模拟干细胞功能的膜包被纳米微球促进牙髓再生血管生成

IF 6.4 2区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Yao Chen, Jun Xie, Jing Gao, YuHan Wang, Xin Yue, Jiafei Qu, Dan Ding, Xiangyun Zhang, Jingrui Xin and Jing Shen
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引用次数: 0

摘要

完整和健康的牙髓对维持牙齿的完整性至关重要。各种损伤如感染和创伤会导致不可逆的牙髓损伤,这需要去除牙髓组织并进行常规的根管充填。然而,这种治疗不能恢复重要的牙髓。如何使牙髓再生,延长牙体寿命仍是临床面临的挑战。再生具有正常功能的类似牙齿结构的组织被认为是牙齿再生领域的目标。目前,研究人员初步利用牙髓干细胞(DPSCs)和人脱落乳牙干细胞(SHED)实现牙齿再生。虽然干细胞移植用于牙髓再生显示出前景,但它面临着操作复杂、细胞存活率低和储存困难等关键挑战。本研究介绍了一种新型的纳米颗粒仿生系统,通过模拟干细胞功能来克服这些限制。在低氧条件下,SHED释放出浓缩的促血管生成因子,将其包裹在细胞膜包裹的纳米微球中,形成仿生牙髓干细胞。这种创新的设计使持续和控制细胞因子释放,同时通过保护细胞膜涂层保持生物相容性。在后肢缺血和牙髓再生模型中,仿生系统显示出明显增强的保留(第7天48.58%,而SHED保留最低),优越的血液灌注恢复(正常水平的72%),并显着增加血管密度(比对照组高7.6倍)。这种无细胞纳米递送平台为功能性组织再生提供了一种稳定、免疫兼容的替代方案,解决了传统干细胞治疗的关键局限性,同时为窄根管挑战性环境下的临床转化提供了实际优势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Cell membrane-coated nanomicrospheres mimicking stem cell functions enhance angiogenesis for dental pulp regeneration†

Cell membrane-coated nanomicrospheres mimicking stem cell functions enhance angiogenesis for dental pulp regeneration†

Intact and healthy dental pulp is crucial for maintaining the integrity of teeth. A variety of impairments such as infection and trauma cause irreversible pulp damage, which require removal of pulp tissue and conventional root canal filling. However, this type of treatment fails to restore vital pulp. It is still a clinical challenge to discover how to regenerate pulp and prolong the lifespan of teeth. Regenerating tissues similar to dental structures with normal functions is putatively the aim in the tooth regeneration field. Currently, researchers preliminarily achieve tooth regeneration by applying dental pulp stem cells (DPSCs) and stem cells from human exfoliated deciduous teeth (SHED). While stem cell transplantation for pulp regeneration shows promise, it faces critical challenges including complex manipulation, low cell survival rates, and storage difficulties. This study introduces a novel nanoparticle-based biomimetic system that overcomes these limitations by emulating stem cell functions. Under hypoxic conditions, SHED release concentrated pro-angiogenic factors, which were encapsulated into cell membrane-coated nanomicrospheres, creating bionic dental pulp stem cells. This innovative design enables sustained and controlled cytokine release while maintaining biocompatibility through the protective cell membrane coating. In hindlimb ischemia and pulp regeneration models, the bionic system demonstrated significantly enhanced retention (48.58% at day 7 versus minimal SHED retention), superior blood perfusion restoration (72% of normal levels), and dramatically increased vascular density (7.6-fold higher than controls). This cell-free nano-delivery platform provides a stable, immune-compatible alternative for functional tissue regeneration, addressing key limitations of conventional stem cell therapies while offering practical advantages for clinical translation in the challenging environment of narrow root canals.

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来源期刊
Materials Chemistry Frontiers
Materials Chemistry Frontiers Materials Science-Materials Chemistry
CiteScore
12.00
自引率
2.90%
发文量
313
期刊介绍: Materials Chemistry Frontiers focuses on the synthesis and chemistry of exciting new materials, and the development of improved fabrication techniques. Characterisation and fundamental studies that are of broad appeal are also welcome. This is the ideal home for studies of a significant nature that further the development of organic, inorganic, composite and nano-materials.
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