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微六边体梯度阵列指导脊髓运动神经元的空间多样化。

Microhexagon gradient array directs spatial diversification of spinal motor neurons.

机构信息

Biomedical Institute for Global Health Research and Technology, National University of Singapore, 117599, Singapore.

Institute of Molecular and Cell Biology, Agency for Science, Technology and Research, 138673, Singapore.

出版信息

Theranostics. 2019 Jan 1;9(2):311-323. doi: 10.7150/thno.29755. eCollection 2019.

Abstract

Motor neuron diversification and regionalization are important hallmarks of spinal cord development and rely on fine spatiotemporal release of molecular cues. Here, we present a dedicated platform to engineer complex molecular profiles for directed neuronal differentiation. The technology, termed exagon nterlace for generation of ersatile and fin gradients (microHIVE), leverages on an interlocking honeycomb lattice of microstructures to dynamically pattern molecular profiles at a high spatial resolution. By packing the microhexagons as a divergent, mirrored array, the platform not only enables maximal mixing efficiency but also maintains a small device footprint. Employing the microHIVE platform, we developed optimized profiles of growth factors to induce rostral-caudal patterning of spinal motor neurons, and directed stem cell differentiation into a spatial continuum of different motor neuron subtypes. The differentiated cells showed progressive RNA and protein signatures, consistent with that of representative brachial, thoracic and lumbar regions of the human spinal cord. The microHIVE platform can thus be utilized to develop advanced biomimetic systems for the study of diseases .

摘要

运动神经元的多样化和区域化是脊髓发育的重要标志,依赖于分子线索的精细时空释放。在这里,我们提出了一个专门的平台来设计用于定向神经元分化的复杂分子图谱。该技术被称为用于生成多功能和精细梯度的 exagon nterlace(microHIVE),利用互锁的微结构蜂窝晶格以高空间分辨率动态地对分子图谱进行图案化。通过将微六边形包装成发散的、镜像的阵列,该平台不仅能够实现最大的混合效率,而且还保持小的设备足迹。利用 microHIVE 平台,我们开发了优化的生长因子图谱,以诱导脊髓运动神经元的头尾部模式化,并指导干细胞分化为不同运动神经元亚型的空间连续体。分化的细胞表现出逐渐增加的 RNA 和蛋白质特征,与人类脊髓的代表性臂、胸和腰区一致。因此,microHIVE 平台可用于开发用于疾病研究的先进仿生系统。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7dc3/6376181/7d96697ad82e/thnov09p0311g001.jpg

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