Interdisciplinary Nanoscience Center (iNANO), Aarhus University, DK-8000 Aarhus C, Denmark.
Biomaterials. 2012 Oct;33(28):6626-33. doi: 10.1016/j.biomaterials.2012.05.070. Epub 2012 Jun 28.
Stem cells possess unique abilities as they can renew themselves for extended periods of time and have the capacity to differentiate into a variety of lineages. They hold promise for treating a plethora of diseases ranging from musculoskeletal defects to myocardial infarction and to neural disorders. Understanding how to control the fate decision of these cells to self-renew or differentiate is paramount in stem cell tissue engineering. Recently, significant progress has been made in guiding stem cell differentiation in vitro, and we are beginning to understand the complex interplay of factors that control their fate. Here, we highlight the recent approaches for guidance of stem cells through patterning of surfaces at the micro- and nanoscale. Particular attention is given to chemical patterning of substrates with adhesion ligands and physical patterning with a variety of topographical features. These surface-mediated biochemical and mechanical cues have proven influential in altering a wide range of stem cell phenotypes. This approach to guide or ultimately control stem cells by surface patterning has enormous potential implications in cell therapies and regenerative medicine.
干细胞具有独特的能力,因为它们可以长时间自我更新,并且具有分化为多种谱系的能力。它们有望治疗从肌肉骨骼缺陷到心肌梗塞和神经紊乱等多种疾病。了解如何控制这些细胞的命运决定,是自我更新还是分化,这在干细胞组织工程中至关重要。最近,在指导干细胞体外分化方面取得了重大进展,我们开始了解控制其命运的复杂因素相互作用。在这里,我们重点介绍了通过微纳尺度表面图案化来引导干细胞的最新方法。特别关注的是通过粘附配体对底物进行化学图案化以及通过各种形貌特征进行物理图案化。事实证明,这些表面介导的生化和机械线索在改变各种干细胞表型方面非常有效。通过表面图案化来指导或最终控制干细胞的这种方法,在细胞治疗和再生医学方面具有巨大的潜在意义。