Oh Hwan Hee, Lu Hongxu, Kawazoe Naoki, Chen Guoping
a Tissue Regeneration Materials Unit, International Center for Materials Nanoarchitectonics, National Institute for Materials Science , 1-1 Namiki , Tsukuba , Ibaraki , 305-0044 , Japan.
J Biomater Sci Polym Ed. 2012;23(17):2185-95. doi: 10.1163/092050611X611693. Epub 2012 May 8.
Successful regeneration of large and highly functionalized tissue and organs depends on the ability to guide blood vessel formation with three-dimensional scaffolds. Angiogenic growth factors have the potential to stimulate blood vessels in scaffolds. However, simply incorporating angiogenic growth factors in a random fashion may lead to uncontrolled blood vessel generation, which ultimately results in poor blood vessel network function and uneven growth of engineered tissue. To control and guide the formation of a blood vessel network in porous scaffolds, we prepared collagen sponges with micropatterned vascular endothelial growth factor (VEGF). VEGF was micropatterned in three-dimensional collagen sponges using micropatterned collagen/VEGF ice lines, which were prepared by a dispersing machine. The VEGF-micropatterned collagen sponges were implanted subcutaneously in nude mice. Following 6 weeks of implantation, the VEGF-micropatterned collagen sponges induced the formation of micropatterned blood vessel networks. More blood vessels were observed in the regions in which VEGF was immobilized than those without VEGF. The micropattern of VEGF determined the micropattern of the regenerated blood vessel network. The spatial immobilization of VEGF in three-dimensional porous scaffolds may be useful to stimulate guided blood vessel formation in a variety of tissue-engineering applications.
大型且功能高度化的组织和器官的成功再生取决于利用三维支架引导血管形成的能力。血管生成生长因子有刺激支架内血管的潜力。然而,简单地随机掺入血管生成生长因子可能会导致血管生成不受控制,最终导致血管网络功能不佳以及工程组织生长不均。为了控制和引导多孔支架中血管网络的形成,我们制备了带有微图案化血管内皮生长因子(VEGF)的胶原海绵。使用由分散机制备的微图案化胶原/VEGF冰线在三维胶原海绵中对VEGF进行微图案化处理。将VEGF微图案化的胶原海绵皮下植入裸鼠体内。植入6周后,VEGF微图案化的胶原海绵诱导形成了微图案化的血管网络。在固定有VEGF的区域观察到的血管比没有VEGF的区域更多。VEGF的微图案决定了再生血管网络的微图案。VEGF在三维多孔支架中的空间固定化可能有助于在各种组织工程应用中刺激引导性血管形成。