti–6Al–4V parts , 2016 .
[12] Wai Yee Yeong,et al. Laser and electron‐beam powder‐bed additive manufacturing of metallic implants: A review on processes, materials and designs , 2016, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[13] Werner Goldsmith,et al. Axial mechanical properties of fresh human cerebral blood vessels. , 2003, Journal of biomechanical engineering.
[14] Jinquan Ding,et al. Observation of normal appearance and wall thickness of esophagus on CT images. , 2009, European journal of radiology.
[15] Wai Yee Yeong,et al. Concentric bioprinting of alginate-based tubular constructs using multi-nozzle extrusion-based technique , 2015 .
[16] E. Bolson,et al. Lumen Diameter of Normal Human Coronary Arteries: Influence of Age, Sex, Anatomic Variation, and Left Ventricular Hypertrophy or Dilation , 1992, Circulation.
[17] M. Curto,et al. A method to design biomimetic scaffolds for bone tissue engineering based on Voronoi lattices , 2016 .
[18] W. Yeong,et al. Fabrication and in vitro analysis of tubular scaffolds by melt-drawing for esophageal tissue engineering , 2015 .
[19] W. Yeong,et al. Characterization, mechanical behavior and in vitro evaluation of a melt-drawn scaffold for esophageal tissue engineering. , 2016, Journal of the mechanical behavior of biomedical materials.
[20] F. Senatov,et al. Mechanical properties and shape memory effect of 3D-printed PLA-based porous scaffolds. , 2016, Journal of the mechanical behavior of biomedical materials.
[21] May Win Naing,et al. Polyelectrolyte gelatin-chitosan hydrogel optimized for 3D bioprinting in skin tissue engineering , 2016 .
[22] Diego Mantovani,et al. Small-diameter vascular tissue engineering , 2013, Nature Reviews Cardiology.
[23] B. Gupta,et al. Seamless vascularized large-diameter tubular collagen scaffolds reinforced with polymer knittings for esophageal regenerative medicine. , 2014, Tissue engineering. Part C, Methods.
[24] N. L'Heureux,et al. Mechanical properties of completely autologous human tissue engineered blood vessels compared to human saphenous vein and mammary artery. , 2009, Biomaterials.
[25] W. Yeong,et al. State-of-the-art review on selective laser melting of ceramics , 2013 .
[26] Jiankang He,et al. Electrohydrodynamic printing: a potential tool for high-resolution hydrogel/cell patterning , 2016 .
[27] M. Sefton,et al. Tissue engineering. , 1998, Journal of cutaneous medicine and surgery.
[28] P. Koomsap,et al. Environmental effects in fibre fabrication using electrospinning-based rapid prototyping , 2015 .
[29] A. Seifalian,et al. A potential platform for developing 3D tubular scaffolds for paediatric organ development , 2015, Journal of Materials Science: Materials in Medicine.
[30] Chee Kai Chua,et al. Revealing martensitic transformation and α/β interface evolution in electron beam melting three-dimensional-printed Ti-6Al-4V , 2016, Scientific Reports.
[31] Ali Khademhosseini,et al. Microfluidic chip-based fabrication of PLGA microfiber scaffolds for tissue engineering. , 2008, Langmuir : the ACS journal of surfaces and colloids.
[32] Katrin Hegenscheid,et al. Mean thoracic aortic wall thickness determination by cine MRI with steady-state free precession: validation with dark blood imaging. , 2013, Academic radiology.
[33] Mohamed M Ibrahim,et al. Mitigation of hypertrophic scar contraction via an elastomeric biodegradable scaffold. , 2015, Biomaterials.
[34] Casey K Chan,et al. Long-term viability of coronary artery smooth muscle cells on poly(l-lactide-co-ε-caprolactone) nanofibrous scaffold indicates its potential for blood vessel tissue engineering , 2008, Journal of The Royal Society Interface.
[35] Bohn Stafleu van Loghum,et al. Online … , 2002, LOG IN.
[36] A. Coran,et al. Esophageal replacement. , 2017, Seminars in pediatric surgery.
[37] W. Yeong,et al. Engineering functionally graded tissue engineering scaffolds. , 2008, Journal of the mechanical behavior of biomedical materials.
[38] Janis Gardovskis,et al. Biomechanical properties of oesophagus wall under loading. , 2003, Journal of biomechanics.
[39] Doris A Taylor,et al. Long-term changes to in vitro preserved bioengineered human trachea and their implications for decellularized tissues. , 2012, Biomaterials.
[40] M. Chan-Park,et al. Esophageal epithelium regeneration on fibronectin grafted poly(L-lactide-co-caprolactone) (PLLC) nanofiber scaffold. , 2007, Biomaterials.
[41] Paolo De Coppi,et al. Tissue engineered human tracheas for in vivo implantation. , 2010, Biomaterials.
[42] C. Chua,et al. Effect of gas plasma on polycaprolactone (PCL) membrane wettability and collagen type I immobilized for enhancing cell proliferation , 2016 .
[43] B. Kuo,et al. Esophagus - anatomy and development , 2006 .
[44] W. Yeong,et al. Selective laser melting of stainless steel 316L with low porosity and high build rates , 2016 .
[45] Chee Kai Chua,et al. Porous polycaprolactone scaffold for cardiac tissue engineering fabricated by selective laser sintering. , 2010, Acta biomaterialia.
[46] A. Higuchi,et al. Biomimetic cell culture proteins as extracellular matrices for stem cell differentiation. , 2012, Chemical reviews.
[47] Jae Hyung Lee,et al. On-demand, parallel droplet merging method with non-contact droplet pairing in droplet-based microfluidics , 2016 .
[48] Brian Derby,et al. Characterizing the elastic properties of tissues. , 2011, Materials today.
[49] C. Chua,et al. Smooth Muscle Cell Alignment and Phenotype Control by Melt Spun Polycaprolactone Fibers for Seeding of Tissue Engineered Blood Vessels , 2015, International journal of biomaterials.
[50] Wai Yee Yeong,et al. A preliminary model of time-pressure dispensing system for bioprinting based on printing and material parameters , 2015 .
[51] I. Rivero,et al. Effect of cryomilling times on the resultant properties of porous biodegradable poly(e-caprolactone)/poly(glycolic acid) scaffolds for articular cartilage tissue engineering. , 2014, Journal of the mechanical behavior of biomedical materials.
[52] W. Yeong,et al. Biodegradable Polymeric Films and Membranes Processing and Forming for Tissue Engineering , 2015 .
[53] W. Yeong,et al. Characterization and evaluation of 3D printed microfluidic chip for cell processing , 2016 .
[54] K. Chian,et al. Regenerative medicine for oesophageal reconstruction after cancer treatment. , 2015, The Lancet. Oncology.