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Freestanding 3-D microvascular networks made of alginate hydrogel as a universal tool to create microchannels inside hydrogels

机译:海藻酸盐水凝胶制成的独立式3-D微血管网络是在水凝胶内部创建微通道的通用工具

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摘要

The diffusion of molecules such as nutrients and oxygen through densely packed cells is impeded by blockage and consumption by cells, resulting in a limited depth of penetration. This has been a major hurdle to a bulk (3-D) culture. Great efforts have been made to develop methods for generating branched microchannels inside hydrogels to support mass exchange inside a bulk culture. These previous attempts faced a common obstacle: researchers tried to fabricate microchannels with gels already loaded with cells, but the fabrication procedures are often harmful to the embedded cells. Herein, we present a universal strategy to create microchannels in different types of hydrogels, which effectively avoids cell damage. This strategy is based on a freestanding alginate 3-D microvascular network prepared by in-situ generation of copper ions from a sacrificial copper template. This alginate network could be used as implants to create microchannels inside different types of hydrogels. This approach effectively addresses the issue of cell damage during microfabrication and made it possible to create microchannels inside different types of gels. The microvascular network produced with this method is (1) strong enough to allow handling, (2) biocompatible to allow cell culturing, and (3) appropriately permeable to allow diffusion of small molecules, while sufficiently dense to prevent blocking of channels when embedded in different types of gels. In addition, composite microtubules could be prepared by simply pre-loading other materials, e.g., particles and large biomolecules, in the hydrogel. Compared with other potential strategies to fabricate freestanding gel channel networks, our method is more rapid, low-cost and scalable due to parallel processing using an industrially mass-producible template. We demonstrated the use of such vascular networks in creating microchannels in different hydrogels and composite gels, as well as with a cell culture in a nutrition gradient based on microfluidic diffusion. In this way, the freestanding hydrogel vascular network we produced is a universal functional unit that can be embedded in different types of hydrogel; users will be able to adopt this strategy to achieve vascular mass exchange in the bulk culture without changing their current protocol. The method is readily implementable to applications in vascular tissue regeneration, drug discovery, 3-D culture, etc.
机译:营养素和氧气等分子通过密集堆积的细胞的扩散受到细胞的阻塞和消耗的阻碍,从而导致有限的渗透深度。这是批量(3-D)文化的主要障碍。已经做出巨大的努力来开发用于在水凝胶内部产生支化微通道以支持大量培养物中的质量交换的方法。这些先前的尝试面临着一个共同的障碍:研究人员试图用已经装有细胞的凝胶来制造微通道,但是制造过程通常对嵌入的细胞有害。在这里,我们提出了一种通用策略,可以在不同类型的水凝胶中创建微通道,从而有效避免细胞损伤。此策略基于通过从牺牲铜模板原位生成铜离子制备的独立藻酸盐3-D微血管网络。该藻酸盐网络可以用作植入物,以在不同类型的水凝胶内部产生微通道。这种方法有效地解决了微加工过程中细胞受损的问题,并使得在不同类型的凝胶内部创建微通道成为可能。用这种方法产生的微血管网络足够坚固(1),可以处理;(2)具有生物相容性,可以进行细胞培养;(3)具有适当的渗透性,以允许小分子扩散;同时,其密度足够大,可以防止嵌入时堵塞通道不同类型的凝胶。另外,可以通过在水凝胶中简单地预加载其他材料,例如颗粒和大生物分子,来制备复合微管。与制造独立式凝胶通道网络的其他潜在策略相比,由于使用工业上可大量生产的模板进行并行处理,因此我们的方法更加快速,低成本和可扩展。我们展示了在不同的水凝胶和复合凝胶中创建微通道以及在基于微流扩散的营养梯度中的细胞培养中使用此类血管网络的过程。这样,我们生产的独立的水凝胶血管网络是一个通用的功能单元,可以嵌入到不同类型的水凝胶中。用户将能够采用此策略在批量培养中实现血管质量交换,而无需更改其当前方案。该方法易于实施,可用于血管组织再生,药物发现,3-D培养等。

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