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214. Sun, G., & Chu, C.-C. (2006). Synthesis, characterization of biodegradable dextran-allyl
isocyanate-ethylamine/polyethylene glycol-diacrylate hydrogels and their in vitro release of
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215. Sun, G., Shen, Y.-I., Ho, C. C., Kusuma, S., & Gerecht, S. (2009). Functional groups affect
physical and biological properties of dextran-based hydrogels. Journal of Biomedical
Materials Research Part A, 93(3), 1080–1090.
216. Sun, G. M., Zhang, X. Z., & Chu, C. C. (2007). Formulation and characterization of chitosan-based hydrogel films having both temperature and pH sensitivity. Journal of Materials
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217. Tajima, R., Kawaguchi, N., Horino, Y., Takahashi, Y., Toriyama, K., Inou, K., et al. (2001).
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219. Timmermans, F., Plum, J., Yoder, M. C., Ingram, D. A., Vandekerckhove, B., & Case, J.
(2009). Endothelial progenitor cells: Identity defined? Journal of Cellular and Molecular
Medicine, 13(1), 87–102.
220. Toh, Y. C., Zhang, C., Zhang, J., Khong, Y. M., Chang, S., Samper, V. D., et al. (2007). A
novel 3D mammalian cell perfusion-culture system in microfluidic channels. Lab on a Chip,
7(3), 302–309.
221. Toole, B. P. (2001). Hyaluronan in morphogenesis. Seminars in Cell & Developmental
Biology, 12(2), 79–87.
222. Toole, B. P. (2004). Hyaluronan: From extracellular glue to pericellular cue. Nature Reviews.
Cancer, 4(7), 528–539.
223. Tsai, A. G., Johnson, P. C., & Intaglietta, M. (2003). Oxygen gradients in the microcirculation. Physiological Reviews, 83(3), 933–963.
224. Tsang, K. M., Hyun, J. S., Cheng, K. T., Vargas, M., Mehta, D., Ushio-Fukai, M., et al.
(2017). Embryonic stem cell differentiation to functional arterial endothelial cells through
sequential activation of ETV2 and NOTCH1 signaling by HIF1 alpha. Stem Cell Reports,
9(3), 796–806.
225. Urbich, C., & Dimmeler, S. (2004). Endothelial progenitor cells: Characterization and role in
vascular biology. Circulation Research, 95(4), 343–353.
226. Urbich, C., Heeschen, C., Aicher, A., Sasaki, K., Bruhl, T., Farhadi, M. R., et al. (2005).
Cathepsin L is required for endothelial progenitor cell-induced neovascularization. Nature
Medicine, 11(2), 206–213.
227. Ushio-Fukai, M., & Nakamura, Y. (2008). Reactive oxygen species and angiogenesis:
NADPH oxidase as target for cancer therapy. Cancer Letters, 266(1), 37–52.
228. Vega, S. L., Kwon, M. Y., Song, K. H., Wang, C., Mauck, R. L., Han, L., et al. (2018).
Combinatorial hydrogels with biochemical gradients for screening 3D cellular microenvironments. Nature Communications, 9, 10.
229. Vo, E., Hanjaya-Putra, D., Zha, Y., Kusuma, S., & Gerecht, S. (2010). Smooth-muscle-like
cells derived from human embryonic stem cells support and augment cord-like structures in
vitro. Stem Cell Reviews, 6, 237–247.
230. Walls, J. R., Coultas, L., Rossant, J., & Henkelman, R. M. (2008). Three-dimensional analysis of vascular development in the mouse embryo. PLoS One, 3(8), e2853.
231. Walter, D. H., Rittig, K., Bahlmann, F. H., Kirchmair, R., Silver, M., Murayama, T., et al.
(2002). Statin therapy accelerates reendothelialization: A novel effect involving mobilization
and incorporation of bone marrow-derived endothelial progenitor cells. Circulation, 105(25),
3017–3024.
232. Wanjare, M., Kusuma, S., & Gerecht, S. (2014). Defining differences among perivascular
cells derived from human pluripotent stem cells. Stem Cell Reports, 2(5), 561–575.
233. Ward, J. P. (2008). Oxygen sensors in context. Biochimica et Biophysica Acta, 1777(1), 1–14.
M. R. Blatchley et al.
214. Sun, G., & Chu, C.-C. (2006). Synthesis, characterization of biodegradable dextran-allyl
isocyanate-ethylamine/polyethylene glycol-diacrylate hydrogels and their in vitro release of
albumin. Carbohydrate Polymers, 65(3), 273–287.
