多尺度纳米纤维支架平台在结构和功能上可复制人工穿孔动脉。

IF 3.5 3区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Bioprocess and Biosystems Engineering Pub Date : 2024-12-26 DOI:10.1007/s00449-024-03122-0
Su Jin Yoon, Jae Ahn Shin, Hwa Sung Shin
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引用次数: 0

摘要

探索异常脑血管(包括缺血性中风)的实验模型在神经科学中至关重要;近年来,通过组织工程进行人工组织的研究受到了广泛的关注。纳米纤维虽然通常被用作组织工程支架,但容易发生结构变形,这使得制造均匀的组织具有挑战性,特别是对于直径较小的组织,如穿孔动脉。这项研究的重点是开发一种能够重建结构和功能复制射孔动脉的平台。为了保证结构的一致性,我们开发了3d打印模块,以最大限度地减少纳米纤维支架在集成到3d打印血管培养皿中时的结构变形。采用扫描电子显微镜、接触角分析、表面积分析和万能试验机(UTM)分析,比较了纳米纤维安装前后的表面结构和物理特性。结果表明,纳米纤维的厚度分布、形貌、最大载荷、拉伸应变、拉伸强度、比表面积、孔径和孔体积均匀。为了组织培养的一致性,通过连续测量培养基的pH值和使用卡尔曼滤波控制系统补充耗尽的葡萄糖,平滑肌、内皮细胞和星形胶质细胞共同培养。在过氧化氢氧化应激条件下,证实了人工穿孔血管的功能有效性和一致性。抗氧化酶、神经营养因子、炎症因子和内皮细胞活化因子的转录mRNA表达趋势与体内相似,组织间差异很小。本研究通过批量生产结构和功能一致的穿孔动脉,为研究与脑卒中相关的氧化应激环境提供了研究平台。
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Development of a multi-scale nanofiber scaffold platform for structurally and functionally replicated artificial perforating arteries.

Experimental models for exploring abnormal brain blood vessels, including ischemic stroke, are crucial in neuroscience; recently, significant attention has been paid to artificial tissues through tissue engineering. Nanofibers, although commonly used as tissue engineering scaffolds, undergo structural deformations easily, making it challenging to create uniform tissue, especially for the smallest-diameter ones such as perforating arteries. This study focused on the development of a platform capable of reconstructing structurally and functionally replicated perforating arteries. To ensure structural consistency, 3D-printed modules were developed to minimize the structural deformation of nanofibrous scaffolds when integrated into a 3D-printed vessel culture dish. Surface structures and physical characteristics of the nanofibers before and after installation were compared using scanning electron microscopy, contact angle analysis, surface area analysis, and universal testing machine (UTM) analysis. The results showed a uniform thickness distribution, topography, maximum load, tensile strain, tensile strength, surface area, pore size, and pore volume of the nanofibers. For consistency in tissue culture, smooth muscle, endothelial, and astrocyte cells were co-cultured by continuously measuring the pH of the medium and replenishing the depleted glucose using the Kalman filter control system. The functional efficacy and consistency of the artificial perforating vessels were confirmed under oxidative stress induced by exposure to hydrogen peroxide. Transcriptional mRNA expression trends were similar to those in vivo for antioxidant enzymes, neurotrophic factors, inflammatory factors, and endothelial cell activation factors, with very low variation between tissues. This study provides a research platform for studying the oxidative stress environments related to stroke by mass-producing perforating arteries with consistent structures and functions.

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来源期刊
Bioprocess and Biosystems Engineering
Bioprocess and Biosystems Engineering 工程技术-工程:化工
CiteScore
7.90
自引率
2.60%
发文量
147
审稿时长
2.6 months
期刊介绍: Bioprocess and Biosystems Engineering provides an international peer-reviewed forum to facilitate the discussion between engineering and biological science to find efficient solutions in the development and improvement of bioprocesses. The aim of the journal is to focus more attention on the multidisciplinary approaches for integrative bioprocess design. Of special interest are the rational manipulation of biosystems through metabolic engineering techniques to provide new biocatalysts as well as the model based design of bioprocesses (up-stream processing, bioreactor operation and downstream processing) that will lead to new and sustainable production processes. Contributions are targeted at new approaches for rational and evolutive design of cellular systems by taking into account the environment and constraints of technical production processes, integration of recombinant technology and process design, as well as new hybrid intersections such as bioinformatics and process systems engineering. Manuscripts concerning the design, simulation, experimental validation, control, and economic as well as ecological evaluation of novel processes using biosystems or parts thereof (e.g., enzymes, microorganisms, mammalian cells, plant cells, or tissue), their related products, or technical devices are also encouraged. The Editors will consider papers for publication based on novelty, their impact on biotechnological production and their contribution to the advancement of bioprocess and biosystems engineering science. Submission of papers dealing with routine aspects of bioprocess engineering (e.g., routine application of established methodologies, and description of established equipment) are discouraged.
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