Advanced Center for Translational Regenerative Medicine (ACTREM), Karolinska Institutet, Stockholm, Sweden.
Biomaterials. 2014 Jan;35(4):1205-14. doi: 10.1016/j.biomaterials.2013.10.060. Epub 2013 Nov 8.
The fabrication of an instructive bioabsorbable scaffold is one of the main goals for tissue engineering applications. In this regard, genipin cross-linked gelatin scaffolds, produced by electrospinning, were tested as a platform to include decellularized rat brain extracellular matrix as an active agent to provide fundamental biochemical cues to the seeded cells. This approach is expected to furnish a suitable natural-based polymeric scaffold with sufficient temporal stability to support cell attachment and spreading, also providing tissue-specific signals that can contribute to the expression of the requested cellular phenotype. We first demonstrated the effectiveness of the proposed decellularization protocol and the cytocompatibility of the resulting brain matrix. Then, the in vitro biological assays of the conditioned electrospun scaffolds, using rat allogeneic mesenchymal stromal cells, confirmed their biocompatibility and showed a differentiative potential in presence of just 1% w/w decellularized rat brain extracellular matrix.
制造具有教育意义的可生物吸收支架是组织工程应用的主要目标之一。在这方面,通过静电纺丝制备的京尼平交联明胶支架被测试为一种平台,将脱细胞大鼠脑细胞外基质作为一种活性剂包含在内,为接种细胞提供基本的生化线索。这种方法有望提供一种合适的基于天然的聚合物支架,具有足够的时间稳定性来支持细胞附着和扩散,同时提供组织特异性信号,有助于表达所需的细胞表型。我们首先证明了所提出的脱细胞方案的有效性和所得脑基质的细胞相容性。然后,使用大鼠同种异体间充质基质细胞对条件静电纺丝支架进行的体外生物学检测证实了它们的生物相容性,并在仅含有 1%(重量/重量)脱细胞大鼠脑细胞外基质的情况下显示出分化潜力。