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Delivery of Brain-Derived Neurotrophic Factor by 3D Biocompatible Polymeric Scaffolds for Neural Tissue Engineering and Neuronal Regeneration

机译:通过3D生物相容性聚合物支架递送脑衍生的神经营养因子,用于神经组织工程和神经元再生

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摘要

Biopolymers are increasingly employed for neuroscience applications as scaffolds to drive and promote neural regrowth, thanks to their ability to mediate the upload and subsequent release of active molecules and drugs. Synthetic degradable polymers are characterized by different responses ranging from tunable distension or shrinkage to total dissolution, depending on the function they are designed for. In this paper we present a biocompatible microfabricated poly-epsilon-caprolactone (PCL) scaffold for primary neuron growth and maturation that has been optimized for the in vitro controlled release of brain-derived neurotrophic factor (BDNF). We demonstrate that the designed morphology confers to these devices an enhanced drug delivery capability with respect to monolithic unstructured supports. After incubation with BDNF, micropillared PCL devices progressively release the neurotrophin over 21days in vitro. Moreover, the bioactivity of released BDNF is confirmed using primary neuronal cultures, where it mediates a consistent activation of BDNF signaling cascades, increased synaptic density, and neuronal survival. These results provide the proof-of-principle on the fabrication process of micropatterned PCL devices, which represent a promising therapeutic option to enhance neuronal regeneration after lesion and for neural tissue engineering and prosthetics.
机译:由于它们的介导上传和随后释放活性分子和药物的能力,越来越越来越多地用于驱动和促进神经再生的支架和促进神经再生的应用。合成可降解聚合物的特征在于不同的反应,范围从可调谐的光泽或收缩到总溶解,这取决于它们的设计。本文介绍了一种用于原发性神经元生长和成熟的生物相容性微制造的聚ε-己内酯(PCL)支架,其针对脑衍生的神经营养因子(BDNF)的体外控制释放已经优化。我们证明,设计的形态赋予这些装置相对于单片非结构体支撑的增强的药物输送能力。与BDNF孵育后,微生物PCL器件在体外逐渐释放出21天的神经营养蛋白。此外,使用原发性神经元培养物确认释放的BDNF的生物活性,其中介导BDNF信号传导级联,增加突触密度和神经元存活的一致激活。这些结果提供了在微透明理由的PCL器件的制造过程中的原理上,这代表了提高病变后的神经元再生和神经组织工程和假肢的有希望的治疗选择。

著录项

  • 来源
    《Molecular Neurobiology》 |2018年第12期|共11页
  • 作者单位

    King Abdullah Univ Sci &

    Technol Phys Sci &

    Engn PSE Div SMILEs Lab Thuwal 239556900 Saudi;

    Ist Italiano Tecnol Ctr Synapt Neurosci &

    Technol Largo Rosanna Benzi 10 I-16132 Genoa Italy;

    Ist Italiano Tecnol Ctr Synapt Neurosci &

    Technol Largo Rosanna Benzi 10 I-16132 Genoa Italy;

    King Abdullah Univ Sci &

    Technol Analyt Core Lab Thuwal 239556900 Saudi Arabia;

    Ist Italiano Tecnol Nanostruct Dept Via Morego 30 I-16163 Genoa Italy;

    King Abdullah Univ Sci &

    Technol Phys Sci &

    Engn PSE Div SMILEs Lab Thuwal 239556900 Saudi;

    Ist Italiano Tecnol Ctr Synapt Neurosci &

    Technol Largo Rosanna Benzi 10 I-16132 Genoa Italy;

    Ist Italiano Tecnol Nanostruct Dept Via Morego 30 I-16163 Genoa Italy;

    Magna Graecia Univ Catanzaro Dept Expt &

    Clin Med Lab Nanotechnol BioNEM Viale Europa Catanzaro;

    Ist Italiano Tecnol Ctr Synapt Neurosci &

    Technol Largo Rosanna Benzi 10 I-16132 Genoa Italy;

    King Abdullah Univ Sci &

    Technol Phys Sci &

    Engn PSE Div SMILEs Lab Thuwal 239556900 Saudi;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 人体生理学;
  • 关键词

    Microfabrication; Biopolymer; Drug delivery; Primary neurons; BDNF; Neural tissue engineering;

    机译:微制造;生物聚合物;药物递送;原发性神经元;BDNF;神经组织工程;

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