Galindo Alycia N, Frey Rubio David A, Hettiaratchi Marian H
Phil and Penny Knight Campus for Accelerating Scientific Impact, University of Oregon Eugene OR USA
Department of Chemistry and Biochemistry, University of Oregon Eugene OR USA.
Mater Adv. 2024 Apr 10;5(10):4025-4054. doi: 10.1039/d3ma00736g. eCollection 2024 May 20.
Injury and disease in the central nervous system (CNS) can result in a dysregulated inflammatory environment that inhibits the repair of functional tissue. Biomaterials present a promising approach to tackle this complex inhibitory environment and modulate the mechanisms involved in neuroinflammation to halt the progression of secondary injury and promote the repair of functional tissue. In this review, we will cover recent advances in biomaterial strategies, including nanoparticles, hydrogels, implantable scaffolds, and neural probe coatings, that have been used to modulate the innate immune response to injury and disease within the CNS. The stages of inflammation following CNS injury and the main inflammatory contributors involved in common neurodegenerative diseases will be discussed, as understanding the inflammatory response to injury and disease is critical for identifying therapeutic targets and designing effective biomaterial-based treatment strategies. Biomaterials and novel composites will then be discussed with an emphasis on strategies that deliver immunomodulatory agents or utilize cell-material interactions to modulate inflammation and promote functional tissue repair. We will explore the application of these biomaterial-based strategies in the context of nanoparticle- and hydrogel-mediated delivery of small molecule drugs and therapeutic proteins to inflamed nervous tissue, implantation of hydrogels and scaffolds to modulate immune cell behavior and guide axon elongation, and neural probe coatings to mitigate glial scarring and enhance signaling at the tissue-device interface. Finally, we will present a future outlook on the growing role of biomaterial-based strategies for immunomodulation in regenerative medicine and neuroengineering applications in the CNS.
中枢神经系统(CNS)的损伤和疾病可导致炎症环境失调,从而抑制功能性组织的修复。生物材料为应对这种复杂的抑制性环境并调节神经炎症相关机制以阻止继发性损伤进展和促进功能性组织修复提供了一种有前景的方法。在本综述中,我们将介绍生物材料策略的最新进展,包括纳米颗粒、水凝胶、可植入支架和神经探针涂层,这些已被用于调节对CNS内损伤和疾病的固有免疫反应。将讨论CNS损伤后的炎症阶段以及常见神经退行性疾病中涉及的主要炎症因素,因为了解对损伤和疾病的炎症反应对于确定治疗靶点和设计有效的基于生物材料的治疗策略至关重要。然后将讨论生物材料和新型复合材料,重点是递送免疫调节因子或利用细胞 - 材料相互作用来调节炎症并促进功能性组织修复的策略。我们将探讨这些基于生物材料的策略在纳米颗粒和水凝胶介导的小分子药物和治疗性蛋白质向炎症神经组织递送、水凝胶和支架植入以调节免疫细胞行为和引导轴突伸长以及神经探针涂层以减轻胶质瘢痕形成并增强组织 - 装置界面信号传导方面的应用。最后,我们将对基于生物材料的免疫调节策略在CNS再生医学和神经工程应用中日益增长的作用进行未来展望。