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综述:小直径血管移植物的组织工程及其在大动物和人体内的体内评估。

Review: Tissue Engineering of Small-Diameter Vascular Grafts and Their In Vivo Evaluation in Large Animals and Humans.

机构信息

Laboratory of Molecular and Cellular Cardiology, Department of Clinical Biochemistry and Pharmacology, Odense University Hospital, J. B. Winsløwsvej 25, 5000 Odense C, Denmark.

The Danish Regenerative Center, Odense University Hospital, J. B. Winsløwsvej 4, 5000 Odense C, Denmark.

出版信息

Cells. 2021 Mar 23;10(3):713. doi: 10.3390/cells10030713.

Abstract

To date, a wide range of materials, from synthetic to natural or a mixture of these, has been explored, modified, and examined as small-diameter tissue-engineered vascular grafts (SD-TEVGs) for tissue regeneration either in vitro or in vivo. However, very limited success has been achieved due to mechanical failure, thrombogenicity or intimal hyperplasia, and improvements of the SD-TEVG design are thus required. Here, in vivo studies investigating novel and relative long (10 times of the inner diameter) SD-TEVGs in large animal models and humans are identified and discussed, with emphasis on graft outcome based on model- and graft-related conditions. Only a few types of synthetic polymer-based SD-TEVGs have been evaluated in large-animal models and reflect limited success. However, some polymers, such as polycaprolactone (PCL), show favorable biocompatibility and potential to be further modified and improved in the form of hybrid grafts. Natural polymer- and cell-secreted extracellular matrix (ECM)-based SD-TEVGs tested in large animals still fail due to a weak strength or thrombogenicity. Similarly, native ECM-based SD-TEVGs and in-vitro-developed hybrid SD-TEVGs that contain xenogeneic molecules or matrix seem related to a harmful graft outcome. In contrast, allogeneic native ECM-based SD-TEVGs, in-vitro-developed hybrid SD-TEVGs with allogeneic banked human cells or isolated autologous stem cells, and in-body tissue architecture (IBTA)-based SD-TEVGs seem to be promising for the future, since they are suitable in dimension, mechanical strength, biocompatibility, and availability.

摘要

迄今为止,已经探索、修改和检查了各种材料,包括合成材料、天然材料或这些材料的混合物,将其作为小直径组织工程血管移植物 (SD-TEVG),用于体外或体内组织再生。然而,由于机械故障、血栓形成或内膜增生,只有非常有限的成功,因此需要改进 SD-TEVG 的设计。在这里,确定并讨论了在大动物模型和人体中进行新型和相对较长(内径的 10 倍)SD-TEVG 的体内研究,重点是基于模型和移植物相关条件的移植物结果。只有少数几种基于合成聚合物的 SD-TEVG 在大动物模型中进行了评估,反映出有限的成功。然而,一些聚合物,如聚己内酯 (PCL),显示出良好的生物相容性,并有可能以杂交移植物的形式进一步改进和提高。在大动物中测试的天然聚合物和细胞分泌的细胞外基质 (ECM) 基 SD-TEVG 仍然由于强度较弱或血栓形成而失败。同样,基于天然 ECM 的 SD-TEVG 和包含异种分子或基质的体外开发的杂交 SD-TEVG 似乎与有害的移植物结果有关。相比之下,同种异体天然 ECM 基 SD-TEVG、体外开发的含有同种异体储存的人类细胞或分离的自体干细胞的杂交 SD-TEVG 以及体内组织结构 (IBTA) 基 SD-TEVG 似乎具有很大的潜力,因为它们在尺寸、机械强度、生物相容性和可用性方面都很合适。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cbec/8005053/714f0fcd1b4d/cells-10-00713-g001.jpg

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