3D生物打印在神经退行性疾病建模方面的进步

Ibrain Pub Date : 2025-04-22 DOI:10.1002/ibra.12196
Lucia Iafrate, Gianluca Cidonio
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引用次数: 0

摘要

神经退行性疾病(NDs)是一种严重改变大脑神经元生理功能的疾病。这些过程通常伴随着异常的蛋白质聚集,改变了脑组织和周围神经的物理和化学性质。NDs的病因很复杂,涉及遗传因素、神经炎症、氧化应激、环境影响和生活方式,而症状和进展因细胞死亡机制而有很大差异。目前,由于对潜在的退行性过程知之甚少,没有明确的治疗方法。现有的治疗方法侧重于减轻症状,但不足以阻止或预防疾病进展。这凸显了迫切需要模仿NDs病理生理的策略,以促进更深入的认识和有效治疗的发展。传统的体外和体内模型试图复制NDs,但往往无法捕捉神经组织及其相互作用的生理复杂性。在这种背景下,3D微流体生物打印作为一种变革性技术出现了。通过实现细胞和生物材料的精确沉积,它允许创建具有高度结构和功能复杂性的体外模型。这些进步提供了一个有价值的平台,可以忠实地模拟NDs,弥合我们在理解上的关键差距,并为创新的治疗方法铺平道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The rise of 3D bioprinting advancements in modeling neurodegenerative diseases

Neurodegenerative diseases (NDs) are disorders that drastically alter the physiological functioning of neurons in the brain. These processes are often accompanied by abnormal protein aggregates that alter the physical and chemical properties of brain tissue and peripheral nerves. The causes of NDs are complex, involving genetic factors, neuroinflammation, oxidative stress, environmental influences, and lifestyle, while symptoms and progression vary significantly based on the mechanisms of cell death. Currently, no definitive treatment exists for NDs, as the underlying degenerative processes remain poorly understood. Existing therapies focus on symptom alleviation but are insufficient to halt or prevent disease progression. This highlights the urgent need for strategies that mimic the pathophysiology of NDs, facilitating deeper insights and the development of effective treatments. Conventional in vitro and in vivo models attempt to replicate NDs but often fail to capture the physiological complexity of nervous tissue and its interactions. In this context, 3D microfluidic bioprinting emerges as a transformative technology. By enabling precise deposition of cells and biomaterials, it allows the creation of in vitro models with a high degree of structural and functional complexity. These advancements provide a valuable platform for faithfully modeling NDs, bridging critical gaps in our understanding, and paving the way toward innovative therapeutic approaches.

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