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将 MSC 和 GDNF 包埋于可注射的纳米增强超分子水凝胶中用于脑组织工程。

Encapsulation of MSCs and GDNF in an Injectable Nanoreinforced Supramolecular Hydrogel for Brain Tissue Engineering.

机构信息

Department of Pharmaceutical Technology and Chemistry, Faculty of Pharmacy and Nutrition, University of Navarra, C/Irunlarrea 1, 31008Pamplona, Spain.

Navarra Institute for Health Research, IdiSNA, C/Irunlarrea 3, 31008Pamplona, Spain.

出版信息

Biomacromolecules. 2022 Nov 14;23(11):4629-4644. doi: 10.1021/acs.biomac.2c00853. Epub 2022 Oct 26.

Abstract

The co-administration of glial cell line-derived neurotrophic factor (GDNF) and mesenchymal stem cells (MSCs) in hydrogels (HGs) has emerged as a powerful strategy to enhance the efficient integration of transplanted cells in Parkinson's disease (PD). This strategy could be improved by controlling the cellular microenvironment and biomolecule release and better mimicking the complex properties of the brain tissue. Here, we develop and characterize a drug delivery system for brain repair where MSCs and GDNF are included in a nanoparticle-modified supramolecular guest-host HA HG. In this system, the nanoparticles act as both carriers for the GDNF and active physical crosslinkers of the HG. The multifunctional HG is mechanically compatible with brain tissue and easily injectable. It also protects GDNF from degradation and achieves its controlled release over time. The cytocompatibility studies show that the developed biomaterial provides a friendly environment for MSCs and presents good compatibility with PC12 cells. Finally, using RNA-sequencing (RNA-seq), we investigated how the three-dimensional (3D) environment, provided by the nanostructured HG, impacted the encapsulated cells. The transcriptome analysis supports the beneficial effect of including MSCs in the nanoreinforced HG. An enhancement in the anti-inflammatory effect of MSCs was observed, as well as a differentiation of the MSCs toward a neuron-like cell type. In summary, the suitable strength, excellent self-healing properties, good biocompatibility, and ability to boost MSC regenerative potential make this nanoreinforced HG a good candidate for drug and cell administration to the brain.

摘要

胶质细胞源性神经营养因子(GDNF)和间充质干细胞(MSCs)在水凝胶(HGs)中的共给药已成为增强帕金森病(PD)中移植细胞有效整合的强大策略。通过控制细胞微环境和生物分子释放,并更好地模拟脑组织的复杂特性,可以改进这种策略。在这里,我们开发并表征了一种用于脑修复的药物输送系统,其中 MSCs 和 GDNF 包含在纳米颗粒修饰的超分子主体-客体 HA HG 中。在该系统中,纳米颗粒既充当 GDNF 的载体,又充当 HG 的主动物理交联剂。多功能 HG 与脑组织机械兼容,易于注射。它还可以保护 GDNF 免受降解,并实现其随时间的控制释放。细胞相容性研究表明,开发的生物材料为 MSCs 提供了友好的环境,并与 PC12 细胞具有良好的相容性。最后,通过 RNA 测序(RNA-seq),我们研究了纳米结构化 HG 提供的三维(3D)环境如何影响封装的细胞。转录组分析支持在纳米增强 HG 中包含 MSCs 的有益效果。观察到 MSCs 的抗炎作用增强,并且 MSCs 向神经元样细胞类型分化。总之,适当的强度、优异的自修复特性、良好的生物相容性以及增强 MSC 再生潜力的能力使这种纳米增强 HG 成为向大脑给药和细胞的良好候选物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9f44/9667499/aaab071fd6ba/bm2c00853_0002.jpg

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