具有可灌注血管床的百万分级器官芯片的适应性制造和生物制造。

IF 3.2 3区 生物学 Q2 BIOCHEMICAL RESEARCH METHODS
Charles Ethan Byrne, Ashley T. Martier, Gideon Wills Kpeli, Kevin Michael Conrad, William Bralower, Elisabet Olsen, Gabrielle Fortes, Caroline C. Culp, Max Wendell, Keefer A. Boone, Matthew R. Burow, Mark J. Mondrinos
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引用次数: 0

摘要

含有可灌注血管床的微生理系统(MPS)开启了在体外模拟血管生理和疾病的组织尺度元素的能力。现在,使用廉价的立体光刻(SLA) 3D打印机可以在台式制造聚二甲基硅氧烷(PDMS)器官芯片,从而消除了对洁净室访问和微制造专业知识的需求,并且可以促进MPS方法在临床前研究中的广泛采用。器官芯片模具设计的快速原型设计加速了设计、测试和迭代的过程,但SLA树脂打印的几何畸变和表面粗糙度会阻碍标准化制造工作流程的发展。本研究报告了制造sla打印模具的后处理程序,该模具可生产完全固化,平整,专利粘合和光学透明的聚二甲基硅氧烷(PDMS)器官芯片。进行了注射加载试验,以确定毫尺度无膜器官芯片(MFOC)设计,该设计允许目标最终用户可重复加载设备,这是临床前研究中广泛采用非专家的关键要求。优化的毫级MFOC设计用于开发组织工程方案:(1)在MFOC中驱动大块组织血管生成,(2)在大块组织界面上播种融合内皮,以刺激可灌注吻合器与内部血管的自组装。对基于摇臂和泵的吻合血管床流动调节方案的比较表明,在整个3D组织体中,需要连续的泵驱动流动来实现可复制的屏障成熟。演示应用包括纳米颗粒灌注和工程可灌注肿瘤血管。这些易于适应的设计和制造血管化微生理系统的方法可以加速它们在各种临床前实验室环境中的采用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Adaptable Manufacturing and Biofabrication of Milliscale Organ Chips With Perfusable Vascular Beds

Adaptable Manufacturing and Biofabrication of Milliscale Organ Chips With Perfusable Vascular Beds

Microphysiological systems (MPS) containing perfusable vascular beds unlock the ability to model tissue-scale elements of vascular physiology and disease in vitro. Access to inexpensive stereolithography (SLA) 3D printers now enables benchtop fabrication of polydimethylsiloxane (PDMS) organ chips, eliminating the need for cleanroom access and microfabrication expertise, and can facilitate broader adoption of MPS approaches in preclinical research. Rapid prototyping of organ chip mold designs accelerates the processes of design, testing, and iteration, but geometric distortion and surface roughness of SLA resin prints can impede the development of standardizable manufacturing workflows. This study reports postprocessing procedures for manufacturing SLA-printed molds that produce fully cured, flat, patently bonded, and optically clear polydimethyl siloxane (PDMS) organ chips. Injection loading tests were conducted to identify milliscale membrane-free organ chip (MFOC) designs that allowed reproducible device loading by target end-users, a key requirement for broad nonexpert adoption in preclinical research. The optimized milliscale MFOC design was used to develop tissue engineering protocols for (i) driving bulk tissue vasculogenesis in MFOC, and (ii) seeding the bulk tissue interfaces with a confluent endothelium to stimulate self-assembly of perfusable anastomoses with the internal vasculature. Comparison of rocker- and pump-based protocols for flow-conditioning of anastomosed vascular beds revealed that continuous pump-driven flow is required for reproducible barrier maturation throughout the 3D tissue bulk. Demonstrated applications include nanoparticle perfusion and engineering perfusable tumor vasculature. These easily adaptable methods for designing and fabricating vascularized microphysiological systems can accelerate their adoption in a diverse range of preclinical laboratory settings.

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来源期刊
Biotechnology Journal
Biotechnology Journal Biochemistry, Genetics and Molecular Biology-Molecular Medicine
CiteScore
8.90
自引率
2.10%
发文量
123
审稿时长
1.5 months
期刊介绍: Biotechnology Journal (2019 Journal Citation Reports: 3.543) is fully comprehensive in its scope and publishes strictly peer-reviewed papers covering novel aspects and methods in all areas of biotechnology. Some issues are devoted to a special topic, providing the latest information on the most crucial areas of research and technological advances. In addition to these special issues, the journal welcomes unsolicited submissions for primary research articles, such as Research Articles, Rapid Communications and Biotech Methods. BTJ also welcomes proposals of Review Articles - please send in a brief outline of the article and the senior author''s CV to the editorial office. BTJ promotes a special emphasis on: Systems Biotechnology Synthetic Biology and Metabolic Engineering Nanobiotechnology and Biomaterials Tissue engineering, Regenerative Medicine and Stem cells Gene Editing, Gene therapy and Immunotherapy Omics technologies Industrial Biotechnology, Biopharmaceuticals and Biocatalysis Bioprocess engineering and Downstream processing Plant Biotechnology Biosafety, Biotech Ethics, Science Communication Methods and Advances.
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