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Hydrogel-based scaffolds to support intrathecal stem cell transplantation as a gateway to the spinal cord: clinical needs biomaterials and imaging technologies

机译:基于水凝胶的支架支持鞘内干细胞移植作为通往脊髓的门户:临床需求生物材料和成像技术

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摘要

The prospects for cell replacement in spinal cord diseases are impeded by inefficient stem cell delivery. The deep location of the spinal cord and complex surgical access, as well as densely packed vital structures, question the feasibility of the widespread use of multiple spinal cord punctures to inject stem cells. Disorders characterized by disseminated pathology are particularly appealing for the distribution of cells globally throughout the spinal cord in a minimally invasive fashion. The intrathecal space, with access to a relatively large surface area along the spinal cord, is an attractive route for global stem cell delivery, and, indeed, is highly promising, but the success of this approach relies on the ability of cells (1) to survive in the cerebrospinal fluid (CSF), (2) to adhere to the spinal cord surface, and (3) to migrate, ultimately, into the parenchyma. Intrathecal infusion of cell suspension, however, has been insufficient and we postulate that embedding transplanted cells within hydrogel scaffolds will facilitate reaching these goals. In this review, we focus on practical considerations that render the intrathecal approach clinically viable, and then discuss the characteristics of various biomaterials that are suitable to serve as scaffolds. We also propose strategies to modulate the local microenvironment with nanoparticle carriers to improve the functionality of cellular grafts. Finally, we provide an overview of imaging modalities for in vivo monitoring and characterization of biomaterials and stem cells. This comprehensive review should serve as a guide for those planning preclinical and clinical studies on intrathecal stem cell transplantation.
机译:干细胞输送效率低下,阻碍了脊髓疾病中细胞替代的前景。脊髓的深处和复杂的手术通道以及密集的重要结构,对广泛使用多种脊髓穿刺法注射干细胞的可行性提出了质疑。以散布的病理学为特征的疾病尤其以微创方式吸引了整个脊髓中的细胞分布。鞘内空间可沿脊髓进入相对较大的表面积,是全球干细胞输送的诱人途径,确实具有很高的前景,但这种方法的成功取决于细胞的能力(1)在脑脊液(CSF)中存活,(2)附着在脊髓表面,(3)最终迁移到实质中。但是,鞘内注入细胞悬液还不够,我们推测将移植的细胞嵌入水凝胶支架中将有助于达到这些目标。在这篇综述中,我们集中于使鞘内治疗在临床上可行的实际考虑因素,然后讨论了适合用作支架的各种生物材料的特性。我们还提出了用纳米载体调节局部微环境的策略,以改善细胞移植物的功能。最后,我们概述了用于生物材料和干细胞的体内监测和表征的成像方式。这项全面的审查应为那些计划进行鞘内干细胞移植的临床前和临床研究的指南提供指导。

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