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一种用于脊髓损伤修复的具有自促进细胞吸收功能的 3D 打印双驱动力支架。

A 3D-Printed Dual Driving Forces Scaffold with Self-Promoted Cell Absorption for Spinal Cord Injury Repair.

机构信息

Key Laboratory of Cardiovascular Intervention and Regenerative Medicine of Zhejiang Province, Department of Cardiology, Sir Run Run Shaw Hospital, Zhejiang University, Hangzhou, 310058, China.

MOE Laboratory of Biosystems Homeostasis & Protection and iCell Biotechnology Regenerative Biomedicine Laboratory of College of Life Sciences, Zhejiang University, Hangzhou, 310058, China.

出版信息

Adv Sci (Weinh). 2023 Nov;10(33):e2301639. doi: 10.1002/advs.202301639. Epub 2023 Oct 23.

Abstract

Stem cells play critical roles in cell therapies and tissue engineering for nerve repair. However, achieving effective delivery of high cell density remains a challenge. Here, a novel cell delivery platform termed the hyper expansion scaffold (HES) is developed to enable high cell loading. HES facilitated self-promoted and efficient cell absorption via a dual driving force model. In vitro tests revealed that the HES rapidly expanded 80-fold in size upon absorbing 2.6 million human amniotic epithelial stem cells (hAESCs) within 2 min, representing over a 400% increase in loading capacity versus controls. This enhanced uptake benefited from macroscopic swelling forces as well as microscale capillary action. In spinal cord injury (SCI) rats, HES-hAESCs promoted functional recovery and axonal projection by reducing neuroinflammation and improving the neurotrophic microenvironment surrounding the lesions. In summary, the dual driving forces model provides a new rationale for engineering hydrogel scaffolds to facilitate self-promoted cell absorption. The HES platform demonstrates great potential as a powerful and efficient vehicle for delivering high densities of hAESCs to promote clinical treatment and repair of SCI.

摘要

干细胞在神经修复的细胞治疗和组织工程中起着至关重要的作用。然而,实现高密度细胞的有效输送仍然是一个挑战。在这里,开发了一种称为超扩展支架(HES)的新型细胞输送平台,以实现高细胞负载。HES 通过双驱动力模型促进了自我促进和高效的细胞吸收。体外试验表明,HES 在吸收 260 万个人羊膜上皮干细胞(hAESCs)后,在 2 分钟内迅速扩大 80 倍,与对照组相比,负载能力增加了 400%以上。这种增强的吸收得益于宏观膨胀力和微尺度毛细作用。在脊髓损伤(SCI)大鼠中,HES-hAESCs 通过减少神经炎症和改善损伤周围的神经营养微环境来促进功能恢复和轴突投射。总之,双驱动力模型为工程水凝胶支架提供了一种新的原理,以促进自我促进的细胞吸收。HES 平台具有很大的潜力,可作为一种强大高效的载体,用于输送高密度的 hAESCs,以促进 SCI 的临床治疗和修复。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/db47/10667844/0d7aa1b08ef9/ADVS-10-2301639-g005.jpg

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