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PCL 支架的空间模式指导 3D 血管化生物构建体的形态发生。

Spatial patterning of PCL-scaffolds directs 3D vascularized bio-constructs morphogenesis.

机构信息

Center for Advanced Biomaterials for Healthcare, Istituto Italiano di Tecnologia (IIT@CRIB), Largo Barsanti e Matteucci, 53, Naples 80125, Italy.

Department of Chemical, Materials and Industrial Production Engineering, University of Naples Federico II, Naples 80125, Italy.

出版信息

Biofabrication. 2022 Aug 18;14(4). doi: 10.1088/1758-5090/ac8620.

Abstract

Modular tissue engineering (mTE) strategies aim to build three-dimensional tissue analoguesby the sapient combination of cells, micro-scaffolds (-scaffs) and bioreactors. The translation of these newly engineered tissues into current clinical approaches is, among other things, dependent on implant-to-host microvasculature integration, a critical issue for cells and tissue survival. In this work we reported, for the first time, a computer-aided modular approach suitable to build fully vascularized hybrid (biological/synthetic) constructs (bio-constructs) with micro-metric size scale control of blood vessels growth and orientation. The approach consists of four main steps, starting with the fabrication of polycaprolactone-scaffs by fluidic emulsion technique, which exhibit biomimetic porosity features. In the second step, layers of-scaffs following two different patterns, namely ordered and disordered, were obtained by a soft lithography-based process. Then, the as obtained-scaff patterns were used as template for human dermal fibroblasts and human umbilical vein endothelial cells co-culture, aiming to promote and guide the biosynthesis of collagenous extracellular matrix and the growth of new blood vessels within the mono-layered bio-constructs. Finally, bi-layered bio-constructs were built by the alignment, stacking and fusion of two vascularized mono-layered samples featuring ordered patterns. Our results demonstrated that, if compared to the disordered pattern, the ordered one provided better control over bio-constructs shape and vasculature architecture, while minor effect was observed with respect to cell colonization and new tissue growth. Furthermore, by assembling two mono-layered bio-constructs it was possible to build 1 mm thick fully vascularized viable bio-constructs and to study tissue morphogenesis during 1 week ofculture. In conclusion, our results highlighted the synergic role of-scaff architectural features and spatial patterning on cells colonization and biosynthesis, and pave the way for the possibility to create in silico designed vasculatures within modularly engineered bio-constructs.

摘要

模块化组织工程(mTE)策略旨在通过明智地组合细胞、微支架(-scaffs)和生物反应器来构建三维组织类似物。将这些新工程组织转化为当前的临床方法,除其他外,还取决于植入物与宿主微血管的整合,这是细胞和组织存活的关键问题。在这项工作中,我们首次报道了一种计算机辅助的模块化方法,该方法适合构建具有血管化的混合(生物/合成)构建体(生物构建体),可以对血管生长和方向进行微观尺度的控制。该方法包括四个主要步骤,首先通过流体乳液技术制造聚己内酯支架,该支架具有仿生孔隙特征。在第二步中,通过基于软光刻的工艺获得两种不同图案(有序和无序)的层状-scaffs。然后,将获得的-scaff 图案用作人真皮成纤维细胞和人脐静脉内皮细胞共培养的模板,旨在促进和指导胶原细胞外基质的生物合成和新血管在单层生物构建体中的生长。最后,通过对齐、堆叠和融合两个具有有序图案的血管化单层样本构建双层生物构建体。我们的结果表明,与无序图案相比,有序图案对生物构建体的形状和脉管结构提供了更好的控制,而对细胞定植和新组织生长的影响较小。此外,通过组装两个单层生物构建体,可以构建 1 毫米厚的完全血管化的有活力的生物构建体,并在 1 周的培养期间研究组织形态发生。总之,我们的结果强调了-scaff 结构特征和空间图案对细胞定植和生物合成的协同作用,并为在模块化工程生物构建体中创建计算机设计的脉管系统铺平了道路。

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