215. Sun, G., Shen, Y.-I., Ho, C. C., Kusuma, S., & Gerecht, S. (2009). Functional groups affect
physical and biological properties of dextran-based hydrogels. Journal of Biomedical
Materials Research Part A, 93(3), 1080–1090.
216. Sun, G. M., Zhang, X. Z., & Chu, C. C. (2007). Formulation and characterization of chitosan-based hydrogel films having both temperature and pH sensitivity. Journal of Materials
Science. Materials in Medicine, 18(8), 1563–1577.
217. Tajima, R., Kawaguchi, N., Horino, Y., Takahashi, Y., Toriyama, K., Inou, K., et al. (2001).
Hypoxic enhancement of type IV collagen secretion accelerates adipose conversion of 3T3L1 fibroblasts. Biochimica et Biophysica Acta, 1540(3), 179–187.
218. Thurston, G., Suri, C., Smith, K., McClain, J., Sato, T. N., Yancopoulos, G. D., et al. (1999).
Leakage-resistant blood vessels in mice transgenically overexpressing angiopoietin-1.
Science, 286(5449), 2511–2514.
219. Timmermans, F., Plum, J., Yoder, M. C., Ingram, D. A., Vandekerckhove, B., & Case, J.
(2009). Endothelial progenitor cells: Identity defined? Journal of Cellular and Molecular
Medicine, 13(1), 87–102.
220. Toh, Y. C., Zhang, C., Zhang, J., Khong, Y. M., Chang, S., Samper, V. D., et al. (2007). A
novel 3D mammalian cell perfusion-culture system in microfluidic channels. Lab on a Chip,
7(3), 302–309.
221. Toole, B. P. (2001). Hyaluronan in morphogenesis. Seminars in Cell & Developmental
Biology, 12(2), 79–87.
222. Toole, B. P. (2004). Hyaluronan: From extracellular glue to pericellular cue. Nature Reviews.
Cancer, 4(7), 528–539.
223. Tsai, A. G., Johnson, P. C., & Intaglietta, M. (2003). Oxygen gradients in the microcirculation. Physiological Reviews, 83(3), 933–963.
224. Tsang, K. M., Hyun, J. S., Cheng, K. T., Vargas, M., Mehta, D., Ushio-Fukai, M., et al.
(2017). Embryonic stem cell differentiation to functional arterial endothelial cells through
sequential activation of ETV2 and NOTCH1 signaling by HIF1 alpha. Stem Cell Reports,
9(3), 796–806.
225. Urbich, C., & Dimmeler, S. (2004). Endothelial progenitor cells: Characterization and role in
vascular biology. Circulation Research, 95(4), 343–353.
226. Urbich, C., Heeschen, C., Aicher, A., Sasaki, K., Bruhl, T., Farhadi, M. R., et al. (2005).
Cathepsin L is required for endothelial progenitor cell-induced neovascularization. Nature
Medicine, 11(2), 206–213.
227. Ushio-Fukai, M., & Nakamura, Y. (2008). Reactive oxygen species and angiogenesis:
NADPH oxidase as target for cancer therapy. Cancer Letters, 266(1), 37–52.
228. Vega, S. L., Kwon, M. Y., Song, K. H., Wang, C., Mauck, R. L., Han, L., et al. (2018).
Combinatorial hydrogels with biochemical gradients for screening 3D cellular microenvironments. Nature Communications, 9, 10.
229. Vo, E., Hanjaya-Putra, D., Zha, Y., Kusuma, S., & Gerecht, S. (2010). Smooth-muscle-like
cells derived from human embryonic stem cells support and augment cord-like structures in
vitro. Stem Cell Reviews, 6, 237–247.
230. Walls, J. R., Coultas, L., Rossant, J., & Henkelman, R. M. (2008). Three-dimensional analysis of vascular development in the mouse embryo. PLoS One, 3(8), e2853.
231. Walter, D. H., Rittig, K., Bahlmann, F. H., Kirchmair, R., Silver, M., Murayama, T., et al.
(2002). Statin therapy accelerates reendothelialization: A novel effect involving mobilization
and incorporation of bone marrow-derived endothelial progenitor cells. Circulation, 105(25),
3017–3024.
232. Wanjare, M., Kusuma, S., & Gerecht, S. (2014). Defining differences among perivascular
cells derived from human pluripotent stem cells. Stem Cell Reports, 2(5), 561–575.
233. Ward, J. P. (2008). Oxygen sensors in context. Biochimica et Biophysica Acta, 1777(1), 1–14.
M. R. Blatchley et al.
