107
2. Abaci, H. E., Devendra, R., Smith, Q., Gerecht, S., & Drazer, G. (2012). Design and development of microbioreactors for long-term cell culture in controlled oxygen microenvironments.
Biomedical Microdevices, 14(1), 145–152.
3. Abaci, H. E., Shen, Y. I., Tan, S., & Gerecht, S. (2014). Recapitulating physiological and
pathological shear stress and oxygen to model vasculature in health and disease. Scientific
Reports, 4, 9.
4. Abbott, J. D., Huang, Y., Liu, D., Hickey, R., Krause, D. S., & Giordano, F. J. (2004). Stromal
cell-derived factor-1 alpha plays a critical role in stem cell recruitment to the heart after myocardial infarction but is not sufficient to induce homing in the absence of injury. Circulation,
110(21), 3300–3305.
5. Adelman, D. M., Maltepe, E., & Simon, M. C. (1999). Multilineage embryonic hematopoiesis requires hypoxic ARNT activity. Genes & Development, 13(19), 2478–2483.
6. Adler, M., Polinkovsky, M., Gutierrez, E., & Groisman, A. (2010). Generation of oxygen
gradients with arbitrary shapes in a microfluidic device. Lab on a Chip, 10(3), 388–391.
7. Airley, R., Loncaster, J., Davidson, S., Bromley, M., Roberts, S., Patterson, A., et al. (2001).
Glucose transporter glut-1 expression correlates with tumor hypoxia and predicts metastasisfree survival in advanced carcinoma of the cervix. Clinical Cancer Research, 7(4), 928–934.
8. Akita, T., Murohara, T., Ikeda, H., Sasaki, K., Shimada, T., Egami, K., et al. (2003). Hypoxic
preconditioning augments efficacy of human endothelial progenitor cells for therapeutic neovascularization. Laboratory Investigation, 83(1), 65–73.
9. Albina, J. E., Mastrofrancesco, B., Vessella, J. A., Louis, C. A., Henry Jr., W. L., & Reichner,
J. S. (2001). HIF-1 expression in healing wounds: HIF-1alpha induction in primary inflammatory cells by TNF-alpha. American Journal of Physiology. Cell Physiology, 281(6),
C1971–C1977.
10. Almany, L., & Seliktar, D. (2005). Biosynthetic hydrogel scaffolds made from fibrinogen and
polyethylene glycol for 3D cell cultures. Biomaterials, 26(15), 2467–2477.
11. Artuc, M., Hermes, B., Steckelings, U. M., Grutzkau, A., & Henz, B. M. (1999). Mast cells
and their mediators in cutaneous wound healing--active participants or innocent bystanders?
Experimental Dermatology, 8(1), 1–16.
12. Asahara, T., & Kawamoto, A. (2004). Endothelial progenitor cells for postnatal vasculogenesis. American Journal of Physiology. Cell Physiology, 287(3), C572–C579.
13. Asahara, T., Masuda, H., Takahashi, T., Kalka, C., Pastore, C., Silver, M., et al. (1999). Bone
marrow origin of endothelial progenitor cells responsible for postnatal vasculogenesis in
physiological and pathological neovascularization. Circulation Research, 85(3), 221–228.
14. Astrof, S., Crowley, D., & Hynes, R. O. (2007). Multiple cardiovascular defects caused by
the absence of alternatively spliced segments of fibronectin. Developmental Biology, 311(1),
11–24.
15. Au, P., Tam, J., Fukumura, D., & Jain, R. K. (2008). Bone marrow derived mesenchymal stem
cells facilitate engineering of long-lasting functional vasculature. Blood, 111(9), 4551–4558.
16. Au, P., Daheron, L. M., Duda, D. G., Cohen, K. S., Tyrrell, J. A., Lanning, R. M., et al.
(2008). Differential in vivo potential of endothelial progenitor cells from human umbilical
cord blood and adult peripheral blood to form functional long-lasting vessels. Blood, 111(3),
1302–1305.
17. Band, M., Joel, A., Hernandez, A., & Avivi, A. (2009). Hypoxia-induced BNIP3 expression
and mitophagy: In vivo comparison of the rat and the hypoxia-tolerant mole rat, spalax ehrenbergi. FASEB Journal, 23(7), 2327–2335.
18. Banerjee, S. D., & Toole, B. P. (1992). Hyaluronan-binding protein in endothelial cell morphogenesis. Journal of Cell Biology, 119(3), 643–652.
19. Bekker, A., Holland, H. D., Wang, P. L., Rumble 3rd, D., Stein, H. J., Hannah, J. L., et al.
(2004). Dating the rise of atmospheric oxygen. Nature, 427(6970), 117–120.
20. Bellot, G., Garcia-Medina, R., Gounon, P., Chiche, J., Roux, D., Pouyssegur, J., et al.
(2009). Hypoxia-induced autophagy is mediated through hypoxia-inducible factor induction
of BNIP3 and BNIP3L via their BH3 domains. Molecular and Cellular Biology, 29(10),
2570–2581.
