Biomedical Engineering Reference
In-Depth Information
138. Tse JR, Engler AJ (2011) Stiffness gradients mimicking in vivo tissue variation regulate
mesenchymal stem cell fate. Plos One 6:e15978
139. Vejrazka M, Micek R, Stipek S (2005) Apocynin inhibits NADPH oxidase in phagocytes
but stimulates ROS production in non-phagocytic cells. Biochim Biophys Acta 1722:
143-147
140. Vigier S, Helary C, Fromigue O et al (2010) Collagen supramolecular and suprafibrillar
organizations on osteoblasts long-term behavior: Benefits for bone healing materials.
J Biomed Mater Res A 94:556-567
141. Vocus/PRWEB (2011) Global orthopedic instrumentation market to exceed US$47 billion by
2015, according to a new report by Global Industry Analysts. Retrieved 28.6.2011, 2011, from
http://www.prweb.com/releases/orthopedic_products/instrumentation/prweb8072105.htm
142. Vrana NE, Dupret A, Coraux C et al (2011) Hybrid titanium/biodegradable polymer
implants with an hierarchical pore structure as a means to control selective cell movement.
Plos One 6:e20480
143. Wachem vPB, Vreriks CM, Beugeling T et al (1987) The influence of protein adsorption on
interactions of cultured human endothelial cells with polymers. J Biomed Mater Res
21:701-718
144. Walboomers XF, Elder SE, Bumgardner JD et al (2006) Hydrodynamic compression of
young and adult rat osteoblast-like cells on titanium fiber mesh. J Biomed Mater Res A
76:16-24
145. Wallace DG, Rosenblatt J (2003) Collagen gel systems for sustained delivery and tissue
engineering. Adv Drug Deliv Rev 55:1631-1649
146. Wang L, Sun J, Horvat M et al (1996) Evaluation of MTS, XTT, MTT and 3HTdR
incorporation for assessing hepatocyte density, viablility and proliferation. Methods Cell Sci
18:249-255
147. Wang IE, Shan J, Choi R et al (2007) Role of osteoblast-fibroblast interactions in the
formation of the ligament-to-bone interface. J Orthop Res 25:1609-1620
148. Wang P, Henning SM, Heber D (2010) Limitations of MTT and MTS-based assays for
measurement of antiproliferative activity of green tea polyphenols. Plos One 5:e10202
149. Warheit DB, Sayes CM, Reed KL (2009) Nanoscale and fine zinc oxide particles: Can in
vitro assays accurately forecast lung hazards following inhalation exposures? Environ Sci
Technol 43:7939-7945
150. Webster TJ, Schadler LS, Siegel RW et al (2001) Mechanisms of enhanced osteoblast
adhesion on nanophase alumina involve vitronectin. Tissue Eng 7:291-301
151. Wein F, Tobler U, Brose C et al (2010) The development of a triple-celltype system (TCS)
that mimics the bone environment to study cell-cell-cell interactions/competition and
biocompatibility. Eur Cells Mater 20 Suppl 1:51
152. Wick P, Manser P, Spohn P et al (2006) In vitro evaluation of possible adverse effect of
nanosized materials. Physica Status Solidi 243:3556-3560
153. Wick P, Manser P, Limbach LK et al (2007) The degree and kind of agglomeration affect
carbon nanotube cytotoxicity. Toxicol Lett 168:121-131
154. Wilkinson A, Hewitt RN, McNamara LE et al (2011) Biomimetic microtopography to
enhance osteogenesis in vitro. Acta Biomater 7:2919-2925
155. Williams DF (2008) On the mechanisms of biocompatibility. Biomaterials 29:2941-2953
156. Xu L-C, Siedlecki CA (2007) Effects of surface wettability and contact time on protein
adhesion to biomaterial surfaces. Biomaterials 28:3273-3283
157. Yamazaki K, Ikeda T, Isono T et al (2011) Selective adsorption of protein molecules on
phase-separated sapphire surfaces. J Colloid Interface Sci (epub ehead of print)
158. Yang H, Liu C, Yang D et al (2009) Comparative study of cytotoxicity, oxidative stress and
genotoxicity induced by four typical nanomaterials: the role of particle size, shape and
composition. Appl Toxicol 29:69-78
159. Yeung T, Georges PC, Flanagan LA et al (2005) Effects of substrate stiffness on cell
morphology, cytoskeletal structure, and adhesion. Cell Motil Cytoskeleton 60:24-34
Search WWH ::




Custom Search