Integrated Cross-Scale Manipulation and Modulable Encapsulation of Cell-Laden Hydrogel for Constructing Tissue-Mimicking Microstructures.

IF 11 1区 综合性期刊 Q1 Multidisciplinary Research Pub Date : 2024-07-24 eCollection Date: 2024-01-01 DOI:10.34133/research.0414
Yanfeng Zhao, Xinyi Dong, Yang Li, Juan Cui, Qing Shi, Hen-Wei Huang, Qiang Huang, Huaping Wang
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Abstract

Engineered microstructures that mimic in vivo tissues have demonstrated great potential for applications in regenerative medicine, drug screening, and cell behavior exploration. However, current methods for engineering microstructures that mimic the multi-extracellular matrix and multicellular features of natural tissues to realize tissue-mimicking microstructures in vitro remain insufficient. Here, we propose a versatile method for constructing tissue-mimicking heterogeneous microstructures by orderly integration of macroscopic hydrogel exchange, microscopic cell manipulation, and encapsulation modulation. First, various cell-laden hydrogel droplets are manipulated at the millimeter scale using electrowetting on dielectric to achieve efficient hydrogel exchange. Second, the cells are manipulated at the micrometer scale using dielectrophoresis to adjust their density and arrangement within the hydrogel droplets. Third, the photopolymerization of these hydrogel droplets is triggered in designated regions by dynamically modulating the shape and position of the excitation ultraviolet beam. Thus, heterogeneous microstructures with different extracellular matrix geometries and components were constructed, including specific cell densities and patterns. The resulting heterogeneous microstructure supported long-term culture of hepatocytes and fibroblasts with high cell viability (over 90%). Moreover, the density and distribution of the 2 cell types had significant effects on the cell proliferation and urea secretion. We propose that our method can lead to the construction of additional biomimetic heterogeneous microstructures with unprecedented potential for use in future tissue engineering applications.

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细胞载体水凝胶的跨尺度综合操纵和可调控封装,用于构建仿组织微结构。
模拟体内组织的工程微结构在再生医学、药物筛选和细胞行为探索等领域的应用潜力巨大。然而,目前模拟天然组织的多细胞外基质和多细胞特征的工程微结构方法仍不足以在体外实现组织模拟微结构。在此,我们提出了一种多功能方法,通过有序整合宏观水凝胶交换、微观细胞操作和封装调制,构建仿组织异质微结构。首先,利用电介质上的电润湿技术,在毫米尺度上操纵各种含有细胞的水凝胶液滴,以实现高效的水凝胶交换。其次,利用介电泳技术在微米尺度上操纵细胞,以调整它们在水凝胶液滴中的密度和排列。第三,通过动态调节激发紫外线光束的形状和位置,在指定区域触发这些水凝胶液滴的光聚合。这样,就构建出了具有不同细胞外基质几何形状和成分的异质微结构,包括特定的细胞密度和模式。由此产生的异质微结构支持肝细胞和成纤维细胞的长期培养,细胞存活率高(超过 90%)。此外,两种细胞类型的密度和分布对细胞增殖和尿素分泌有显著影响。我们认为,我们的方法可以构建出更多的仿生物异质微结构,在未来的组织工程应用中具有前所未有的应用潜力。
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来源期刊
Research
Research Multidisciplinary-Multidisciplinary
CiteScore
13.40
自引率
3.60%
发文量
0
审稿时长
14 weeks
期刊介绍: Research serves as a global platform for academic exchange, collaboration, and technological advancements. This journal welcomes high-quality research contributions from any domain, with open arms to authors from around the globe. Comprising fundamental research in the life and physical sciences, Research also highlights significant findings and issues in engineering and applied science. The journal proudly features original research articles, reviews, perspectives, and editorials, fostering a diverse and dynamic scholarly environment.
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