用于神经系统修复的电纺载药支架。

Simon C Kellaway, Mathilde M Ullrich, Karolina Dziemidowicz
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引用次数: 0

摘要

神经系统损伤,包括周围神经损伤(PNI)、脊髓损伤(SCI)和创伤性脑损伤(TBI),给患者的健康带来了重大挑战。传统的治疗方法在解决神经组织再生的复杂性方面存在局限性,需要创新的解决方案。在新出现的策略中,植入材料,尤其是电纺药物载荷支架,因其同时提供结构支持和控制释放治疗药物的潜力而备受关注。本综述深入探讨了用于神经系统修复的电纺载药支架的设计和应用方面的最新进展。电纺工艺可精确控制支架的特性,包括机械性能、生物相容性和形貌,这对创造有利于神经组织再生的环境至关重要。由此形成的纤维网具有较大的表面积,可增强生物分子的附着力,影响细胞的粘附、增殖和迁移等行为。聚合物电纺材料在容纳从小分子到蛋白质等各种治疗药物方面表现出多功能性。这使得量身定制的干预措施能够加速神经再生并减轻损伤部位的炎症反应。本综述的一个重要方面是研究结构特性与药理作用之间的相互作用,强调优化这两方面以提高治疗效果的重要性。借鉴该领域的最新进展,我们讨论了使用电纺载药支架进行神经系统修复的临床前研究取得的可喜成果,以及设计和实施支架的未来前景和注意事项。本文归类于植入材料与外科技术 > 纳米材料与植入物 植入材料与外科技术 > 组织修复与替代中的纳米技术 治疗方法与药物发现 > 新兴技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Electrospun drug-loaded scaffolds for nervous system repair.

Nervous system injuries, encompassing peripheral nerve injury (PNI), spinal cord injury (SCI), and traumatic brain injury (TBI), present significant challenges to patients' wellbeing. Traditional treatment approaches have limitations in addressing the complexity of neural tissue regeneration and require innovative solutions. Among emerging strategies, implantable materials, particularly electrospun drug-loaded scaffolds, have gained attention for their potential to simultaneously provide structural support and controlled release of therapeutic agents. This review provides a thorough exploration of recent developments in the design and application of electrospun drug-loaded scaffolds for nervous system repair. The electrospinning process offers precise control over scaffold characteristics, including mechanical properties, biocompatibility, and topography, crucial for creating a conducive environment for neural tissue regeneration. The large surface area of the resulting fibrous networks enhances biomolecule attachment, influencing cellular behaviors such as adhesion, proliferation, and migration. Polymeric electrospun materials demonstrate versatility in accommodating a spectrum of therapeutics, from small molecules to proteins. This enables tailored interventions to accelerate neuroregeneration and mitigate inflammation at the injury site. A critical aspect of this review is the examination of the interplay between structural properties and pharmacological effects, emphasizing the importance of optimizing both aspects for enhanced therapeutic outcomes. Drawing upon the latest advancements in the field, we discuss the promising outcomes of preclinical studies using electrospun drug-loaded scaffolds for nervous system repair, as well as future perspectives and considerations for their design and implementation. This article is categorized under: Implantable Materials and Surgical Technologies > Nanomaterials and Implants Implantable Materials and Surgical Technologies > Nanotechnology in Tissue Repair and Replacement Therapeutic Approaches and Drug Discovery > Emerging Technologies.

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