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器官特异性组织的生物制造,具有高细胞密度和嵌入式血管通道。

Biomanufacturing of organ-specific tissues with high cellular density and embedded vascular channels.

机构信息

Wyss Institute for Biologically Inspired Engineering, Harvard University, Cambridge, MA 02138, USA.

John A. Paulson School of Engineering and Applied Sciences, Harvard University, Cambridge, MA 02138, USA.

出版信息

Sci Adv. 2019 Sep 6;5(9):eaaw2459. doi: 10.1126/sciadv.aaw2459. eCollection 2019 Sep.

Abstract

Engineering organ-specific tissues for therapeutic applications is a grand challenge, requiring the fabrication and maintenance of densely cellular constructs composed of ~10 cells/ml. Organ building blocks (OBBs) composed of patient-specific-induced pluripotent stem cell-derived organoids offer a pathway to achieving tissues with the requisite cellular density, microarchitecture, and function. However, to date, scant attention has been devoted to their assembly into 3D tissue constructs. Here, we report a biomanufacturing method for assembling hundreds of thousands of these OBBs into living matrices with high cellular density into which perfusable vascular channels are introduced via embedded three-dimensional bioprinting. The OBB matrices exhibit the desired self-healing, viscoplastic behavior required for sacrificial writing into functional tissue (SWIFT). As an exemplar, we created a perfusable cardiac tissue that fuses and beats synchronously over a 7-day period. Our SWIFT biomanufacturing method enables the rapid assembly of perfusable patient- and organ-specific tissues at therapeutic scales.

摘要

工程化用于治疗应用的器官特异性组织是一个重大挑战,需要制造和维持由~10 个细胞/ml 组成的密集细胞构建体。由患者特异性诱导多能干细胞衍生的类器官组成的器官构建体(OBB)提供了实现具有必要细胞密度、微结构和功能的组织的途径。然而,迄今为止,人们很少关注将它们组装成 3D 组织构建体。在这里,我们报告了一种生物制造方法,可将数十万这些 OBB 组装到具有高细胞密度的活基质中,并通过嵌入式三维生物打印引入可灌注的血管通道。OBB 基质表现出所需的自我修复、粘弹性行为,这是用于牺牲写入功能组织(SWIFT)所必需的。作为一个范例,我们创建了可灌注的心脏组织,在 7 天的时间内融合并同步跳动。我们的 SWIFT 生物制造方法能够快速组装可灌注的患者和器官特异性组织,达到治疗规模。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/65a9/6731072/b28feb6e126e/aaw2459-F1.jpg

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