4 Hypoxia and Matrix Manipulation for Vascular Engineering
2. Abaci, H. E., Devendra, R., Smith, Q., Gerecht, S., & Drazer, G. (2012). Design and development of microbioreactors for long-term cell culture in controlled oxygen microenvironments.
Biomedical Microdevices, 14(1), 145–152.
3. Abaci, H. E., Shen, Y. I., Tan, S., & Gerecht, S. (2014). Recapitulating physiological and
pathological shear stress and oxygen to model vasculature in health and disease. Scientific
Reports, 4, 9.
4. Abbott, J. D., Huang, Y., Liu, D., Hickey, R., Krause, D. S., & Giordano, F. J. (2004). Stromal
cell-derived factor-1 alpha plays a critical role in stem cell recruitment to the heart after myocardial infarction but is not sufficient to induce homing in the absence of injury. Circulation,
110(21), 3300–3305.
5. Adelman, D. M., Maltepe, E., & Simon, M. C. (1999). Multilineage embryonic hematopoiesis requires hypoxic ARNT activity. Genes & Development, 13(19), 2478–2483.
6. Adler, M., Polinkovsky, M., Gutierrez, E., & Groisman, A. (2010). Generation of oxygen
gradients with arbitrary shapes in a microfluidic device. Lab on a Chip, 10(3), 388–391.
7. Airley, R., Loncaster, J., Davidson, S., Bromley, M., Roberts, S., Patterson, A., et al. (2001).
Glucose transporter glut-1 expression correlates with tumor hypoxia and predicts metastasisfree survival in advanced carcinoma of the cervix. Clinical Cancer Research, 7(4), 928–934.
8. Akita, T., Murohara, T., Ikeda, H., Sasaki, K., Shimada, T., Egami, K., et al. (2003). Hypoxic
preconditioning augments efficacy of human endothelial progenitor cells for therapeutic neovascularization. Laboratory Investigation, 83(1), 65–73.
9. Albina, J. E., Mastrofrancesco, B., Vessella, J. A., Louis, C. A., Henry Jr., W. L., & Reichner,
J. S. (2001). HIF-1 expression in healing wounds: HIF-1alpha induction in primary inflammatory cells by TNF-alpha. American Journal of Physiology. Cell Physiology, 281(6),
C1971–C1977.
10. Almany, L., & Seliktar, D. (2005). Biosynthetic hydrogel scaffolds made from fibrinogen and
polyethylene glycol for 3D cell cultures. Biomaterials, 26(15), 2467–2477.
11. Artuc, M., Hermes, B., Steckelings, U. M., Grutzkau, A., & Henz, B. M. (1999). Mast cells
and their mediators in cutaneous wound healing--active participants or innocent bystanders?
Experimental Dermatology, 8(1), 1–16.
12. Asahara, T., & Kawamoto, A. (2004). Endothelial progenitor cells for postnatal vasculogenesis. American Journal of Physiology. Cell Physiology, 287(3), C572–C579.
13. Asahara, T., Masuda, H., Takahashi, T., Kalka, C., Pastore, C., Silver, M., et al. (1999). Bone
marrow origin of endothelial progenitor cells responsible for postnatal vasculogenesis in
physiological and pathological neovascularization. Circulation Research, 85(3), 221–228.
14. Astrof, S., Crowley, D., & Hynes, R. O. (2007). Multiple cardiovascular defects caused by
the absence of alternatively spliced segments of fibronectin. Developmental Biology, 311(1),
11–24.
15. Au, P., Tam, J., Fukumura, D., & Jain, R. K. (2008). Bone marrow derived mesenchymal stem
cells facilitate engineering of long-lasting functional vasculature. Blood, 111(9), 4551–4558.
16. Au, P., Daheron, L. M., Duda, D. G., Cohen, K. S., Tyrrell, J. A., Lanning, R. M., et al.
(2008). Differential in vivo potential of endothelial progenitor cells from human umbilical
cord blood and adult peripheral blood to form functional long-lasting vessels. Blood, 111(3),
1302–1305.
17. Band, M., Joel, A., Hernandez, A., & Avivi, A. (2009). Hypoxia-induced BNIP3 expression
and mitophagy: In vivo comparison of the rat and the hypoxia-tolerant mole rat, spalax ehrenbergi. FASEB Journal, 23(7), 2327–2335.
18. Banerjee, S. D., & Toole, B. P. (1992). Hyaluronan-binding protein in endothelial cell morphogenesis. Journal of Cell Biology, 119(3), 643–652.
19. Bekker, A., Holland, H. D., Wang, P. L., Rumble 3rd, D., Stein, H. J., Hannah, J. L., et al.
(2004). Dating the rise of atmospheric oxygen. Nature, 427(6970), 117–120.
20. Bellot, G., Garcia-Medina, R., Gounon, P., Chiche, J., Roux, D., Pouyssegur, J., et al.
(2009). Hypoxia-induced autophagy is mediated through hypoxia-inducible factor induction
of BNIP3 and BNIP3L via their BH3 domains. Molecular and Cellular Biology, 29(10),
2570–2581.
4 Hypoxia and Matrix Manipulation for Vascular Engineering
