胶原微纤维生物打印血管化成熟脂肪组织用于软组织再生

IF 10.5 Q1 ENGINEERING, BIOMEDICAL Cyborg and bionic systems (Washington, D.C.) Pub Date : 2021-03-13 DOI:10.34133/2021/1412542
F. Louis, Marie Piantino, Hao Liu, D. Kang, Y. Sowa, S. Kitano, M. Matsusaki
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引用次数: 20

摘要

由于人工乳房植入物的安全性问题,软组织再生的发展最近变得越来越重要。目前自体脂肪移植由于其有限的血运重建,在长期结果中可导致高达90%的体积损失。脂肪组织具有高度血管化的结构,使其具有适当的体内平衡和内分泌功能。成熟的脂肪细胞被致密的血管网络包围是脂肪组织植入后有效再生并进行宿主吻合所需的特定特征。最近,生物打印作为一种很有前途的解决方案被引入体外,在大规模组织中重建这种结构。然而,干细胞在体外诱导血管生成和脂肪生成分化时,这两种途径的成熟状态有限。为了克服这些问题,我们报告了一种使用支持浴生物打印获得完全血管化脂肪组织重建的新方法。首次将直接分离的成熟脂肪细胞包裹在含有生理性胶原微纤维(CMF)的生物墨水中,在结冷胶支撑浴中进行生物打印。这些多层生物打印组织在培养7天后仍保持较高的活力。此外,这种功能也被成熟脂肪细胞对脂肪酸摄取的维持所证实。因此,这种构建全功能脂肪组织再生的方法有望在未来的临床应用中得到应用。
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Bioprinted Vascularized Mature Adipose Tissue with Collagen Microfibers for Soft Tissue Regeneration
The development of soft tissue regeneration has recently gained importance due to safety concerns about artificial breast implants. Current autologous fat graft implantations can result in up to 90% of volume loss in long-term outcomes due to their limited revascularization. Adipose tissue has a highly vascularized structure which enables its proper homeostasis as well as its endocrine function. Mature adipocytes surrounded by a dense vascular network are the specific features required for efficient regeneration of the adipose tissue to perform host anastomosis after its implantation. Recently, bioprinting has been introduced as a promising solution to recreate in vitro this architecture in large-scale tissues. However, the in vitro induction of both the angiogenesis and adipogenesis differentiations from stem cells yields limited maturation states for these two pathways. To overcome these issues, we report a novel method for obtaining a fully vascularized adipose tissue reconstruction using supporting bath bioprinting. For the first time, directly isolated mature adipocytes encapsulated in a bioink containing physiological collagen microfibers (CMF) were bioprinted in a gellan gum supporting bath. These multilayered bioprinted tissues retained high viability even after 7 days of culture. Moreover, the functionality was also confirmed by the maintenance of fatty acid uptake from mature adipocytes. Therefore, this method of constructing fully functional adipose tissue regeneration holds promise for future clinical applications.
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来源期刊
CiteScore
7.70
自引率
0.00%
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审稿时长
21 weeks
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