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单壁碳纳米管在 2D 和 3D 环境中对许旺细胞行为的影响存在差异。

Single-walled carbon nanotubes alter Schwann cell behavior differentially within 2D and 3D environments.

机构信息

Department of Biomedical Engineering, Rensselaer Polytechnic Institute, Troy, New York, USA.

出版信息

J Biomed Mater Res A. 2011 Jan;96(1):46-57. doi: 10.1002/jbm.a.32939. Epub 2010 Oct 14.

DOI:10.1002/jbm.a.32939
PMID:20949573
Abstract

Both spinal cord injury (SCI) and large-gap peripheral nerve defects can be debilitating affecting a patient's long-term quality of life and presently, there is no suitable treatment for functional regeneration of these injured tissues. A number of works have suggested the benefits of electrical stimulation to promote both glial migration and neuronal extension. In this work, an electrically conductive hydrogel containing single-walled carbon nanotubes (SWCNT) for neural engineering applications is presented and the Schwann cell (SC) response to SWCNT is examined in both 2D and 3D microenvironments. Results from clonogenic and alamarBlue® assays in 2D indicate that SWCNT (10-50 μg mL(-1)) inhibit SC proliferation but do not affect cell viability. Following SWCNT exposure in 2D, changes in SC morphology can be observed with the nanomaterial attached to the cell membrane at concentrations as low as 10 μg mL(-1). In contrast to the results gathered in 2D, SC embedded within the 3D hydrogel loaded with 10-50 μg mL(-1) of SWCNT exhibited little or no measurable change in cell proliferation, viability, or morphology as assessed using a digestion assay, alamarBlue, and confocal microscopy. Collectively, this highlights that an electrically-conductive SWCNT collagen I-Matrigel™ biomaterial may be suitable for neural tissue engineering and is able to sustain populations of SC. Findings suggest that 2D nanoparticle toxicity assays may not be accurate predictors of the 3D response, further motivating the examination of these materials in a more physiologically relevant environment.

摘要

脊髓损伤 (SCI) 和大间隙周围神经缺损都会使人衰弱,影响患者的长期生活质量,目前,这些受损组织还没有合适的功能再生治疗方法。许多研究表明,电刺激有利于促进神经胶质细胞迁移和神经元延伸。在这项工作中,提出了一种含有单壁碳纳米管 (SWCNT) 的用于神经工程应用的导电水凝胶,并研究了 SWCNT 对 Schwann 细胞 (SC) 在 2D 和 3D 微环境中的反应。2D 中的集落形成和 alamarBlue® 测定结果表明,SWCNT(10-50μg/mL)抑制 SC 增殖,但不影响细胞活力。在 2D 中暴露于 SWCNT 后,即使纳米材料在 10μg/mL 的浓度下与细胞膜相连,也可以观察到 SC 形态的变化。与 2D 中的结果相反,在 3D 水凝胶中嵌入 10-50μg/mL 的 SWCNT 后,SC 的增殖、活力或形态几乎没有或没有可测量的变化,这是通过消化测定、alamarBlue 和共聚焦显微镜评估得出的。总的来说,这表明电导率 SWCNT 胶原 I-Matrigel™ 生物材料可能适用于神经组织工程,并且能够维持 SC 群体。研究结果表明,2D 纳米颗粒毒性测定可能不能准确预测 3D 反应,这进一步促使我们在更接近生理的环境中检查这些材料。

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