Biomedical Engineering Reference
In-Depth Information
[79]
Harrison BS and A Atala (2007). Carbon nanotube applications for tissue engineering.
Biomaterials 28: 344-353.
[80]
Wang SF, L Shen, WD Zhang and YJ Tong (2005). Preparation and mechanical properties of
chitosan/carbon nanotubes composites. Biomacromolecules 6: 3067-3072.
[81]
MacDonald RA, BF Laurenzi, G Viswanathan, PM Ajayan and JP Stegemann (2005).
Collagen-carbon nanotube composite materials as scaffolds in tissue engineering. Journal of
Biomedical Materials Research Part A 74A: 489-496.
[82]
Correa-Duarte MA, N Wagner, J Rojas-Chapana, C Morsczeck, M Thie and M Giersig (2004).
Fabrication and biocompatibility of carbon nanotube-based 3D networks as scaffolds for cell
seeding and growth. Nano Letters 4: 2233-2236.
[83]
Abarrategi A, MC Gutiérrez, C Moreno-Vicente, MJ Hortigüela, V Ramos, JL López-Lacomba,
ML Ferrer and F del Monte (2008). Multiwall carbon nanotube scaffolds for tissue engineering
purposes. Biomaterials 29: 94-102.
[84]
Hu H, Y Ni, V Montana, RC Haddon and V Parpura (2004). Chemically functionalized carbon
nanotubes as substrates for neuronal growth. Nano Letters 4: 507-511.
[85]
Gabay T, E Jakobs, E Ben-Jacob and Y Hanein (2005). Engineered self-organization of neural
networks using carbon nanotube clusters. Physica A: Statistical Mechanics and its Applications
350: 611-621.
[86]
Supronowicz PR, PM Ajayan, KR Ullmann, BP Arulanandam, DW Metzger and R Bizios
(2002). Novel current-conducting composite substrates for exposing osteoblasts to alternating
current stimulation. Journal of Biomedical Materials Research 59: 499-506.
[87]
Besteman K, JO Lee, FGM Wiertz, HA Heering and C Dekker (2003). Enzyme-coated carbon
nanotubes as single-molecule biosensors. Nano Letters 3: 727-730.
[88]
Oh S, KS Brammer, YJ Li, D Teng, AJ Engler, S Chien and S Jin (2009). Stem cell fate dictated
solely by altered nanotube dimension. Proceedings of the National Academy of Sciences of the
USA 106: 2130-2135.
[89]
Fukumori K, Y Akiyama, M Yamato, J Kobayashi, K Sakai and T Okano (2009). Temperature-
responsive glass coverslips with an ultrathin poly (N-isopropylacrylamide) layer. Acta Biomaterialia
5: 470-476.
[90]
Akiyama Y, A Kikuchi, M Yamato and T Okano (2004). Ultrathin poly (N-isopropylacrylamide)
grafted layer on polystyrene surfaces for cell adhesion/detachment control. Langmuir 20:
5506-5511.
[91]
Kikuchi A and T Okano (2005). Nanostructured designs of biomedical materials: applications
of cell sheet engineering to functional regenerative tissues and organs. Journal of Controlled
Release 101: 69-84.
[92]
Shen Z, J Bi, B Shi, D Nguyen, CJ Xian, H Zhang and S Dai (2012). Exploring thermal reversible
hydrogels for stem cell expansion in three-dimensions. Soft Matter 8: 7250-7257.
[93]
Shen Z, A Mellati, J Bi, H Zhang and S Dai (2014). A thermally responsive cationic nanogel-
based platform for three-dimensional cell culture and recovery. RSC Advances 4: 29146-29156.
Search WWH ::




Custom Search