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磁驱动抗磁物体各向异性用于工程复杂组织。

Magneto-Driven Gradients of Diamagnetic Objects for Engineering Complex Tissues.

机构信息

Department of Bioengineering, School of Engineering and Applied Science, University of Pennsylvania, Philadelphia, PA, 19104, USA.

McKay Orthopedic Research Laboratory, Department of Orthopedic Surgery, Perelman School of Medicine, University of Pennsylvania, Philadelphia, PA, 19104, USA.

出版信息

Adv Mater. 2020 Dec;32(48):e2005030. doi: 10.1002/adma.202005030. Epub 2020 Oct 19.

Abstract

Engineering complex tissues represents an extraordinary challenge and, to date, there have been few strategies developed that can easily recapitulate native-like cell and biofactor gradients in 3D materials. This is true despite the fact that mimicry of these gradients may be essential for the functionality of engineered graft tissues. Here, a non-traditional magnetics-based approach is developed to predictably position naturally diamagnetic objects in 3D hydrogels. Rather than magnetizing the objects within the hydrogel, the magnetic susceptibility of the surrounding hydrogel precursor solution is enhanced. In this way, a range of diamagnetic objects (e.g., polystyrene beads, drug delivery microcapsules, and living cells) are patterned in response to a brief exposure to a magnetic field. Upon photo-crosslinking the hydrogel precursor, object positioning is maintained, and the magnetic contrast agent diffuses out of the hydrogel, supporting long-term construct viability. This approach is applied to engineer cartilage constructs with a depth-dependent cellularity mirroring that of native tissue. These are thought to be the first results showing that magnetically unaltered cells can be magneto-patterned in hydrogels and cultured to generate heterogeneous tissues. This work provides a foundation for the formation of opposing magnetic-susceptibility-based gradients within a single continuous material.

摘要

工程复杂组织是一项极具挑战性的任务,迄今为止,只有少数几种策略可以轻松地在 3D 材料中重现类似天然的细胞和生物因子梯度。尽管这些梯度的模拟可能对于工程化移植物组织的功能至关重要,但实际上并非如此。在这里,开发了一种非传统的基于磁学的方法来可预测地在 3D 水凝胶中定位天然抗磁物体。该方法不是使水凝胶内的物体磁化,而是增强周围水凝胶前体溶液的磁导率。通过这种方式,一系列抗磁物体(例如聚苯乙烯珠、药物输送微胶囊和活细胞)可以在短时间内暴露于磁场中进行图案化。在对水凝胶前体进行光交联后,保持物体的定位,并且磁性对比剂从水凝胶中扩散出来,支持长期构建的活力。该方法用于构建具有类似于天然组织的深度依赖性细胞密度的软骨构建体。这被认为是首次表明可以在水凝胶中对未经磁场改变的细胞进行磁图案化,并培养生成异质组织的结果。这项工作为在单个连续材料中形成相反的基于磁导率的梯度奠定了基础。

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