National Engineering Research Center for Biomaterials, College of Biomedical Engineering, Sichuan University, Chengdu 610064, Sichuan, China.
National Engineering Research Center for Biomaterials, College of Biomedical Engineering, Sichuan University, Chengdu 610064, Sichuan, China; Institute of Regulatory Science for Medical Devices, Sichuan University, Chengdu 610064, Sichuan, China.
Acta Biomater. 2023 Sep 15;168:470-483. doi: 10.1016/j.actbio.2023.07.029. Epub 2023 Jul 25.
Magnetic fields play an essential role in material science and biomedical engineering. Magnetic-responsive materials can be arranged orderly in matrix to realize the construction of an aligned scaffold under magnetic induction. However, a single topological cue is insufficient to activate neural tissue regeneration, demanding more cues to promote regeneration synergistically, such as electrical stimulation and a biomimetic matrix. Herein, we propose one-dimensional (1D) magnetoelectric FeO@BaTiO nanochains with controllable lengths under the regulation of a magnetic field. These nanochains can be oriented in the biomimetic hydrogel under magnetic guidance and induce the hydrogel microfiber to align along the direction of the nanochains, which is beneficial for cell-oriented outgrowth. This aligned hydrogel enabled wireless electrical stimulation mediated by magnetoelectric nanochains under magnetic stimulation, thereby activating the voltage-gated ion channel. Consequently, topological and electrical cues in this multifunctional biomimetic hydrogel synergistically enhanced the expression of neural functional proteins, facilitating synapse remodeling and neural regeneration. Predictably, the construction of multifunctional hydrogels based on low-cost and facile synthesis of magnetoelectric nanochains is an emerging patient-friendly and effective therapeutic strategy for neural or other tissue regeneration. STATEMENT OF SIGNIFICANCE: A facile and controllable magnetic strategy is established to manipulate 1D nanomaterial growth, matrix topography, and wireless electrical stimulation of cells. First, the magnetic-assisted interface co-assembly was used to control the length of FeO@BaTiO nanochains with enhanced magnetoelectric effect. Then, the motion of the magnetic-induced nanochains guided the orientation of nanofibers in a 3D biomimetic hydrogel matrix. Finally, wireless electrical signals and topological cues in the biomimetic matrix synergistically promoted orderly aligned cell outgrowth and membrane depolarization by Ca influx, thus enhancing nerve cell synaptic plasticity and functional expression. Consequently, this work provides a conceptual strategy from material design to extracellular matrix signal manipulation and synergistic induction of tissue regeneration.
磁场在材料科学和生物医学工程中发挥着重要作用。磁响应材料可以在磁场的诱导下在基质中有序排列,从而实现取向支架的构建。然而,单一的拓扑线索不足以激活神经组织的再生,需要更多的线索来协同促进再生,例如电刺激和仿生基质。在这里,我们提出了一种在磁场调控下具有可控长度的一维(1D)磁电 FeO@BaTiO 纳米链。这些纳米链可以在仿生水凝胶中在磁场的引导下定向,并诱导水凝胶微纤维沿着纳米链的方向排列,这有利于细胞定向生长。这种取向水凝胶使磁电纳米链介导的无线电刺激在磁场刺激下成为可能,从而激活电压门控离子通道。因此,这种多功能仿生水凝胶中的拓扑和电线索协同增强了神经功能蛋白的表达,促进了突触重塑和神经再生。可以预见的是,基于低成本和简便的磁电纳米链合成构建多功能水凝胶是一种新兴的、患者友好的、有效的神经或其他组织再生治疗策略。
建立了一种简便可控的磁策略来操纵一维纳米材料的生长、基质形貌和细胞的无线电刺激。首先,利用磁辅助界面共组装来控制具有增强磁电效应的 FeO@BaTiO 纳米链的长度。然后,磁诱导纳米链的运动引导 3D 仿生水凝胶基质中纳米纤维的取向。最后,仿生基质中的无线电信号和拓扑线索协同促进有序排列的细胞生长和膜去极化,通过 Ca 内流增强神经细胞的突触可塑性和功能表达。因此,这项工作从材料设计到细胞外基质信号的操纵以及组织再生的协同诱导提供了一个概念性策略。