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首页> 外文期刊>Advanced Functional Materials >3D-Printed Soft Magnetoelectric Microswimmers for Delivery and Differentiation of Neuron-Like Cells
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3D-Printed Soft Magnetoelectric Microswimmers for Delivery and Differentiation of Neuron-Like Cells

机译:3D打印的软磁电微泳器,用于神经元样细胞的传递和分化

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摘要

Neurodegenerative diseases generally result in irreversible neuronal damage and neuronal death. Cell therapy shows promise as a potential treatment for these diseases. However, the therapeutic targeted delivery of these cells and the in situ provision of a suitable microenvironment for their differentiation into functional neuronal networks remain challenging. A highly integrated multifunctional soft helical microswimmer featuring targeted neuronal cell delivery, on-demand localized wireless neuronal electrostimulation, and post-delivery enzymatic degradation is introduced. The helical soft body of the microswimmer is fabricated by two-photon lithography of the photocurable gelatin-methacryloyl (GelMA)-based hydrogel. The helical body is then impregnated with composite multiferroic nanoparticles displaying magnetoelectric features (MENPs). While the soft GelMA hydrogel chassis supports the cell growth, and is degraded by enzymes secreted by cells, the MENPs allow for the magnetic transportation of the bioactive chassis, and act as magnetically mediated electrostimulators of neuron-like cells. The unique combination of the materials makes these microswimmers highly integrated devices that fulfill several requirements for their future translation to clinical applications, such as cargo delivery, cell stimulation, and biodegradability. The authors envision that these devices will inspire new avenues for targeted cell therapies for traumatic injuries and diseases in the central nervous system.
机译:神经退行性疾病通常会导致不可逆的神经元损害和神经元死亡。细胞疗法显示出有望作为这些疾病的潜在疗法。然而,这些细胞的治疗靶向递送以及用于将它们分化为功能性神经元网络的合适的微环境的原位提供仍然具有挑战性。介绍了一种高度集成的多功能软螺旋微泳器,其特征在于靶向神经元细胞递送,按需局部无线神经元电刺激和递送后酶促降解。微掠器的螺旋形软体是通过基于光固化性明胶-甲基丙烯酰基(GelMA)的水凝胶的双光子光刻技术制成的。然后,螺旋体被具有磁电特征(MENP)的复合多铁纳米颗粒浸渍。尽管柔软的GelMA水凝胶底盘支持细胞生长,并被细胞分泌的酶降解,但MENP允许生物活性底盘的磁性转运,并充当神经元样细胞的磁介电刺激器。这些材料的独特组合使这些微游泳器成为高度集成的设备,可满足其未来向临床应用转化的多种要求,例如货物运输,细胞刺激和生物降解能力。作者设想,这些设备将为针对中枢神经系统的创伤性损伤和疾病的靶向细胞疗法开辟新途径。

著录项

  • 来源
    《Advanced Functional Materials 》 |2020年第17期| 1910323.1-1910323.7| 共7页
  • 作者

  • 作者单位

    Nanjing Univ Sch Chem & Chem Engn Dept Polymer Sci & Engn MOE Nanjing 210023 Peoples R China|Nanjing Univ Sch Chem & Chem Engn Key Lab High Performance Polymer Mat & Technol MOE Nanjing 210023 Peoples R China;

    Swiss Fed Inst Technol Multiscale Robot Lab MSRL IRIS CH-8092 Zurich Switzerland;

    Fudan Univ Dept Neurobiol Sch Basic Med Sci Shanghai Peoples R China;

    Swiss Fed Inst Technol Inst Biomech Leopold Ruzicka Weg 4 CH-8093 Zurich Switzerland;

    Swiss Fed Inst Technol Inst Chem & Bioengn Vladimir Prelog Weg 1 CH-8093 Zurich Switzerland;

    DGIST Dept Robot Engn Daegu 42988 South Korea|DGIST DGIST ETH Microrobot Res Ctr Daegu 42988 South Korea;

    Univ Porto INEB Inst Engn Biomed Rua Alfredo Allen 208 P-4200135 Porto Portugal|UPorto i3S Rua Alfredo Allen 208 P-4200135 Porto Portugal;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    magnetoelectrics; microrobots; neuron cell differentiation; piezoelectrics; soft robots;

    机译:磁电微型机器人;神经元细胞分化;压电软机器人;

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