Burns & Reconstructive Surgery Research Group, Australia.
Burns & Reconstructive Surgery Research Group, Australia ; Burns Unit, Concord Repatriation General Hospital, Concord, New South Wales 2139 Australia.
Burns Trauma. 2013 Sep 18;1(2):95-101. doi: 10.4103/2321-3868.118935. eCollection 2013.
Current dermal regenerative scafolds provide wound coverage, and structural support and guidance for tissue repair, but usually lack enough bio-signals needed for speeding up skin cell growth, migration, wound closure, and skin regeneration. In this study, an androgen receptor (AR) inhibitor called ASC-J9 is used to demonstrate the concept and feasibility of fabricating drug-loaded scafolds via electrospinning. Inhibition of androgen is known to promote skin wound healing. The novel ASC-J9 - loaded porous scafold was fabricated for skin wound repair using electrospun fibers of collagen and polycaprolactone (PCL) blend. Our preliminary results indicated that ASC-J9 - loaded scafolds facilitated more efficient attachment and ingrowth of dermal fbroblasts, compared to the control collagen-PCL scafold. A signifcant increase of cell proliferation was observed with the drug-loaded scafold over a 28-day period. The drug-loaded scafold also accelerated keratinocyte migration and wound closure in a contraction-inhibited mouse wound model over 21 days. The data indicated a sustained release of ASC-J9 from the scafold and its potential to accelerate wound healing by promoting cell proliferation and migration over an extended period of time. More importantly, our results proved the concept and feasibility of fabricating drug-releasing or bioactive dermal scaffolds for more efective wound healing.
目前的皮肤再生支架为伤口提供覆盖,并为组织修复提供结构支撑和引导,但通常缺乏促进皮肤细胞生长、迁移、伤口闭合和皮肤再生所需的足够生物信号。在这项研究中,使用雄激素受体 (AR) 抑制剂 ASC-J9 来证明通过静电纺丝制造载药支架的概念和可行性。抑制雄激素已知可促进皮肤伤口愈合。使用胶原和聚己内酯 (PCL) 共混物的静电纺纤维制造了用于皮肤伤口修复的新型 ASC-J9 负载多孔支架。我们的初步结果表明,与对照胶原-PCL 支架相比,载 ASC-J9 支架更有利于真皮成纤维细胞的有效附着和向内生长。在 28 天的时间内,载药支架观察到细胞增殖显著增加。在抑制收缩的小鼠伤口模型中,载药支架还加速了角质形成细胞的迁移和伤口闭合,持续 21 天。数据表明 ASC-J9 从支架中的持续释放及其通过促进细胞增殖和迁移在延长时间内加速伤口愈合的潜力。更重要的是,我们的结果证明了制造用于更有效伤口愈合的释放药物或生物活性皮肤支架的概念和可行性。